WO2025264342A1 - Downlink control information format for fields with unchanged values - Google Patents
Downlink control information format for fields with unchanged valuesInfo
- Publication number
- WO2025264342A1 WO2025264342A1 PCT/US2025/029735 US2025029735W WO2025264342A1 WO 2025264342 A1 WO2025264342 A1 WO 2025264342A1 US 2025029735 W US2025029735 W US 2025029735W WO 2025264342 A1 WO2025264342 A1 WO 2025264342A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- fields
- dci
- unchanged
- changed
- processors
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/004—Arrangements for detecting or preventing errors in the information received by using forward error control
- H04L1/0041—Arrangements at the transmitter end
- H04L1/0043—Realisations of complexity reduction techniques, e.g. use of look-up tables
- H04L1/0044—Realisations of complexity reduction techniques, e.g. use of look-up tables specially adapted for power saving
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/232—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the physical layer, e.g. DCI signalling
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/004—Arrangements for detecting or preventing errors in the information received by using forward error control
- H04L1/0056—Systems characterized by the type of code used
- H04L1/007—Unequal error protection
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/004—Arrangements for detecting or preventing errors in the information received by using forward error control
- H04L1/0072—Error control for data other than payload data, e.g. control data
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1867—Arrangements specially adapted for the transmitter end
- H04L1/1896—ARQ related signaling
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signalling for the administration of the divided path, e.g. signalling of configuration information
Definitions
- aspects of the present disclosure generally relate to wireless communication and specifically relate to techniques, apparatuses, and methods for using a downlink control information format for fields with changed values and unchanged values.
- Wireless communication systems are widely deployed to provide various services that may include carrying voice, text, messaging, video, data, and/or other traffic.
- the services may include unicast, multicast, and/or broadcast services, among other examples.
- Typical wireless communication systems may employ multiple-access radio access technologies (RATs) capable of supporting communication with multiple users by sharing available system resources (for example, time domain resources, frequency domain resources, spatial domain resources, and/or device transmit power, among other examples).
- RATs radio access technologies
- multiple-access RATs include code division multiple access (CDMA) systems, time division multiple access (TDMA) systems, frequency division multiple access (FDMA) systems, orthogonal frequency division multiple access (OFDMA) systems, single -carrier frequency division multiple access (SC- FDMA) systems, and time division synchronous code division multiple access (TD-SCDMA) systems.
- CDMA code division multiple access
- TDMA time division multiple access
- FDMA frequency division multiple access
- OFDMA orthogonal frequency division multiple access
- SC- FDMA single -carrier frequency division multiple access
- TD-SCDMA time division synchronous code division multiple access
- NR New Radio
- 5G New Radio
- 3 GPP Third Generation Partnership Project
- NR may be designed to better support Internet of things (loT) and reduced capability device deployments, industrial connectivity, millimeter wave (mmWave) expansion, licensed and unlicensed spectrum access, non-terrestrial network (NTN) deployment, sidelink and other device-to- device direct communication technologies (for example, cellular vehicle-to-everything (CV2X) communication), massive multiple -input multiple -output (MIMO), disaggregated network architectures and network topology expansions, multiple-subscriber implementations, high- precision positioning, and/or radio frequency (RF) sensing, among other examples.
- LoT Internet of things
- mmWave millimeter wave
- NTN non-terrestrial network
- MIMO massive multiple -input multiple -output
- disaggregated network architectures and network topology expansions for example, multiple-subscriber implementations, high- precision positioning, and/or radio frequency (RF) sensing, among other examples.
- RF radio frequency
- the method may include receiving a format indication of a downlink control information (DCI) format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI.
- the method may include receiving DCI having the DCI format.
- the method may include decoding the one or more changed fields and not the one or more unchanged fields.
- DCI downlink control information
- the method may include transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI.
- the method may include encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format.
- the method may include transmitting the DCI.
- the apparatus may include one or more memories and one or more processors coupled to the one or more memories.
- the one or more processors may be individually or collectively configured to receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI.
- the one or more processors may be individually or collectively configured to receive DCI having the DCI format.
- the one or more processors may be individually or collectively configured to decode the one or more changed fields and not the one or more unchanged fields.
- the apparatus may include one or more memories and one or more processors coupled to the one or more memories.
- the one or more processors may be individually or collectively configured to transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI.
- the one or more processors may be individually or collectively configured to encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format.
- the one or more processors may be individually or collectively configured to transmit the DCI.
- Some aspects described herein relate to a non-transitory computer-readable medium that stores a set of instructions for wireless communication by a UE.
- the set of instructions when executed by one or more processors of the UE, may cause the UE to receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI.
- the set of instructions when executed by one or more processors of the UE, may cause the UE to receive DCI having the DCI format.
- the set of instructions when executed by one or more processors of the UE, may cause the UE to decode the one or more changed fields and not the one or more unchanged fields.
- Some aspects described herein relate to a non-transitory computer-readable medium that stores a set of instructions for wireless communication by a network entity.
- the set of instructions when executed by one or more processors of the network entity, may cause the network entity to transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI.
- the set of instructions when executed by one or more processors of the network entity, may cause the network entity to encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format.
- the set of instructions when executed by one or more processors of the network entity, may cause the network entity to transmit the DCI.
- the apparatus may include means for receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI.
- the apparatus may include means for receiving DCI having the DCI format.
- the apparatus may include means for decoding the one or more changed fields and not the one or more unchanged fields.
- the apparatus may include means for transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI.
- the apparatus may include means for encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format.
- the apparatus may include means for transmitting the DCI.
- aspects of the present disclosure may generally be implemented by or as a method, apparatus, system, computer program product, non-transitory computer-readable medium, user equipment, base station, network node, network entity, wireless communication device, and/or processing system as substantially described with reference to, and as illustrated by, the specification and accompanying drawings.
- FIG. 1 is a diagram illustrating an example of a wireless communication network, in accordance with the present disclosure.
- Fig. 2 is a diagram illustrating an example network node in communication with an example user equipment (UE) in a wireless network, in accordance with the present disclosure.
- Fig. 3 is a diagram illustrating an example disaggregated base station architecture, in accordance with the present disclosure.
- Fig. 4 is a diagram illustrating an example of downlink control information (DCI) fields, in accordance with the present disclosure.
- DCI downlink control information
- Fig. 5 is a diagram illustrating an example of a DCI format, in accordance with the present disclosure.
- Fig. 6 is a diagram illustrating an example associated with a DCI format for unchanged fields, in accordance with the present disclosure.
- Fig. 7 is a diagram illustrating an example of signaling for DCI formats, in accordance with the present disclosure.
- Fig. 8 is a diagram illustrating an example of DCI formats, in accordance with the present disclosure.
- Fig. 9 is a diagram illustrating an example of using a DCI format, in accordance with the present disclosure.
- Fig. 10 is a diagram illustrating examples of encoding DCI, in accordance with the present disclosure.
- Fig. 11 is a diagram illustrating an example of decoding DCI with a base DCI format, in accordance with the present disclosure.
- Fig. 12 is a diagram illustrating an example of decoding DCI with a permutated DCI format, in accordance with the present disclosure.
- Fig. 13 is a diagram illustrating an example process performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure.
- Fig. 14 is a diagram illustrating an example process performed, for example, at a network entity or an apparatus of a network entity, in accordance with the present disclosure.
- Fig. 15 is a diagram of an example apparatus for wireless communication, in accordance with the present disclosure.
- Fig. 16 is a diagram of an example apparatus for wireless communication, in accordance with the present disclosure.
- a polar code is used for encoding control information, such as downlink control information (DCI) on downlink channels and uplink control information (UCI) on uplink channels.
- DCI and UCI include different fields. Each field includes multiple bits.
- DCI and UCI bits in DCI/UCI are given as inputs to a polar encoder. Some bits are unchanged (known bits) with respect to previous DCI. Other bits may have changed (unknown bits) with respect to the previous DCI. However, the UE expects that all of the DCI fields change at every time slot.
- the UE does not have information about whether a DCI field is changed or unchanged with respect to the previous DCI transmission and hence assumes that all of the DCI fields change at every time slot. If a UE blind decodes each DCI field, the UE consumes time and processing resources.
- Various aspects relate generally to wireless communications. Some aspects more specifically relate to a network entity that indicates which fields of DCI are going to remain unchanged.
- the network entity may indicate, for example, that fields P2 and P4 include known bits and the UE is to start decoding at the first unchanged field, or P0.
- the network entity may indicate how long the unchanged fields are to remain unchanged over MCTs.
- the UE may decode only the changed fields and not decode the unchanged fields.
- Particular aspects of the subject matter described in this disclosure can be implemented to realize one or more of the following potential advantages. By decoding only the changed fields, the UE may reduce the amount of blind bit/field decoding and improve the DCI decoding performance and reliability. As a result, the UE conserves time and processing resources.
- 5G NR is part of a continuous mobile broadband evolution promulgated by the Third Generation Partnership Project (3GPP).
- 3GPP Third Generation Partnership Project
- 5G NR supports various technologies and use cases including enhanced mobile broadband (eMBB), ultra-reliable low-latency communication (URLLC), massive machine-type communication (mMTC), millimeter wave (mmWave) technology, beamforming, network slicing, edge computing, Internet of Things (loT) connectivity and management, and network function virtualization (NFV).
- eMBB enhanced mobile broadband
- URLLC ultra-reliable low-latency communication
- mMTC massive machine-type communication
- mmWave millimeter wave
- beamforming network slicing
- edge computing edge computing
- NFV network function virtualization
- Such technological improvements may be associated with new frequency band expansion, licensed and unlicensed spectrum access, overlapping spectrum use, small cell deployments, nonterrestrial network (NTN) deployments, disaggregated network architectures and network topology expansion, device aggregation, advanced duplex communication, sidelink and other device-to-device direct communication, loT (including passive or ambient loT) networks, reduced capability (RedCap) UE functionality, industrial connectivity, multiple-subscriber implementations, high-precision positioning, radio frequency (RF) sensing, and/or artificial intelligence or machine learning (AI/ML), among other examples.
- NTN nonterrestrial network
- disaggregated network architectures and network topology expansion device aggregation
- advanced duplex communication advanced duplex communication
- sidelink and other device-to-device direct communication sidelink and other device-to-device direct communication
- loT including passive or ambient loT
- RedCap reduced capability
- industrial connectivity multiple-subscriber implementations
- high-precision positioning radio frequency (RF) sensing
- These technological improvements may support use cases such as wireless backhauls, wireless data centers, extended reality (XR) and metaverse applications, meta services for supporting vehicle connectivity, holographic and mixed reality communication, autonomous and collaborative robots, vehicle platooning and cooperative maneuvering, sensing networks, gesture monitoring, human-brain interfacing, digital twin applications, asset management, and universal coverage applications using non-terrestrial and/or aerial platforms, among other examples.
- use cases such as wireless backhauls, wireless data centers, extended reality (XR) and metaverse applications, meta services for supporting vehicle connectivity, holographic and mixed reality communication, autonomous and collaborative robots, vehicle platooning and cooperative maneuvering, sensing networks, gesture monitoring, human-brain interfacing, digital twin applications, asset management, and universal coverage applications using non-terrestrial and/or aerial platforms, among other examples.
- XR extended reality
- metaverse applications meta services for supporting vehicle connectivity
- holographic and mixed reality communication autonomous and collaborative robots
- vehicle platooning and cooperative maneuvering sensing networks
- gesture monitoring human-bra
- Fig. 1 is a diagram illustrating an example of a wireless communication network 100, in accordance with the present disclosure.
- the wireless communication network 100 may be or may include elements of a 5G (or NR) network or a 6G network, among other examples.
- the wireless communication network 100 may include multiple network nodes 110, shown as a network node (NN) 110a, a network node 110b, a network node 110c, and a network node 1 lOd.
- the network nodes 110 may support communications with multiple UEs 120, shown as a UE 120a, a UE 120b, a UE 120c, a UE 120d, and a UE 120e.
- the network nodes 110 and the UEs 120 of the wireless communication network 100 may communicate using the electromagnetic spectrum, which may be subdivided by frequency or wavelength into various classes, bands, carriers, and/or channels. For example, devices of the wireless communication network 100 may communicate using one or more operating bands.
- multiple wireless communication networks 100 may be deployed in a given geographic area. Each wireless communication network 100 may support a particular RAT (which may also be referred to as an air interface) and may operate on one or more carrier frequencies in one or more frequency ranges. Examples of RATs include a 4G RAT, a 5G/NR RAT, and/or a 6G RAT, among other examples. In some examples, when multiple RATs are deployed in a given geographic area, each RAT in the geographic area may operate on different frequencies to avoid interference with one another.
- FR1 frequency range designations FR1 (410 MHz through 7.125 GHz), FR2 (24.25 GHz through 52.6 GHz), FR3 (7.125 GHz through 24.25 GHz), FR4a or FR4-1 (52.6 GHz through 71 GHz), FR4 (52.6 GHz through 114.25 GHz), and FR5 (114.25 GHz through 300 GHz).
- FR1 is often referred to (interchangeably) as a “Sub-6 GHz” band in some documents and articles.
- FR2 is often referred to (interchangeably) as a “millimeter wave” band in some documents and articles, despite being different than the extremely high frequency (EHF) band (30 GHz through 300 GHz), which is identified by the International Telecommunications Union (ITU) as a “millimeter wave” band.
- EHF extremely high frequency
- ITU International Telecommunications Union
- the frequencies between FR1 and FR2 are often referred to as mid-band frequencies, which include FR3.
- Frequency bands falling within FR3 may inherit FR1 characteristics or FR2 characteristics, and thus may effectively extend features of FR1 or FR2 into mid-band frequencies.
- sub-6 GHz if used herein, may broadly refer to frequencies that are less than 6 GHz, that are within FR1, and/or that are included in mid -band frequencies.
- millimeter wave may broadly refer to frequencies that are included in mid-band frequencies, that are within FR2, FR4, FR4-a or FR4- 1, or FR5, and/or that are within the EHF band. Higher frequency bands may extend 5G NR operation, 6G operation, and/or other RATs beyond 52.6 GHz. For example, each of FR4a, FR4-1, FR4, and FR5 falls within the EHF band.
- the wireless communication network 100 may implement dynamic spectrum sharing (DSS), in which multiple RATs (for example, 4G/Long Term Evolution (LTE) and 5G/NR) are implemented with dynamic bandwidth allocation (for example, based on user demand) in a single frequency band.
- DSS dynamic spectrum sharing
- frequencies included in these operating bands may be modified, and techniques described herein may be applicable to those modified frequency ranges.
- a network node 110 may include one or more devices, components, or systems that enable communication between a UE 120 and one or more devices, components, or systems of the wireless communication network 100.
- a network node 110 may be, may include, or may also be referred to as an NR network node, a 5G network node, a 6G network node, a Node B, an eNB, a gNB, an access point (AP), a transmission reception point (TRP), a mobility element, a core, a network entity, a network element, a network equipment, and/or another type of device, component, or system included in a radio access network (RAN).
- RAN radio access network
- a network node 110 may be implemented as a single physical node (for example, a single physical structure) or may be implemented as two or more physical nodes (for example, two or more distinct physical structures).
- a network node 110 may be a device or system that implements part of a radio protocol stack, a device or system that implements a full radio protocol stack (such as a full gNB protocol stack), or a collection of devices or systems that collectively implement the full radio protocol stack.
- a network node 110 may be an aggregated network node (having an aggregated architecture), meaning that the network node 110 may implement a full radio protocol stack that is physically and logically integrated within a single node (for example, a single physical structure) in the wireless communication network 100.
- an aggregated network node 110 may consist of a single standalone base station or a single TRP that uses a full radio protocol stack to enable or facilitate communication between a UE 120 and a core network of the wireless communication network 100.
- a network node 110 may be a disaggregated network node (sometimes referred to as a disaggregated base station), meaning that the network node 110 may implement a radio protocol stack that is physically distributed and/or logically distributed among two or more nodes in the same geographic location or in different geographic locations.
- a disaggregated network node may have a disaggregated architecture.
- disaggregated network nodes 110 may be used in an integrated access and backhaul (IAB) network, in an open radio access network (O-RAN) (such as a network configuration in compliance with the O-RAN Alliance), or in a virtualized radio access network (vRAN), also known as a cloud radio access network (C-RAN), to facilitate scaling by separating base station functionality into multiple units that can be individually deployed.
- IAB integrated access and backhaul
- O-RAN open radio access network
- vRAN virtualized radio access network
- C-RAN cloud radio access network
- the network nodes 110 of the wireless communication network 100 may include one or more central units (CUs), one or more distributed units (DUs), and/or one or more radio units (RUs).
- a CU may host one or more higher layer control functions, such as radio resource control (RRC) functions, packet data convergence protocol (PDCP) functions, and/or service data adaptation protocol (SDAP) functions, among other examples.
- RRC radio resource control
- PDCP packet data convergence protocol
- SDAP service data adaptation protocol
- a DU may host one or more of a radio link control (RLC) layer, a medium access control (MAC) layer, and/or one or more higher physical (PHY) layers depending, at least in part, on a functional split, such as a functional split defined by the 3GPP.
- RLC radio link control
- MAC medium access control
- PHY physical
- a DU also may host one or more lower PHY layer functions, such as a fast Fourier transform (FFT), an inverse FFT (iFFT), beamforming, physical random access channel (PRACH) extraction and filtering, and/or scheduling of resources for one or more UEs 120, among other examples.
- An RU may host RF processing functions or lower PHY layer functions, such as an FFT, an iFFT, beamforming, or PRACH extraction and filtering, among other examples, according to a functional split, such as a lower layer functional split.
- each RU can be operated to handle over the air (OTA) communication with one or more UEs 120.
- OTA over the air
- a single network node 110 may include a combination of one or more CUs, one or more DUs, and/or one or more RUs. Additionally or alternatively, a network node 110 may include one or more Near-Real Time (Near-RT) RAN Intelligent Controllers (RICs) and/or one or more Non-Real Time (Non-RT) RICs.
- a CU, a DU, and/or an RU may be implemented as a virtual unit, such as a virtual central unit (VCU), a virtual distributed unit (VDU), or a virtual radio unit (VRU), among other examples.
- a virtual unit may be implemented as a virtual network function, such as associated with a cloud deployment.
- Some network nodes 110 may provide communication coverage for a particular geographic area.
- the term “cell” can refer to a coverage area of a network node 110 or to a network node 110 itself, depending on the context in which the term is used.
- a network node 110 may support one or multiple (for example, three) cells.
- a network node 110 may provide communication coverage for a macro cell, a pico cell, a femto cell, or another type of cell.
- a macro cell may cover a relatively large geographic area (for example, several kilometers in radius) and may allow unrestricted access by UEs 120 with service subscriptions.
- a pico cell may cover a relatively small geographic area and may allow unrestricted access by UEs 120 with service subscriptions.
- a femto cell may cover a relatively small geographic area (for example, a home) and may allow restricted access by UEs 120 having association with the femto cell (for example, UEs 120 in a closed subscriber group (CSG)).
- a network node 110 for a macro cell may be referred to as a macro network node.
- a network node 110 for a pico cell may be referred to as a pico network node.
- a network node 110 for a femto cell may be referred to as a femto network node or an in-home network node.
- a cell may not necessarily be stationary.
- the geographic area of the cell may move according to the location of an associated mobile network node 110 (for example, a train, a satellite base station, an unmanned aerial vehicle, or an NTN network node).
- an associated mobile network node 110 for example, a train, a satellite base station, an unmanned aerial vehicle, or an NTN network node.
- the wireless communication network 100 may be a heterogeneous network that includes network nodes 110 of different types, such as macro network nodes, pico network nodes, femto network nodes, relay network nodes, aggregated network nodes, and/or disaggregated network nodes, among other examples.
- network nodes 110 of different types, such as macro network nodes, pico network nodes, femto network nodes, relay network nodes, aggregated network nodes, and/or disaggregated network nodes, among other examples.
- the network node 110a may be a macro network node for a macro cell 130a
- the network node 110b may be a pico network node for a pico cell 130b
- the network node 110c may be a femto network node for a femto cell 130c.
- Various different types of network nodes 110 may generally transmit at different power levels, serve different coverage areas, and/or have different impacts on interference in the wireless communication network 100 than other types of network nodes 110.
- macro network nodes may have a high transmit power level (for example, 5 to 40 watts)
- pico network nodes, femto network nodes, and relay network nodes may have lower transmit power levels (for example, 0.1 to 2 watts).
- a network node 110 may be, may include, or may operate as an RU, a TRP, or a base station that communicates with one or more UEs 120 via a radio access link (which may be referred to as a “Uu” link).
- the radio access link may include a downlink and an uplink.
- Downlink (or “DL”) refers to a communication direction from a network node 110 to a UE 120
- uplink or “UL” refers to a communication direction from a UE 120 to a network node 110.
- Downlink channels may include one or more control channels and one or more data channels.
- a downlink control channel may be used to transmit downlink control information (DCI) (for example, scheduling information, reference signals, and/or configuration information) from a network node 110 to a UE 120.
- DCI downlink control information
- a downlink data channel may be used to transmit downlink data (for example, user data associated with a UE 120) from a network node 110 to a UE 120.
- Downlink control channels may include one or more physical downlink control channels (PDCCHs), and downlink data channels may include one or more physical downlink shared channels (PDSCHs).
- Uplink channels may similarly include one or more control channels and one or more data channels.
- An uplink control channel may be used to transmit uplink control information (UCI) (for example, reference signals and/or feedback corresponding to one or more downlink transmissions) from a UE 120 to a network node 110.
- UCI uplink control information
- An uplink data channel may be used to transmit uplink data (for example, user data associated with a UE 120) from a UE 120 to a network node 110.
- Uplink control channels may include one or more physical uplink control channels (PUCCHs), and uplink data channels may include one or more physical uplink shared channels (PUSCHs).
- the downlink and the uplink may each include a set of resources on which the network node 110 and the UE 120 may communicate.
- Downlink and uplink resources may include time domain resources (frames, subframes, slots, and/or symbols), frequency domain resources (frequency bands, component carriers, subcarriers, resource blocks, and/or resource elements), and/or spatial domain resources (particular transmit directions and/or beam parameters). Frequency domain resources of some bands may be subdivided into bandwidth parts (BWPs).
- a BWP may be a continuous block of frequency domain resources (for example, a continuous block of resource blocks) that are allocated for one or more UEs 120.
- a UE 120 may be configured with both an uplink BWP and a downlink BWP (where the uplink BWP and the downlink BWP may be the same BWP or different BWPs).
- a BWP may be dynamically configured (for example, by a network node 110 transmitting a DCI configuration to the one or more UEs 120) and/or reconfigured, which means that a BWP can be adjusted in real-time (or near-real-time) based on changing network conditions in the wireless communication network 100 and/or based on the specific requirements of the one or more UEs 120.
- This enables more efficient use of the available frequency domain resources in the wireless communication network 100 because fewer frequency domain resources may be allocated to a BWP for a UE 120 (which may reduce the quantity of frequency domain resources that a UE 120 is required to monitor), leaving more frequency domain resources to be spread across multiple UEs 120.
- BWPs may also assist in the implementation of lower-capability UEs 120 by facilitating the configuration of smaller bandwidths for communication by such UEs 120.
- the wireless communication network 100 may be, may include, or may be included in, an IAB network.
- at least one network node 110 is an anchor network node that communicates with a core network.
- An anchor network node 110 may also be referred to as an IAB donor (or “lAB-donor”).
- the anchor network node 110 may connect to the core network via a wired backhaul link.
- an Ng interface of the anchor network node 110 may terminate at the core network.
- an anchor network node 110 may connect to one or more devices of the core network that provide a core access and mobility management function (AMF).
- AMF core access and mobility management function
- An IAB network also generally includes multiple non-anchor network nodes 110, which may also be referred to as relay network nodes or simply as IAB nodes (or “lAB-nodes”). Each nonanchor network node 110 may communicate directly with the anchor network node 110 via a wireless backhaul link to access the core network, or may communicate indirectly with the anchor network node 110 via one or more other non-anchor network nodes 110 and associated wireless backhaul links that form a backhaul path to the core network. Some anchor network node 110 or other non-anchor network node 110 may also communicate directly with one or more UEs 120 via wireless access links that carry access traffic. In some examples, network resources for wireless communication (such as time resources, frequency resources, and/or spatial resources) may be shared between access links and backhaul links.
- network resources for wireless communication such as time resources, frequency resources, and/or spatial resources
- any network node 110 that relays communications may be referred to as a relay network node, a relay station, or simply as a relay.
- a relay may receive a transmission of a communication from an upstream station (for example, another network node 110 or a UE 120) and transmit the communication to a downstream station (for example, a UE 120 or another network node 110).
- the wireless communication network 100 may include or be referred to as a “multi-hop network.” In the example shown in Fig.
- the network node 1 lOd may communicate with the network node 110a (for example, a macro network node) and the UE 120d in order to facilitate communication between the network node 110a and the UE 120d.
- a UE 120 may be or may operate as a relay station that can relay transmissions to or from other UEs 120.
- a UE 120 that relays communications may be referred to as a UE relay or a relay UE, among other examples.
- the UEs 120 may be physically dispersed throughout the wireless communication network 100, and each UE 120 may be stationary or mobile.
- a UE 120 may be, may include, or may be included in an access terminal, another terminal, a mobile station, or a subscriber unit.
- a UE 120 may be, include, or be coupled with a cellular phone (for example, a smart phone), a personal digital assistant (PDA), a wireless modem, a wireless communication device, a handheld device, a laptop computer, a cordless phone, a wireless local loop (WLL) station, a tablet, a camera, a gaming device, a netbook, a smartbook, an ultrabook, a medical device, a biometric device, a wearable device (for example, a smart watch, smart clothing, smart glasses, a smart wristband, and/or smart jewelry, such as a smart ring or a smart bracelet), an entertainment device (for example, a music device, a video device, and/or a satellite radio), an XR device, a vehicular component or sensor, a smart meter or sensor, industrial manufacturing equipment, a Global Navigation Satellite System (GNSS
- a UE 120 and/or a network node 110 may include one or more chips, system -on- chips (SoCs), chipsets, packages, or devices that individually or collectively constitute or comprise a processing system.
- the processing system includes processor (or “processing”) circuitry in the form of one or multiple processors, microprocessors, processing units (such as central processing units (CPUs), graphics processing units (GPUs), neural processing units (NPUs) and/or digital signal processors (DSPs)), processing blocks, application-specific integrated circuits (ASIC), programmable logic devices (PLDs) (such as field programmable gate arrays (FPGAs)), or other discrete gate or transistor logic or circuitry (all of which may be generally referred to herein individually as “processors” or collectively as “the processor” or “the processor circuitry”).
- processors or “processing” circuitry in the form of one or multiple processors, microprocessors, processing units (such as central processing units (CPUs), graphics processing units (GPU
- One or more of the processors may be individually or collectively configurable or configured to perform various functions or operations described herein.
- a group of processors collectively configurable or configured to perform a set of functions may include a first processor configurable or configured to perform a first function of the set and a second processor configurable or configured to perform a second function of the set, or may include the group of processors all being configured or configurable to perform the set of functions.
- the processing system may further include memory circuitry in the form of one or more memory devices, memory blocks, memory elements or other discrete gate or transistor logic or circuitry, each of which may include tangible storage media such as random-access memory (RAM) or read-only memory (ROM), or combinations thereof (all of which may be generally referred to herein individually as “memories” or collectively as “the memory” or “the memory circuitry”).
- RAM random-access memory
- ROM read-only memory
- One or more of the memories may be coupled (for example, operatively coupled, communicatively coupled, electronically coupled, or electrically coupled) with one or more of the processors and may individually or collectively store processor-executable code (such as software) that, when executed by one or more of the processors, may configure one or more of the processors to perform various functions or operations described herein.
- one or more of the processors may be preconfigured to perform various functions or operations described herein without requiring configuration by software.
- the processing system may further include or be coupled with one or more modems (such as a Wi-Fi (for example, Institute of Electrical and Electronics Engineers (IEEE) compliant) modem or a cellular (for example, 3 GPP 4G LTE, 5G, or 6G compliant) modem).
- one or more processors of the processing system include or implement one or more of the modems.
- the processing system may further include or be coupled with multiple radios (collectively “the radio”), multiple RF chains, or multiple transceivers, each of which may in turn be coupled with one or more of multiple antennas.
- one or more processors of the processing system include or implement one or more of the radios, RF chains or transceivers.
- the UE 120 may include or may be included in a housing that houses components associated with the UE 120 including the processing system.
- Some UEs 120 may be considered machine-type communication (MTC) UEs, evolved or enhanced machine-type communication (eMTC), UEs, further enhanced eMTC (feMTC) UEs, or enhanced feMTC (efeMTC) UEs, or further evolutions thereof, all of which may be simply referred to as “MTC UEs”.
- An MTC UE may be, may include, or may be included in or coupled with a robot, an uncrewed aerial vehicle, a remote device, a sensor, a meter, a monitor, and/or a location tag.
- Some UEs 120 may be considered loT devices and/or may be implemented as NB-IoT (narrowband loT) devices.
- An loT UE or NB-IoT device may be, may include, or may be included in or coupled with an industrial machine, an appliance, a refrigerator, a doorbell camera device, a home automation device, and/or a light fixture, among other examples.
- Some UEs 120 may be considered Customer Premises Equipment, which may include telecommunications devices that are installed at a customer location (such as a home or office) to enable access to a service provider's network (such as included in or in communication with the wireless communication network 100).
- Some UEs 120 may be classified according to different categories in association with different complexities and/or different capabilities.
- UEs 120 in a first category may facilitate massive loT in the wireless communication network 100, and may offer low complexity and/or cost relative to UEs 120 in a second category.
- UEs 120 in a second category may include mission-critical loT devices, legacy UEs, baseline UEs, high-tier UEs, advanced UEs, fullcapability UEs, and/or premium UEs that are capable of URLLC, eMBB, and/or precise positioning in the wireless communication network 100, among other examples.
- a third category of UEs 120 may have mid-tier complexity and/or capability (for example, a capability between UEs 120 of the first category and UEs 120 of the second capability).
- a UE 120 of the third category may be referred to as a reduced capacity UE (“RedCap UE”), a mid-tier UE, an NR-Light UE, and/or an NR-Lite UE, among other examples.
- RedCap UEs may bridge a gap between the capability and complexity of NB-IoT devices and/or eMTC UEs, and mission- critical loT devices and/or premium UEs.
- RedCap UEs may include, for example, wearable devices, loT devices, industrial sensors, and/or cameras that are associated with a limited bandwidth, power capacity, and/or transmission range, among other examples. RedCap UEs may support healthcare environments, building automation, electrical distribution, process automation, transport and logistics, and/or smart city deployments, among other examples.
- two or more UEs 120 may communicate directly with one another using sidelink communications (for example, without communicating by way of a network node 110 as an intermediary).
- the UE 120a may directly transmit data, control information, or other signaling as a side link communication to the UE 120e.
- the UE 120a may transmit and receive sidelink communications using peer-to-peer (P2P) communication protocols, device-to- device (D2D) communication protocols, vehicle-to-everything (V2X) communication protocols (which may include vehicle-to-vehicle (V2V) protocols, vehicle-to-infrastructure (V2I) protocols, and/or vehicle-to-pedestrian (V2P) protocols), and/or mesh network communication protocols.
- P2P peer-to-peer
- D2D device-to- device
- V2X vehicle-to-everything
- V2V vehicle-to-vehicle
- V2I vehicle-to-infrastructure
- V2P vehicle-to-pedestrian
- a network node 110 may schedule and/or allocate resources for sidelink communications between UEs 120 in the wireless communication network 100.
- a UE 120 (instead of a network node 110) may perform, or collaborate or negotiate with one or more other UEs to perform, scheduling operations, resource selection operations, and/or other operations for sidelink communications.
- some of the network nodes 110 and the UEs 120 of the wireless communication network 100 may be configured for full -duplex operation in addition to halfduplex operation.
- a network node 110 or a UE 120 operating in a half-duplex mode may perform only one of transmission or reception during particular time resources, such as during particular slots, symbols, or other time periods.
- Half-duplex operation may involve timedivision duplexing (TDD), in which DL transmissions of the network node 110 and UL transmissions of the UE 120 do not occur in the same time resources (that is, the transmissions do not overlap in time).
- TDD timedivision duplexing
- a network node 110 or a UE 120 operating in a full-duplex mode can transmit and receive communications concurrently (for example, in the same time resources).
- network nodes 110 and/or UEs 120 may generally increase the capacity of the network and the radio access link.
- full- duplex operation may involve frequency-division duplexing (FDD), in which DL transmissions of the network node 110 are performed in a first frequency band or on a first component carrier and transmissions of the UE 120 are performed in a second frequency band or on a second component carrier different than the first frequency band or the first component carrier, respectively.
- full-duplex operation may be enabled for a UE 120 but not for a network node 110.
- a UE 120 may simultaneously transmit an UL transmission to a first network node 110 and receive a DL transmission from a second network node 110 in the same time resources.
- full-duplex operation may be enabled for a network node 110 but not for a UE 120.
- a network node 110 may simultaneously transmit a DL transmission to a first UE 120 and receive an UL transmission from a second UE 120 in the same time resources.
- full-duplex operation may be enabled for both a network node 110 and a UE 120.
- the UEs 120 and the network nodes 110 may perform MIMO communication.
- MIMO generally refers to transmitting or receiving multiple signals (such as multiple layers or multiple data streams) simultaneously over the same time and frequency resources.
- MIMO techniques generally exploit multipath propagation.
- MIMO may be implemented using various spatial processing or spatial multiplexing operations.
- MIMO may support simultaneous transmission to multiple receivers, referred to as multi-user MIMO (MU-MIMO).
- MU-MIMO multi-user MIMO
- Some RATs may employ advanced MIMO techniques, such as mTRP operation (including redundant transmission or reception on multiple TRPs), reciprocity in the time domain or the frequency domain, single -frequency-network (SFN) transmission, or non -coherent joint transmission (NC-JT).
- a UE may include a communication manager 140.
- the communication manager 140 may receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI.
- the communication manager 140 may receive DCI having the DCI format.
- the communication manager 140 may decode the one or more changed fields and not the one or more unchanged fields. Additionally, or alternatively, the communication manager 140 may perform one or more other operations described herein.
- a network entity may include a communication manager 150.
- the communication manager 150 may transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI.
- the communication manager 150 may encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format.
- the communication manager 150 may transmit the DCI. Additionally, or alternatively, the communication manager 150 may perform one or more other operations described herein.
- Fig. 1 is provided as an example. Other examples may differ from what is described with regard to Fig. 1.
- FIG. 2 is a diagram illustrating an example network node 110 in communication with an example UE 120 in a wireless network, in accordance with the present disclosure.
- the network node 110 may include a data source 212, a transmit processor 214, a transmit (TX) MIMO processor 216, a set of modems 232 (shown as 232a through 232t, where t > 1), a set of antennas 234 (shown as 234a through 234v, where v > 1), a MIMO detector 236, a receive processor 238, a data sink 239, a controller/processor 240, a memory 242, a communication unit 244, a scheduler 246, and/or a communication manager 150, among other examples.
- TX transmit
- one or a combination of the antenna(s) 234, the modem(s) 232, the MIMO detector 236, the receive processor 238, the transmit processor 214, and/or the TX MIMO processor 216 may be included in a transceiver of the network node 110.
- the transceiver may be under control of and used by one or more processors, such as the controller/processor 240, and in some aspects in conjunction with processor-readable code stored in the memory 242, to perform aspects of the methods, processes, and/or operations described herein.
- the network node 110 may include one or more interfaces, communication components, and/or other components that facilitate communication with the UE 120 or another network node.
- processors may refer to one or more controllers and/or one or more processors.
- reference to “a/the processor,” “a/the controller/processor,” or the like (in the singular) should be understood to refer to any one or more of the processors described in connection with Fig. 2, such as a single processor or a combination of multiple different processors.
- Reference to “one or more processors” should be understood to refer to any one or more of the processors described in connection with Fig. 2.
- one or more processors of the network node 110 may include transmit processor 214, TX MIMO processor 216, MIMO detector 236, receive processor 238, and/or controller/processor 240.
- one or more processors of the UE 120 may include MIMO detector 256, receive processor 258, transmit processor 264, TX MIMO processor 266, and/or controller/processor 280.
- a single processor may perform all of the operations described as being performed by the one or more processors.
- a first set of (one or more) processors of the one or more processors may perform a first operation described as being performed by the one or more processors
- a second set of (one or more) processors of the one or more processors may perform a second operation described as being performed by the one or more processors.
- the first set of processors and the second set of processors may be the same set of processors or may be different sets of processors.
- Reference to “one or more memories” should be understood to refer to any one or more memories of a corresponding device, such as the memory described in connection with Fig. 2. For example, operation described as being performed by one or more memories can be performed by the same subset of the one or more memories or different subsets of the one or more memories.
- the transmit processor 214 may receive data (“downlink data”) intended for the UE 120 (or a set of UEs that includes the UE 120) from the data source 212 (such as a data pipeline or a data queue). In some examples, the transmit processor 214 may select one or more MCSs for the UE 120 in accordance with one or more channel quality indicators (CQIs) received from the UE 120. The network node 110 may process the data (for example, including encoding the data) for transmission to the UE 120 on a downlink in accordance with the MCS(s) selected for the UE 120 to generate data symbols.
- data for example, including encoding the data
- the transmit processor 214 may process system information (for example, semi-static resource partitioning information (SRPI)) and/or control information (for example, CQI requests, grants, and/or upper layer signaling) and provide overhead symbols and/or control symbols.
- the transmit processor 214 may generate reference symbols for reference signals (for example, a cell-specific reference signal (CRS), a demodulation reference signal (DMRS), or a channel state information (CSI) reference signal (CSI-RS)) and/or synchronization signals (for example, a primary synchronization signal (PSS) or a secondary synchronization signals (SSS)).
- SRPI semi-static resource partitioning information
- control information for example, CQI requests, grants, and/or upper layer signaling
- CRS cell-specific reference signal
- DMRS demodulation reference signal
- CSI-RS channel state information reference signal
- synchronization signals for example, a primary synchronization signal (PSS) or a secondary synchronization signals (SSS)
- the TX MIMO processor 216 may perform spatial processing (for example, precoding) on the data symbols, the control symbols, the overhead symbols, and/or the reference symbols, if applicable, and may provide a set of output symbol streams (for example, T output symbol streams) to the set of modems 232.
- each output symbol stream may be provided to a respective modulator component (shown as MOD) of a modem 232.
- Each modem 232 may use the respective modulator component to process (for example, to modulate) a respective output symbol stream (for example, for orthogonal frequency division multiplexing (OFDM)) to obtain an output sample stream.
- OFDM orthogonal frequency division multiplexing
- Each modem 232 may further use the respective modulator component to process (for example, convert to analog, amplify, filter, and/or upconvert) the output sample stream to obtain a time domain downlink signal.
- the modems 232a through 232t may together transmit a set of downlink signals (for example, T downlink signals) via the corresponding set of antennas 234.
- a downlink signal may include a DCI communication, a MAC control element (MAC-CE) communication, an RRC communication, a downlink reference signal, or another type of downlink communication.
- Downlink signals may be transmitted on a PDCCH, a PDSCH, and/or on another downlink channel.
- a downlink signal may carry one or more transport blocks (TBs) of data.
- a TB may be a unit of data that is transmitted over an air interface in the wireless communication network 100.
- a data stream (for example, from the data source 212) may be encoded into multiple TBs for transmission over the air interface. The quantity of TBs used to carry the data associated with a particular data stream may be associated with a TB size common to the multiple TBs.
- the TB size may be based on or otherwise associated with radio channel conditions of the air interface, the MCS used for encoding the data, the downlink resources allocated for transmitting the data, and/or another parameter.
- the larger the TB size the greater the amount of data that can be transmitted in a single transmission, which reduces signaling overhead.
- larger TB sizes may be more prone to transmission and/or reception errors than smaller TB sizes, but such errors may be mitigated by more robust error correction techniques.
- uplink signals from the UE 120 may be received by an antenna 234, may be processed by a modem 232 (for example, a demodulator component, shown as DEMOD, of a modem 232), may be detected by the MIMO detector 236 (for example, a receive (Rx) MIMO processor) if applicable, and/or may be further processed by the receive processor 238 to obtain decoded data and/or control information.
- the receive processor 238 may provide the decoded data to a data sink 239 (which may be a data pipeline, a data queue, and/or another type of data sink) and provide the decoded control information to a processor, such as the controller/processor 240.
- the network node 110 may use the scheduler 246 to schedule one or more UEs 120 for downlink or uplink communications.
- the scheduler 246 may use DCI to dynamically schedule DL transmissions to the UE 120 and/or UL transmissions from the UE 120.
- the scheduler 246 may allocate recurring time domain resources and/or frequency domain resources that the UE 120 may use to transmit and/or receive communications using an RRC configuration (for example, a semi-static configuration), for example, to perform semi-persistent scheduling (SPS) or to configure a configured grant (CG) for the UE 120.
- RRC configuration for example, a semi-static configuration
- SPS semi-persistent scheduling
- CG configured grant
- One or more of the transmit processor 214, the TX MIMO processor 216, the modem 232, the antenna 234, the MIMO detector 236, the receive processor 238, and/or the controller/processor 240 may be included in an RF chain of the network node 110.
- An RF chain may include one or more filters, mixers, oscillators, amplifiers, analog-to-digital converters (ADCs), and/or other devices that convert between an analog signal (such as for transmission or reception via an air interface) and a digital signal (such as for processing by one or more processors of the network node 110).
- the RF chain may be or may be included in a transceiver of the network node 110.
- the network node 110 may use the communication unit 244 to communicate with a core network and/or with other network nodes.
- the communication unit 244 may support wired and/or wireless communication protocols and/or connections, such as Ethernet, optical fiber, common public radio interface (CPRI), and/or a wired or wireless backhaul, among other examples.
- the network node 110 may use the communication unit 244 to transmit and/or receive data associated with the UE 120 or to perform network control signaling, among other examples.
- the communication unit 244 may include a transceiver and/or an interface, such as a network interface.
- the UE 120 may include a set of antennas 252 (shown as antennas 252a through 252r, where r > 1), a set of modems 254 (shown as modems 254a through 254u, where u > 1), a MIMO detector 256, a receive processor 258, a data sink 260, a data source 262, a transmit processor 264, a TX MIMO processor 266, a controller/processor 280, a memory 282, and/or a communication manager 140, among other examples.
- One or more of the components of the UE 120 may be included in a housing 284.
- one or a combination of the antenna(s) 252, the modem(s) 254, the MIMO detector 256, the receive processor 258, the transmit processor 264, or the TX MIMO processor 266 may be included in a transceiver that is included in the UE 120.
- the transceiver may be under control of and used by one or more processors, such as the controller/processor 280, and in some aspects in conjunction with processor-readable code stored in the memory 282, to perform aspects of the methods, processes, or operations described herein.
- the UE 120 may include another interface, another communication component, and/or another component that facilitates communication with the network node 110 and/or another UE 120.
- the set of antennas 252 may receive the downlink communications or signals from the network node 110 and may provide a set of received downlink signals (for example, R received signals) to the set of modems 254.
- each received signal may be provided to a respective demodulator component (shown as DEMOD) of a modem 254.
- DEMOD demodulator component
- Each modem 254 may use the respective demodulator component to condition (for example, fdter, amplify, downconvert, and/or digitize) a received signal to obtain input samples.
- Each modem 254 may use the respective demodulator component to further demodulate or process the input samples (for example, for OFDM) to obtain received symbols.
- the MIMO detector 256 may obtain received symbols from the set of modems 254, may perform MIMO detection on the received symbols if applicable, and may provide detected symbols.
- the receive processor 258 may process (for example, decode) the detected symbols, may provide decoded data for the UE 120 to the data sink 260 (which may include a data pipeline, a data queue, and/or an application executed on the UE 120), and may provide decoded control information and system information to the controller/processor 280.
- the transmit processor 264 may receive and process data (“uplink data”) from a data source 262 (such as a data pipeline, a data queue, and/or an application executed on the UE 120) and control information from the controller/processor 280.
- the control information may include one or more parameters, feedback, one or more signal measurements, and/or other types of control information.
- the receive processor 258 and/or the controller/processor 280 may determine, for a received signal (such as received from the network node 110 or another UE), one or more parameters relating to transmission of the uplink communication.
- the one or more parameters may include a reference signal received power (RSRP) parameter, a received signal strength indicator (RS SI) parameter, a reference signal received quality (RSRQ) parameter, a CQI parameter, or a transmit power control (TPC) parameter, among other examples.
- the control information may include an indication of the RSRP parameter, the RSSI parameter, the RSRQ parameter, the CQI parameter, the TPC parameter, and/or another parameter. The control information may facilitate parameter selection and/or scheduling for the UE 120 by the network node 110.
- the transmit processor 264 may generate reference symbols for one or more reference signals, such as an uplink DMRS, an uplink sounding reference signal (SRS), and/or another type of reference signal.
- the symbols from the transmit processor 264 may be precoded by the TX MIMO processor 266, if applicable, and further processed by the set of modems 254 (for example, for DFT-s-OFDM or CP-OFDM).
- the TX MIMO processor 266 may perform spatial processing (for example, precoding) on the data symbols, the control symbols, the overhead symbols, and/or the reference symbols, if applicable, and may provide a set of output symbol streams (for example, U output symbol streams) to the set of modems 254.
- each output symbol stream may be provided to a respective modulator component (shown as MOD) of a modem 254.
- Each modem 254 may use the respective modulator component to process (for example, to modulate) a respective output symbol stream (for example, for OFDM) to obtain an output sample stream.
- Each modem 254 may further use the respective modulator component to process (for example, convert to analog, amplify, filter, and/or upconvert) the output sample stream to obtain an uplink signal.
- the modems 254a through 254u may transmit a set of uplink signals (for example, R uplink signals or U uplink symbols) via the corresponding set of antennas 252.
- An uplink signal may include a UCI communication, a MAC-CE communication, an RRC communication, or another type of uplink communication.
- Uplink signals may be transmitted on a PUSCH, a PUCCH, and/or another type of uplink channel.
- An uplink signal may carry one or more TBs of data.
- Sidelink data and control transmissions may generally use similar techniques as were described for uplink data and control transmission, and may use sidelink-specific channels such as a physical sidelink shared channel (PSSCH), a physical sidelink control channel (PSCCH), and/or a physical sidelink feedback channel (PSFCH).
- PSSCH physical sidelink shared channel
- PSCCH physical sidelink control channel
- PSFCH physical sidelink feedback channel
- One or more antennas of the set of antennas 252 or the set of antennas 234 may include, or may be included within, one or more antenna panels, one or more antenna groups, one or more sets of antenna elements, or one or more antenna arrays, among other examples.
- An antenna panel, an antenna group, a set of antenna elements, or an antenna array may include one or more antenna elements (within a single housing or multiple housings), a set of coplanar antenna elements, a set of non-coplanar antenna elements, or one or more antenna elements coupled with one or more transmission or reception components, such as one or more components of Fig. 2.
- antenna elements can refer to one or more antennas, one or more antenna panels, one or more antenna groups, one or more sets of antenna elements, or one or more antenna arrays.
- Antenna panel can refer to a group of antennas (such as antenna elements) arranged in an array or panel, which may facilitate beamforming by manipulating parameters of the group of antennas.
- Antenna module may refer to circuitry including one or more antennas, which may also include one or more other components (such as fdters, amplifiers, or processors) associated with integrating the antenna module into a wireless communication device.
- each of the antenna elements of an antenna 234 or an antenna 252 may include one or more sub-elements for radiating or receiving radio frequency signals.
- a single antenna element may include a first sub-element cross-polarized with a second sub-element that can be used to independently transmit cross-polarized signals.
- the antenna elements may include patch antennas, dipole antennas, and/or other types of antennas arranged in a linear pattern, a two-dimensional pattern, or another pattern.
- a spacing between antenna elements may be such that signals with a desired wavelength transmitted separately by the antenna elements may interact or interfere constructively and destructively along various directions (such as to form a desired beam).
- the spacing may provide a quarter wavelength, a half wavelength, or another fraction of a wavelength of spacing between neighboring antenna elements to allow for the desired constructive and destructive interference patterns of signals transmitted by the separate antenna elements within that expected range.
- the amplitudes and/or phases of signals transmitted via antenna elements and/or subelements may be modulated and shifted relative to each other (such as by manipulating phase shift, phase offset, and/or amplitude) to generate one or more beams, which is referred to as beamforming.
- beam may refer to a directional transmission of a wireless signal toward a receiving device or otherwise in a desired direction.
- Beam may also generally refer to a direction associated with such a directional signal transmission, a set of directional resources associated with the signal transmission (for example, an angle of arrival, a horizontal direction, and/or a vertical direction), and/or a set of parameters that indicate one or more aspects of a directional signal, a direction associated with the signal, and/or a set of directional resources associated with the signal.
- antenna elements may be individually selected or deselected for directional transmission of a signal (or signals) by controlling amplitudes of one or more corresponding amplifiers and/or phases of the signal(s) to form one or more beams.
- the shape of a beam (such as the amplitude, width, and/or presence of side lobes) and/or the direction of a beam (such as an angle of the beam relative to a surface of an antenna array) can be dynamically controlled by modifying the phase shifts, phase offsets, and/or amplitudes of the multiple signals relative to each other.
- Different UEs 120 or network nodes 110 may include different numbers of antenna elements.
- a UE 120 may include a single antenna element, two antenna elements, four antenna elements, eight antenna elements, or a different number of antenna elements.
- a network node 110 may include eight antenna elements, 24 antenna elements, 64 antenna elements, 128 antenna elements, or a different number of antenna elements.
- a larger number of antenna elements may provide increased control over parameters for beam generation relative to a smaller number of antenna elements, whereas a smaller number of antenna elements may be less complex to implement and may use less power than a larger number of antenna elements.
- Multiple antenna elements may support multiple-layer transmission, in which a first layer of a communication (which may include a first data stream) and a second layer of a communication (which may include a second data stream) are transmitted using the same time and frequency resources with spatial multiplexing.
- Fig. 3 is a diagram illustrating an example disaggregated base station architecture 300, in accordance with the present disclosure.
- One or more components of the example disaggregated base station architecture 300 may be, may include, or may be included in one or more network nodes (such one or more network nodes 110).
- the disaggregated base station architecture 300 may include a CU 310 that can communicate directly with a core network 320 via a backhaul link, or that can communicate indirectly with the core network 320 via one or more disaggregated control units, such as a Non-RT RIC 350 associated with a Service Management and Orchestration (SMO) Framework 360 and/or a Near-RT RIC 370 (for example, via an E2 link).
- the CU 310 may communicate with one or more DUs 330 via respective midhaul links, such as via Fl interfaces.
- Each of the DUs 330 may communicate with one or more RUs 340 via respective fronthaul links.
- Each of the RUs 340 may communicate with one or more UEs 120 via respective RF access links.
- a UE 120 may be simultaneously served by multiple RUs 340.
- Each of the components of the disaggregated base station architecture 300 including the CUs 310, the DUs 330, the RUs 340, the Near-RT RICs 370, the Non-RT RICs 350, and the SMO Framework 360, may include one or more interfaces or may be coupled with one or more interfaces for receiving or transmitting signals, such as data or information, via a wired or wireless transmission medium.
- the CU 310 may be logically split into one or more CU user plane (CU-UP) units and one or more CU control plane (CU-CP) units.
- a CU-UP unit may communicate bidirectionally with a CU-CP unit via an interface, such as the El interface when implemented in an O-RAN configuration.
- the CU 310 may be deployed to communicate with one or more DUs 330, as necessary, for network control and signaling.
- Each DU 330 may correspond to a logical unit that includes one or more base station functions to control the operation of one or more RUs 340.
- a DU 330 may host various layers, such as an RLC layer, a MAC layer, or one or more PHY layers, such as one or more high PHY layers or one or more low PHY layers.
- Each layer (which also may be referred to as a module) may be implemented with an interface for communicating signals with other layers (and modules) hosted by the DU 330, or for communicating signals with the control functions hosted by the CU 310.
- Each RU 340 may implement lower layer functionality. In some aspects, real-time and non-real-time aspects of control and user plane communication with the RU(s) 340 may be controlled by the corresponding DU 330.
- the SMO Framework 360 may support RAN deployment and provisioning of nonvirtualized and virtualized network elements.
- the SMO Framework 360 may support the deployment of dedicated physical resources for RAN coverage requirements, which may be managed via an operations and maintenance interface, such as an 01 interface.
- the SMO Framework 360 may interact with a cloud computing platform (such as an open cloud (O-Cloud) platform 390) to perform network element life cycle management (such as to instantiate virtualized network elements) via a cloud computing platform interface, such as an 02 interface.
- a cloud computing platform such as an open cloud (O-Cloud) platform 390
- network element life cycle management such as to instantiate virtualized network elements
- a virtualized network element may include, but is not limited to, a CU 310, a DU 330, an RU 340, a non-RT RIC 350, and/or a Near-RT RIC 370.
- the SMO Framework 360 may communicate with a hardware aspect of a 4G RAN, a 5G NR RAN, and/or a 6G RAN, such as an open eNB (O- eNB) 380, via an 01 interface. Additionally or alternatively, the SMO Framework 360 may communicate directly with each of one or more RUs 340 via a respective 01 interface. In some deployments, this configuration can enable each DU 330 and the CU 310 to be implemented in a cloud-based RAN architecture, such as a vRAN architecture.
- the Non-RT RIC 350 may include or may implement a logical function that enables non-real-time control and optimization of RAN elements and resources, AI/ML workflows including model training and updates, and/or policy-based guidance of applications and/or features in the Near-RT RIC 370.
- the Non-RT RIC 350 may be coupled to or may communicate with (such as via an Al interface) the Near-RT RIC 370.
- the Near-RT RIC 370 may include or may implement a logical function that enables near-real-time control and optimization of RAN elements and resources via data collection and actions via an interface (such as via an E2 interface) connecting one or more CUs 310, one or more DUs 330, and/or an O-eNB with the Near-RT RIC 370.
- an interface such as via an E2 interface
- the Non-RT RIC 350 may receive parameters or external enrichment information from external servers. Such information may be utilized by the Near-RT RIC 370 and may be received at the SMO Framework 360 or the Non-RT RIC 350 from non-network data sources or from network functions. In some examples, the Non-RT RIC 350 or the Near-RT RIC 370 may tune RAN behavior or performance. For example, the Non-RT RIC 350 may monitor long-term trends and patterns for performance and may employ AI/ML models to perform corrective actions via the SMO Framework 360 (such as reconfiguration via an 01 interface) or via creation of RAN management policies (such as Al interface policies).
- the network node 110, the controller/processor 240 of the network node 110, the UE 120, the controller/processor 280 of the UE 120, the CU 310, the DU 330, the RU 340, or any other componcnt(s) of Figs. 1, 2, or 3 may implement one or more techniques or perform one or more operations associated with using a DCI format for fields with changed values and unchanged values, as described in more detail elsewhere herein.
- the CU 310, the DU 330, or the RU 340 may perform or direct operations of, for example, process 1300 of Fig. 13, process 1400 of Fig. 14, or other processes as described herein (alone or in conjunction with one or more other processors).
- the memory 242 may store data and program codes for the network node 110, the network node 110, the CU 310, the DU 330, or the RU 340.
- the memory 282 may store data and program codes for the UE 120.
- the memory 242 or the memory 282 may include a non-transitory computer-readable medium storing a set of instructions (for example, code or program code) for wireless communication.
- the memory 242 may include one or more memories, such as a single memory or multiple different memories (of the same type or of different types).
- the memory 282 may include one or more memories, such as a single memory or multiple different memories (of the same type or of different types).
- the set of instructions when executed (for example, directly, or after compiling, converting, or interpreting) by one or more processors of the network node 110, the UE 120, the CU 310, the DU 330, or the RU 340, may cause the one or more processors to perform process 1300 of Fig. 13, process 1400 of Fig. 14, or other processes as described herein.
- executing instructions may include running the instructions, converting the instructions, compiling the instructions, and/or interpreting the instructions, among other examples.
- a UE (e.g., a UE 120) includes means for receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI; means for receiving DCI having the DCI format; and/or means for decoding the one or more changed fields and not the one or more unchanged fields.
- the means for the UE to perform operations described herein may include, for example, one or more of communication manager 140, antenna 252, modem 254, MIMO detector 256, receive processor 258, transmit processor 264, TX MIMO processor 266, controller/processor 280, or memory 282.
- a network entity e.g., a network node 110
- the means for the network entity to perform operations described herein may include, for example, one or more of communication manager 150, transmit processor 214, TX MIMO processor 216, modem 232, antenna 234, MIMO detector 236, receive processor 238, controller/processor 240, memory 242, or scheduler 246.
- Fig. 3 is provided as an example. Other examples may differ from what is described with regard to Fig. 3.
- Fig. 4 is a diagram illustrating an example 400 of DCI fields, in accordance with the present disclosure.
- Fig. 4 is provided as an example. Other examples may differ from what is described with regard to Fig. 4.
- Fig. 5 is a diagram illustrating an example 500 of a DCI format, in accordance with the present disclosure.
- Many fields (bits) of DCI remain unchanged over multiple consecutive transmissions (MCTs).
- MCTs consecutive transmissions
- the UE can exploit the unchanged fields and improve the decoding performance.
- a network entity may indicate which fields of DCI are going to remain unchanged.
- the network entity may indicate, for example, that fields P2 and P4 include known bits (unchanged fields 502) and the UE is to start decoding at the first changed field (of changed fields 504), or P0.
- the changed fields 504 are fields that can be expected to change, but not all of these fields may have changed.
- the network entity may indicate how long the unchanged fields are to remain unchanged over MCTs.
- the UE may decode only the changed fields 504 and not decode the unchanged fields 502.
- the UE may reduce the amount of blind bit/field decoding and improve the DCI decoding performance and reliability. Improved reliability may be achieved by mapping the unchanged DCI bits of the unchanged fields 502 on the least reliable indices of polar codes and mapping the changed DCI bits of the changed fields 504 on the most reliable indices. As a result, the UE conserves time and processing resources.
- fields that can have a strong correlation in time may include: a DCI format indicator, DMRS ports, a modulation and coding scheme (MCS), a time domain resource allocation (TDRA), a frequency domain resource allocation (FDRA), a transmit power control (TPC), a DMRS pattern, a hybrid automatic repeat request (HARQ) acknowledgement (ACK) timing, a PUCCH resource indicator, a sounding reference signal (SRS) request, a HARQ process number, a new data indicator (NDI), a redundancy version (RV), and/or a downlink assignment index (DAI).
- MCS modulation and coding scheme
- TDRA time domain resource allocation
- FDRA frequency domain resource allocation
- TPC transmit power control
- ACK hybrid automatic repeat request acknowledgement
- PUCCH resource indicator a sounding reference signal (SRS) request
- SRS sounding reference signal
- RV redundancy version
- DAI downlink assignment index
- DCI fields with a strong correlation and non- uniform probability distribution may be located in the least reliable locations (e.g., beginning of the DCI) and other fields may be located in the most reliable locations (e.g., after the unchanged fields 502, in middle of the DCI).
- the network entity may arrange the DCI fields with a strong correlation and non-uniform probability distribution (unchanged fields 502) at the beginning of the DCI and remaining fields (changed fields 504) after the unchanged fields 502.
- P0 to Pr-1 may be the fields of a given DCIF. As per NR 5G DCI design, P0 to Pr-1 may be mapped in the increasing order of their index.
- a DCIF may indicate which fields are unchanged or how many fields are unchanged with respect to a previous transmission of DCI.
- NR 5G may use tables for channel indices in the increasing order of their reliability. Such tables may include standards tables for channel indices of polar codes along with their reliability.
- the network entity may select the K most reliable channel indices out of N available channel indices and map K information bits to K channel indices of an ' bit vector. This may be referred to as K-to-N mapping.
- K-to-N mapping The remaining N-K indices of the A'-bit vector are set to zero.
- K may be equal to A + 24 (A payload and 24 cyclic redundancy check (CRC) bits) bits.
- the N-bit vector obtained after mapping may be given as an input to the polar encoder.
- the network entity may map the information bits in the increasing order of their index. But, for NR 5G, there is no distinction between known bits and unknown bits. Therefore, in some aspects, the network entity may map the known bits to the least reliable locations and unknown bits to the most reliable locations, depending on the percentage of known bits from the previous transmission. Such mapping can result in significant improvement in the decoding performance of subsequent DCI transmissions after the first successful DCI transmission over MCTs.
- Example 500 shows that, in a new control information mapping, the known bits (e.g., in fields P2 and P4) are mapped to the least reliable locations and the unknown bits (e.g., in fields P0, Pl, P3, P5, ... Pr-1) are mapped to the most reliable locations.
- TDC-DCIs time domain coupled DCIs
- Coupling refers to all or a portion of bits remaining unchanged over multiple consecutive DCI transmissions. For example, in NR 5G as shown in example 400, known bits of P2 and P4 remain unchanged over MCTs.
- the UE determines the time-domain coupling on its own to take advantage of the coupling. Even though the UE determines, in NR 5G, K-to-N mapping, the UE does not distinguish between unchanged and changed bits. In other words, the mapping of example 400 does not leverage the unchanged bits to enable the improvement in decoding performance at UE.
- Fig. 5 is provided as an example. Other examples may differ from what is described with regard to Fig. 5.
- Fig. 6 is a diagram illustrating an example 600 associated with a DCI format for unchanged fields, in accordance with the present disclosure.
- a network entity 610 e.g., network node 110
- a UE 620 e.g., UE 120
- a wireless network e.g., wireless communication network 100
- the network entity 610 may indicate time-domain coupling of DCIs over MCTs to the UE 620 via a window length and by rearranging the fields as in example 500. This indication aids the K-to-N mapping to map unchanged field (known bits) to the least reliable indices and changed fields (unknown bits) to the most reliable indices.
- the DCIs transmitted with this scheme are referred to as TDC-DCIs.
- the network entity 610 may transmit an indication of a DCI format with changed fields (one or more fields with changed values since the previous DCI) that follow unchanged fields (one or more fields with unchanged values since the previous DCI).
- the network entity 610 may also transmit a window indication that indicates a window length for how long (e.g., how many slots or monitoring occasions) the unchanged fields are to be unchanged.
- the UE 620 may receive the indication and the window indication.
- the network entity 610 may transmit DCI having the DCI format.
- the UE 620 may receive the DCI.
- the UE 620 may decode the unchanged fields of the DCI and not the unchanged fields.
- the unchanged fields may be consecutive fields at the beginning of the DCI.
- the changed fields may be consecutive fields that start after the unchanged field.
- the UE 620 may start decoding at a first field of the changed fields.
- the changed fields and the unchanged fields may be permutated (rearranged) with respect to a reference DCI format, to obtain the DCI format.
- the DCI formats 0 0, 1 1, 1 0, and 0 1 may be given in a 3GPP standard.
- the quantity of fields that the network entity 610 selects to remain the same in a given window can change. This may involve a permutation of fields of DCI to keep all unchanged fields at the beginning and changed fields at the end.
- the permutation of fields in a DCI results in a new DCI format that is derived from a reference DCI format given in a 3GPP standard.
- One or more changed fields are mapped to higher reliability bit indices of polar encoder input than the one or more unchanged fields.
- a DCIF may be referred to as a base DCIF (BDCIF).
- BDCIFs may be existing DCIFs that are given in NR 5G. Each of these DCIFs may be defined in a 3GPP standard as BDCIF X, where X indicates a different DCI format (e.g., 0 0, 1 0, 1 1, 0 1).
- the field mapping of DCI in example 500 may include a permuted version of the DCI shown in example 400.
- the DCIF shown in example 500 may be a permuted DCIF (PDCIF), which is a permuted version of BDCIF. As there can be many permutations of a given BDCIF X, the permutations may be indexed as PDCIF X Y.
- PDCIF X Y permuted DCIF
- Y indicates an index corresponding to a possible permutation of BDCIF X.
- BDCIF X may also be indexed as PDCIF X 0 and any other permutations may be indexed as PDCIF X l, PDCIF X 2, . . . , PDCIF X Y.
- PDCIF X l PDCIF X 2
- PDCIF X Y PDCIF X Y.
- rr window length
- each PDCIF X Y index may implicitly indicate how many fields at the beginning are to remain the same over w slots. All of the valid PDCIF_X_Y may be given in the standard, or the network entity 610 may indicate, to the UE 620 via RRC signaling or a MAC-CE, the order of fields and the quantity of fields at the beginning of a DCI that are to remain the same over the window length w. The network entity 610 may also transmit the window indication via RRC signaling or a MAC-CE.
- the window length w may be defined as the quantity of consecutive DCI slots. Even if there is no DCI transmission in some slots (empty slots), these slots are counted as a part of the window length w.
- the network entity 610 may indicate to the UE 620 that some fields that are expected to be unchanged in a window are now going to be changed in the middle of a window starting from the next DCI transmission after the empty slot.
- w may be defined as a quantity of consecutive slots. Some of these slots may include uplink slots. Whether uplink slots are included or not and/or how many of the slots are included in the window length may be defined.
- the network entity 610 may transmit an update of a DCI format and/or an update of a window length.
- Fig. 6 is provided as an example. Other examples may differ from what is described with respect to Fig. 6.
- Fig. 7 is a diagram illustrating an example 700 of signaling for DCI formats, in accordance with the present disclosure.
- Example 700 shows a timing diagram and a pictorial representation of a message exchange between the network entity 610 and the UE 620.
- the network entity 610 may transmit an indication of the DCI format (PDCIF 702 index) via an RRC message.
- the network entity 610 may start transmitting DCI using the PDCIF 702 format.
- the window length w may include slots for which the fields of PDCIF 702 remain unchanged. In example 700, w is assumed to be greater than the RRC setup or reconfiguration delay.
- the network entity 610 may indicate this information to the UE 620.
- the RRC setup or reconfiguration delay (e.g., 10 ms) may be high. If the network entity 610 waits 10 ms to indicate a DCIF change to the UE 620, there may be a delay in the communication. To avoid the delay, the network entity 610 may transmit a MAC-CE to the UE 620 for fast signaling of special control information. MAC-CE action timing may be around 3 ms.
- the network entity 610 may start using PDCIF 706 for DCI transmissions.
- example 700 detailed RRC and MAC-CE signaling between the network entity 610 and the UE 620 is to be expected as per NR 5G.
- the parameters tl, ql, q2, m, w may be variable.
- m is expected to be greater than MAC-CE action timing
- w is expected to be greater than RRC setup or reconfiguration delays.
- the values of m and w may be different.
- Example 700 shows one MAC-CE signal between two RRC signals to update the DCI format. But in practice, for larger w, it is possible to have more than one MAC-CE exchange between two RRC exchanges related to a DCI format update.
- Fig. 7 is provided as an example. Other examples may differ from what is described with regard to Fig. 7.
- Fig. 8 is a diagram illustrating an example 800 of DCI formats, in accordance with the present disclosure.
- the DCI format remains unchanged during the window w, and thus there is no MAC-CE signaling, in contrast with the MAC-CE signaling shown in example 700.
- the DCI format change related communication between the network entity 610 and the UE 620 occurs via RRC signaling.
- Fig. 8 is provided as an example. Other examples may differ from what is described with regard to Fig. 8.
- Fig. 9 is a diagram illustrating an example 900 of using a DCI format, in accordance with the present disclosure.
- the network entity 610 may initially expect a larger w but because of the change in channel characteristics, the network entity 610 may change known bits within the window m shown in example 700. If the network entity 610 does not have enough time to update the UE 620 about the DCIF change via MAC-CE signaling, the network entity 610 may not change the payload of the known bits through consecutive slots. To change the known bits without any RRC or MAC-CE signaling, the network entity 610 may wait for one slot. Hence, in this case, there is an empty slot 902 where the network entity 610 does not transmit any DCI to the UE 620 in one slot and from the subsequent slot in that window w .
- the network entity may not change the format (because there is no way to communicate the format change to the UE 620) but may change the value of some bits or a portion of known bits. Accordingly, as shown in example 900, the DCI transmissions in ml slots may have the same values for known bits. If the network entity 610 is to change the value of known bits again during ml slots, there may be an empty slot 902. If w is large, the percentage of empty slots may be negligible. If w is set to be small, there may not be a need for empty slots. In example 900, if ml is large enough, the network entity 610 may use MAC-CE signaling to update the UE 620 about the format change and use a different format for transmission in the middle of ml slots.
- the time-domain coupling is interrupted in the middle of the window, but the network entity 610 does not explicitly communicate this interruption to the UE 620.
- the empty slot aids the UE 620 in recognizing the interruption in time-domain coupling and thus the UE 620 may decode the subsequent DCIs, considering all of the fields/bits as unknown.
- the UE 620 decodes DCI assuming some bits are unchanged, while the bits are actually changed. This assumption may result in a CRC failure for that DCI.
- Fig. 9 is provided as an example. Other examples may differ from what is described with regard to Fig. 9.
- Fig. 10 is a diagram illustrating examples 1000 and 1002 of encoding DCI, in accordance with the present disclosure.
- Example 1000 shows a DCI encoding chain in NR 5G, starting with a DCI payload 1004.
- a radio temporary network identifier (RNTI) mask may be used for the CRC of the DCI payload 1004 before an interleaver 1006 interleaves DCI fields for mapping to a polar encoder.
- Example 1002 shows the changes in the DCI encoding associated with the TDC-DCI transmissions described herein.
- a difference between example 1000 and example 1002 is that, in example 1000, AT bits (DCI payload 1008 and CRC) are interleaved before K-to-N mapping. In example 1002, AT bits are not interleaved so as to allow for the permutation of the DCI fields according to a DCI format for unchanged values.
- Fig. 10 is provided as an example. Other examples may differ from what is described with regard to Fig. 10.
- Fig. 11 is a diagram illustrating an example 1100 of decoding DCI with a BDCIF, in accordance with the present disclosure.
- Example 1100 shows a decoding methodology generally used at the UE 620 n NR 5G for DCI decoding.
- the UE 620 may perform blind bit/field decoding to decode the DCI.
- the NR 5G Standard specifies the DCI formats like Format 0 0, Format 0 1, Format 1 0, Format 1 1, ... , Format 3 1.
- BDCIF X may be one of these formats.
- the hypothesis hyp-A may correspond to a hypothesis where a certain j number of fields at the beginning of the payload (depends on BDCIF 1104) are the same over MCTs.
- the hypothesis hyp-B may correspond to a hypothesis where all of the fields are unknown.
- decoding the hypothesis expects that all of the fields in a DCI payload are unknown.
- Fig. 11 is provided as an example. Other examples may differ from what is described with regard to Fig. 11.
- Fig. 12 is a diagram illustrating an example 1200 of decoding DCI with a PDCIF, in accordance with the present disclosure.
- Example 1200 shows a decoding methodology that can leverage the proposed TDC- DCI transmissions to improve the decoding performance.
- PDCIF 1104 may be transmitted over m slots.
- the UE 620 may expect all known fields to stay constant across the window. Therefore, at UE 620, in the first time slot among these m time slots, if there is a passing hypothesis (hyp), bits corresponding to j fields are known for the remaining (m - 1) slots. While decoding the hypothesis in the subsequent (m - 1) slots, bits of j fields are treated as known bits. This aids the UE 620 in significantly improving the decoding performance in the next (m - 1) slots.
- the UE 620 may decode the DCI in subsequent (m - 1) slots at a lower signal -to-noise ratio (SNR).
- SNR signal -to-noise ratio
- hyp-B may be decoded and in the remaining time slots, hyp- A is decoded.
- the network entity 610 may communicate, to the 620, that the UE 620 has j fields that remain constant. If hyp-A does not pass in any slot (ith slot), starting from (i + ⁇ )th slot to mth or wth slots, the UE 620 may decode hyp-B (all the bits are assumed to be unknown). As shown in Figure 9, the ith slot could be an empty slot and hence there is no passing hypothesis.
- the general decoding methodology is that, even though the window length w is greater than 2, the UE 620 may expect that the time correlation only applies to consecutive DCI transmissions.
- the UE 620 may automatically fall back to hyp-B decoding.
- the number of hypotheses remains the same as in NR 5G, but the benefits of the proposed TDC- DCI transmissions are manifest in i - 1 slots, but not in the remaining ml slots in example 800. Therefore, to take advantage of TDC-DCI transmissions in the remaining l slots, if hyp-B passes in the (i + ⁇ )th slot, the UE may try hyp-A again starting from the (i + 2)th slot and repeat this process based on CRC pass/fail. Hence, as shown in example 1200, the decoding hypothesis may switch between hyp-A and hyp-B.
- FIG. 12 is provided as an example. Other examples may differ from what is described with regard to Fig. 12.
- Fig. 13 is a diagram illustrating an example process 1300 performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure.
- Example process 1300 is an example where the apparatus or the UE (e.g., UE 120, UE 620) performs operations associated with a DCI format for fields with unchanged values.
- process 1300 may include receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI (block 1310).
- the UE e.g., using reception component 1502 and/or communication manager 1506, depicted in Fig. 15
- process 1300 may include receiving DCI having the DCI format (block 1320).
- the UE e.g., using reception component 1502 and/or communication manager 1506, depicted in Fig. 15
- process 1300 may include decoding the one or more changed fields and not the one or more unchanged fields (block 1330).
- the UE e.g., using communication manager 1506, depicted in Fig. 15
- Process 1300 may include additional aspects, such as any single aspect or any combination of aspects described below and/or in connection with one or more other processes described elsewhere herein.
- the one or more changed fields are consecutive fields.
- the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
- the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
- the one or more changed fields are located after the one or more unchanged fields.
- process 1300 includes receiving a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
- the window includes one or more consecutive DCI slots or monitoring occasions.
- a configuration for the DCI format indicates which fields are the one or more changed fields and which fields are the one or more unchanged fields.
- process 1300 includes receiving a DCI format update via a MAC-CE or radio resource control signaling.
- process 1300 includes receiving a window length update via a MAC-CE or radio resource control signaling.
- process 1300 includes modifying the one or more unchanged fields based at least in part on receiving an empty slot.
- process 1300 may include additional blocks, fewer blocks, different blocks, or differently arranged blocks than those depicted in Fig. 13. Additionally, or alternatively, two or more of the blocks of process 1300 may be performed in parallel.
- Fig. 14 is a diagram illustrating an example process 1400 performed, for example, at a network entity or an apparatus of a network entity, in accordance with the present disclosure.
- Example process 1400 is an example where the apparatus or the network entity (e.g., network node 110, network entity 610) performs operations associated with a DCI format for fields with unchanged values.
- the apparatus or the network entity e.g., network node 110, network entity 610
- process 1400 may include transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI (block 1410).
- the network entity e.g., using transmission component 1604 and/or communication manager 1606, depicted in Fig. 16
- process 1400 may include encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format (block 1420).
- the network entity e.g., using communication manager 1606, depicted in Fig. 16
- process 1400 may include transmitting the DCI (block 1430).
- the network entity e.g., using transmission component 1604 and/or communication manager 1606, depicted in Fig. 16
- Process 1400 may include additional aspects, such as any single aspect or any combination of aspects described below and/or in connection with one or more other processes described elsewhere herein.
- the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
- the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
- the one or more changed fields are located after the one or more unchanged fields.
- process 1400 includes transmitting a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
- process 1400 includes transmitting a DCI format update or a window length update via a MAC-CE or RRC signaling.
- process 1400 includes indicating a modification of the one or more unchanged fields using an empty slot during transmission.
- bits for DCI are not interleaved in a DCI encoding chain before encoding.
- process 1400 may include additional blocks, fewer blocks, different blocks, or differently arranged blocks than those depicted in Fig. 14. Additionally, or alternatively, two or more of the blocks of process 1400 may be performed in parallel.
- Fig. 15 is a diagram of an example apparatus 1500 for wireless communication, in accordance with the present disclosure.
- the apparatus 1500 may be a UE, or a UE may include the apparatus 1500.
- the apparatus 1500 includes a reception component 1502, a transmission component 1504, and/or a communication manager 1506, which may be in communication with one another (for example, via one or more buses and/or one or more other components).
- the communication manager 1506 is the communication manager 140 described in connection with Fig. 1.
- the apparatus 1500 may communicate with another apparatus 1508, such as a UE or a network node (such as a CU, a DU, an RU, or a base station), using the reception component 1502 and the transmission component 1504.
- another apparatus 1508 such as a UE or a network node (such as a CU, a DU, an RU, or a base station), using the reception component 1502 and the transmission component 1504.
- the apparatus 1500 may be configured to perform one or more operations described herein in connection with Figs. 1-12. Additionally, or alternatively, the apparatus 1500 may be configured to perform one or more processes described herein, such as process 1300 of Fig. 13.
- the apparatus 1500 and/or one or more components shown in Fig. 15 may include one or more components of the UE described in connection with Fig. 2. Additionally, or alternatively, one or more components shown in Fig. 15 may be implemented within one or more components described in connection with Fig. 2. Additionally, or alternatively, one or more components of the set of components may be implemented at least in part as software stored in one or more memories. For example, a component (or a portion of a component) may be implemented as instructions or code stored in a non-transitory computer- readable medium and executable by one or more controllers or one or more processors to perform the functions or operations of the component.
- the reception component 1502 may receive communications, such as reference signals, control information, data communications, or a combination thereof, from the apparatus 1508.
- the reception component 1502 may provide received communications to one or more other components of the apparatus 1500.
- the reception component 1502 may perform signal processing on the received communications (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, de-mapping, equalization, interference cancellation, or decoding, among other examples), and may provide the processed signals to the one or more other components of the apparatus 1500.
- the reception component 1502 may include one or more antennas, one or more modems, one or more demodulators, one or more MIMO detectors, one or more receive processors, one or more controllers/processors, one or more memories, or a combination thereof, of the UE described in connection with Fig. 2.
- the transmission component 1504 may transmit communications, such as reference signals, control information, data communications, or a combination thereof, to the apparatus 1508.
- one or more other components of the apparatus 1500 may generate communications and may provide the generated communications to the transmission component 1504 for transmission to the apparatus 1508.
- the transmission component 1504 may perform signal processing on the generated communications (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples), and may transmit the processed signals to the apparatus 1508.
- the transmission component 1504 may include one or more antennas, one or more modems, one or more modulators, one or more transmit MIMO processors, one or more transmit processors, one or more controllers/processors, one or more memories, or a combination thereof, of the UE described in connection with Fig. 2. In some aspects, the transmission component 1504 may be co-located with the reception component 1502 in one or more transceivers.
- the communication manager 1506 may support operations of the reception component 1502 and/or the transmission component 1504. For example, the communication manager 1506 may receive information associated with configuring reception of communications by the reception component 1502 and/or transmission of communications by the transmission component 1504. Additionally, or alternatively, the communication manager 1506 may generate and/or provide control information to the reception component 1502 and/or the transmission component 1504 to control reception and/or transmission of communications. [0169]
- the reception component 1502 may receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI.
- the reception component 1502 may receive DCI having the DCI format.
- the communication manager 1506 may decode the one or more changed fields and not the one or more unchanged fields.
- the reception component 1502 may receive a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
- the reception component 1502 may receive a DCI format update via a MAC-CE or RRC signaling.
- the reception component 1502 may receive a window length update via a MAC-CE or radio resource control signaling.
- the communication manager 1506 may modify the one or more unchanged fields based at least in part on receiving an empty slot.
- Fig. 15 The number and arrangement of components shown in Fig. 15 are provided as an example. In practice, there may be additional components, fewer components, different components, or differently arranged components than those shown in Fig. 15. Furthermore, two or more components shown in Fig. 15 may be implemented within a single component, or a single component shown in Fig. 15 may be implemented as multiple, distributed components. Additionally, or alternatively, a set of (one or more) components shown in Fig. 15 may perform one or more functions described as being performed by another set of components shown in Fig. 15.
- Fig. 16 is a diagram of an example apparatus 1600 for wireless communication, in accordance with the present disclosure.
- the apparatus 1600 may be a network entity, or a network entity may include the apparatus 1600.
- the apparatus 1600 includes a reception component 1602, a transmission component 1604, and/or a communication manager 1606, which may be in communication with one another (for example, via one or more buses and/or one or more other components).
- the communication manager 1606 is the communication manager 150 described in connection with Fig. 1.
- the apparatus 1600 may communicate with another apparatus 1608, such as a UE or a network node (such as a CU, a DU, an RU, or a base station), using the reception component 1602 and the transmission component 1604.
- another apparatus 1608 such as a UE or a network node (such as a CU, a DU, an RU, or a base station), using the reception component 1602 and the transmission component 1604.
- the apparatus 1600 may be configured to perform one or more operations described herein in connection with Figs. 1-12. Additionally, or alternatively, the apparatus 1600 may be configured to perform one or more processes described herein, such as process 1400 of Fig. 14.
- the apparatus 1600 and/or one or more components shown in Fig. 16 may include one or more components of the network entity described in connection with Fig. 2. Additionally, or alternatively, one or more components shown in Fig. 16 may be implemented within one or more components described in connection with Fig. 2. Additionally, or alternatively, one or more components of the set of components may be implemented at least in part as software stored in one or more memories. For example, a component (or a portion of a component) may be implemented as instructions or code stored in a non-transitory computer-readable medium and executable by one or more controllers or one or more processors to perform the functions or operations of the component.
- the reception component 1602 may receive communications, such as reference signals, control information, data communications, or a combination thereof, from the apparatus 1608.
- the reception component 1602 may provide received communications to one or more other components of the apparatus 1600.
- the reception component 1602 may perform signal processing on the received communications (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, de-mapping, equalization, interference cancellation, or decoding, among other examples), and may provide the processed signals to the one or more other components of the apparatus 1600.
- the reception component 1602 may include one or more antennas, one or more modems, one or more demodulators, one or more MIMO detectors, one or more receive processors, one or more controllers/processors, one or more memories, or a combination thereof, of the network entity described in connection with Fig. 2.
- the transmission component 1604 may transmit communications, such as reference signals, control information, data communications, or a combination thereof, to the apparatus 1608.
- one or more other components of the apparatus 1600 may generate communications and may provide the generated communications to the transmission component 1604 for transmission to the apparatus 1608.
- the transmission component 1604 may perform signal processing on the generated communications (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples), and may transmit the processed signals to the apparatus 1608.
- the transmission component 1604 may include one or more antennas, one or more modems, one or more modulators, one or more transmit MIMO processors, one or more transmit processors, one or more controllers/processors, one or more memories, or a combination thereof, of the network entity described in connection with Fig. 2. In some aspects, the transmission component 1604 may be co-located with the reception component 1602 in one or more transceivers.
- the communication manager 1606 may support operations of the reception component 1602 and/or the transmission component 1604. For example, the communication manager 1606 may receive information associated with configuring reception of communications by the reception component 1602 and/or transmission of communications by the transmission component 1604. Additionally, or alternatively, the communication manager 1606 may generate and/or provide control information to the reception component 1602 and/or the transmission component 1604 to control reception and/or transmission of communications. [0177]
- the transmission component 1604 may transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI.
- the communication manager 1606 may encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format.
- the transmission component 1604 may transmit the DCI.
- the transmission component 1604 may transmit a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
- the transmission component 1604 may transmit a DCI format update or a window length update via a MAC-CE or radio resource control signaling.
- the communication manager 1606 may indicate a modification of the one or more unchanged fields using an empty slot during transmission.
- the number and arrangement of components shown in Fig. 16 are provided as an example. In practice, there may be additional components, fewer components, different components, or differently arranged components than those shown in Fig. 16. Furthermore, two or more components shown in Fig. 16 may be implemented within a single component, or a single component shown in Fig. 16 may be implemented as multiple, distributed components. Additionally, or alternatively, a set of (one or more) components shown in Fig. 16 may perform one or more functions described as being performed by another set of components shown in Fig. 16.
- Aspect 1 A method of wireless communication performed by a UE, comprising: receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI; receiving DCI having the DCI format; and decoding the one or more changed fields and not the one or more unchanged fields.
- Aspect 2 The method of Aspect 1, wherein the one or more changed fields are consecutive fields.
- Aspect 3 The method of any of Aspects 1-2, wherein the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
- Aspect 4 The method of any of Aspects 1-3, wherein the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
- Aspect 5 The method of any of Aspects 1-4, wherein the one or more changed fields are located after the one or more unchanged fields.
- Aspect 6 The method of any of Aspects 1-5, further comprising receiving a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
- Aspect 7 The method of Aspect 6, wherein the window includes one or more consecutive DCI slots or monitoring occasions.
- Aspect 8 The method of any of Aspects 1-7, wherein a configuration for the DCI format indicates which fields are the one or more changed fields and which fields are the one or more unchanged fields.
- Aspect 9 The method of any of Aspects 1-8, further comprising receiving a DCI format update via a medium access control control element (MAC-CE) or radio resource control signaling.
- MAC-CE medium access control control element
- Aspect 10 The method of any of Aspects 1-9, further comprising receiving a window length update via a medium access control control element (MAC-CE) or radio resource control signaling.
- MAC-CE medium access control control element
- Aspect 11 The method of any of Aspects 1-10, further comprising modifying the one or more unchanged fields based at least in part on receiving an empty slot.
- a method of wireless communication performed by a network entity comprising: transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI; encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format; and transmitting the DCI.
- Aspect 13 The method of Aspect 12, wherein the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
- Aspect 14 The method of any of Aspects 12-13, wherein the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
- Aspect 15 The method of any of Aspects 12-14, wherein the one or more changed fields are located after the one or more unchanged fields.
- Aspect 16 The method of any of Aspects 12-15, further comprising transmitting a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
- Aspect 17 The method of any of Aspects 12-16, further comprising transmitting a DCI format update or a window length update via a medium access control control element (MAC-CE) or radio resource control signaling.
- MAC-CE medium access control control element
- Aspect 18 The method of any of Aspects 12-17, further comprising indicating a modification of the one or more unchanged fields using an empty slot during transmission.
- Aspect 19 The method of any of Aspects 12-18, wherein bits for DCI are not interleaved in a DCI encoding chain before encoding.
- Aspect 20 An apparatus for wireless communication at a device, the apparatus comprising one or more processors; one or more memories coupled with the one or more processors; and instructions stored in the one or more memories and executable by the one or more processors to cause the apparatus to perform the method of one or more of Aspects 1-19.
- Aspect 21 An apparatus for wireless communication at a device, the apparatus comprising one or more memories and one or more processors coupled to the one or more memories, the one or more processors configured to cause the device to perform the method of one or more of Aspects 1-19.
- Aspect 22 An apparatus for wireless communication, the apparatus comprising at least one means for performing the method of one or more of Aspects 1-19.
- Aspect 23 A non-transitory computer-readable medium storing code for wireless communication, the code comprising instructions executable by one or more processors to perform the method of one or more of Aspects 1-19.
- Aspect 24 A non-transitory computer-readable medium storing a set of instructions for wireless communication, the set of instructions comprising one or more instructions that, when executed by one or more processors of a device, cause the device to perform the method of one or more of Aspects 1-19.
- Aspect 25 A device for wireless communication, the device comprising a processing system that includes one or more processors and one or more memories coupled with the one or more processors, the processing system configured to cause the device to perform the method of one or more of Aspects 1-19.
- Aspect 26 An apparatus for wireless communication at a device, the apparatus comprising one or more memories and one or more processors coupled to the one or more memories, the one or more processors individually or collectively configured to cause the device to perform the method of one or more of Aspects 1-19.
- the term “component” is intended to be broadly construed as hardware or a combination of hardware and at least one of software or firmware.
- “Software” shall be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executables, threads of execution, procedures, or functions, among other examples, whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise.
- a “processor” is implemented in hardware or a combination of hardware and software. It will be apparent that systems or methods described herein may be implemented in different forms of hardware or a combination of hardware and software. The actual specialized control hardware or software code used to implement these systems or methods is not limiting of the aspects. Thus, the operation and behavior of the systems or methods are described herein without reference to specific software code, because those skilled in the art will understand that software and hardware can be designed to implement the systems or methods based, at least in part, on the description herein.
- a component being configured to perform a function means that the component has a capability to perform the function, and does not require the function to be actually performed by the component, unless noted otherwise.
- satisfying a threshold may, depending on the context, refer to a value being greater than the threshold, greater than or equal to the threshold, less than the threshold, less than or equal to the threshold, equal to the threshold, or not equal to the threshold, among other examples.
- a phrase referring to “at least one of’ a list of items refers to any combination of those items, including single members.
- “at least one of: a, b, or c” is intended to cover a, b, c, a + b, a + c, b + c, and a + b + c, as well as any combination with multiples of the same element (for example, a + a, a + a + a, a + a + b, a + a + c, a + b + b, a + c + c, b + b, b + b + b, b + b + c, c + c, or any other ordering of a, b, and c).
- the terms “has,” “have,” “having,” and similar terms are intended to be open-ended terms that do not limit an element that they modify (for example, an element “having” A may also have B). Further, the phrase “based on” is intended to mean “based on or otherwise in association with” unless explicitly stated otherwise. Also, as used herein, the term “or” is intended to be inclusive when used in a series and may be used interchangeably with “and/or,” unless explicitly stated otherwise (for example, if used in combination with “either” or “only one of’). It should be understood that “one or more” is equivalent to “at least one.”
Landscapes
- Engineering & Computer Science (AREA)
- Signal Processing (AREA)
- Computer Networks & Wireless Communication (AREA)
- Mobile Radio Communication Systems (AREA)
Abstract
Various aspects of the present disclosure generally relate to wireless communication. In some aspects, a UE may receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI. The UE may receive DCI having the DCI format. The UE may decode the one or more changed fields and not the one or more unchanged fields. Numerous other aspects are described.
Description
DOWNLINK CONTROL INFORMATION FORMAT FOR FIELDS WITH UNCHANGED VALUES
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This Patent Application claims priority to U.S. Patent Application No. 18/746,557, filed on June 18, 2024, entitled “DOWNLINK CONTROL INFORMATION FORMAT FOR FIELDS WITH UNCHANGED VALUES,” and assigned to the assignee hereof. The disclosure of the prior Application is considered part of and is incorporated by reference into this Patent Application.
FIELD OF THE DISCLOSURE
[0002] Aspects of the present disclosure generally relate to wireless communication and specifically relate to techniques, apparatuses, and methods for using a downlink control information format for fields with changed values and unchanged values.
BACKGROUND
[0003] Wireless communication systems are widely deployed to provide various services that may include carrying voice, text, messaging, video, data, and/or other traffic. The services may include unicast, multicast, and/or broadcast services, among other examples. Typical wireless communication systems may employ multiple-access radio access technologies (RATs) capable of supporting communication with multiple users by sharing available system resources (for example, time domain resources, frequency domain resources, spatial domain resources, and/or device transmit power, among other examples). Examples of such multiple-access RATs include code division multiple access (CDMA) systems, time division multiple access (TDMA) systems, frequency division multiple access (FDMA) systems, orthogonal frequency division multiple access (OFDMA) systems, single -carrier frequency division multiple access (SC- FDMA) systems, and time division synchronous code division multiple access (TD-SCDMA) systems.
[0004] The above multiple-access RATs have been adopted in various telecommunication standards to provide common protocols that enable different wireless communication devices to communicate on a municipal, national, regional, or global level. An example telecommunication standard is New Radio (NR). NR, which may also be referred to as 5G, is part of a continuous mobile broadband evolution promulgated by the Third Generation Partnership Project (3 GPP). NR (and other mobile broadband evolutions beyond NR) may be designed to better support Internet of things (loT) and reduced capability device deployments, industrial connectivity, millimeter wave (mmWave) expansion, licensed and unlicensed spectrum access, non-terrestrial network (NTN) deployment, sidelink and other device-to-
device direct communication technologies (for example, cellular vehicle-to-everything (CV2X) communication), massive multiple -input multiple -output (MIMO), disaggregated network architectures and network topology expansions, multiple-subscriber implementations, high- precision positioning, and/or radio frequency (RF) sensing, among other examples. As the demand for mobile broadband access continues to increase, further improvements in NR may be implemented, and other radio access technologies such as 6G may be introduced, to further advance mobile broadband evolution.
SUMMARY
[0005] Some aspects described herein relate to a method of wireless communication performed by a user equipment (UE). The method may include receiving a format indication of a downlink control information (DCI) format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI. The method may include receiving DCI having the DCI format. The method may include decoding the one or more changed fields and not the one or more unchanged fields.
[0006] Some aspects described herein relate to a method of wireless communication performed by a network entity. The method may include transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI. The method may include encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format. The method may include transmitting the DCI.
[0007] Some aspects described herein relate to an apparatus for wireless communication at a UE. The apparatus may include one or more memories and one or more processors coupled to the one or more memories. The one or more processors may be individually or collectively configured to receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI. The one or more processors may be individually or collectively configured to receive DCI having the DCI format. The one or more processors may be individually or collectively configured to decode the one or more changed fields and not the one or more unchanged fields.
[0008] Some aspects described herein relate to an apparatus for wireless communication at a network entity. The apparatus may include one or more memories and one or more processors coupled to the one or more memories. The one or more processors may be individually or collectively configured to transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more
unchanged fields with unchanged values with respect to the previous DCI. The one or more processors may be individually or collectively configured to encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format. The one or more processors may be individually or collectively configured to transmit the DCI.
[0009] Some aspects described herein relate to a non-transitory computer-readable medium that stores a set of instructions for wireless communication by a UE. The set of instructions, when executed by one or more processors of the UE, may cause the UE to receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI. The set of instructions, when executed by one or more processors of the UE, may cause the UE to receive DCI having the DCI format. The set of instructions, when executed by one or more processors of the UE, may cause the UE to decode the one or more changed fields and not the one or more unchanged fields.
[0010] Some aspects described herein relate to a non-transitory computer-readable medium that stores a set of instructions for wireless communication by a network entity. The set of instructions, when executed by one or more processors of the network entity, may cause the network entity to transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI. The set of instructions, when executed by one or more processors of the network entity, may cause the network entity to encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format. The set of instructions, when executed by one or more processors of the network entity, may cause the network entity to transmit the DCI.
[0011] Some aspects described herein relate to an apparatus for wireless communication. The apparatus may include means for receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI. The apparatus may include means for receiving DCI having the DCI format. The apparatus may include means for decoding the one or more changed fields and not the one or more unchanged fields.
[0012] Some aspects described herein relate to an apparatus for wireless communication. The apparatus may include means for transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI. The apparatus may include means for encoding DCI to have the one or more changed fields and the
one or more unchanged fields based at least in part on the DCI format. The apparatus may include means for transmitting the DCI.
[0013] Aspects of the present disclosure may generally be implemented by or as a method, apparatus, system, computer program product, non-transitory computer-readable medium, user equipment, base station, network node, network entity, wireless communication device, and/or processing system as substantially described with reference to, and as illustrated by, the specification and accompanying drawings.
[0014] The foregoing paragraphs of this section have broadly summarized some aspects of the present disclosure. These and additional aspects and associated advantages will be described hereinafter. The disclosed aspects may be used as a basis for modifying or designing other aspects for carrying out the same or similar purposes of the present disclosure. Such equivalent aspects do not depart from the scope of the appended claims. Characteristics of the aspects disclosed herein, both their organization and method of operation, together with associated advantages, will be better understood from the following description when considered in connection with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The appended drawings illustrate some aspects of the present disclosure, but are not limiting of the scope of the present disclosure because the description may enable other aspects. Each of the drawings is provided for purposes of illustration and description, and not as a definition of the limits of the claims. The same or similar reference numbers in different drawings may identify the same or similar elements.
[0016] Fig. 1 is a diagram illustrating an example of a wireless communication network, in accordance with the present disclosure.
[0017] Fig. 2 is a diagram illustrating an example network node in communication with an example user equipment (UE) in a wireless network, in accordance with the present disclosure. [0018] Fig. 3 is a diagram illustrating an example disaggregated base station architecture, in accordance with the present disclosure.
[0019] Fig. 4 is a diagram illustrating an example of downlink control information (DCI) fields, in accordance with the present disclosure.
[0020] Fig. 5 is a diagram illustrating an example of a DCI format, in accordance with the present disclosure.
[0021] Fig. 6 is a diagram illustrating an example associated with a DCI format for unchanged fields, in accordance with the present disclosure.
[0022] Fig. 7 is a diagram illustrating an example of signaling for DCI formats, in accordance with the present disclosure.
[0023] Fig. 8 is a diagram illustrating an example of DCI formats, in accordance with the present disclosure.
[0024] Fig. 9 is a diagram illustrating an example of using a DCI format, in accordance with the present disclosure.
[0025] Fig. 10 is a diagram illustrating examples of encoding DCI, in accordance with the present disclosure.
[0026] Fig. 11 is a diagram illustrating an example of decoding DCI with a base DCI format, in accordance with the present disclosure.
[0027] Fig. 12 is a diagram illustrating an example of decoding DCI with a permutated DCI format, in accordance with the present disclosure.
[0028] Fig. 13 is a diagram illustrating an example process performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure.
[0029] Fig. 14 is a diagram illustrating an example process performed, for example, at a network entity or an apparatus of a network entity, in accordance with the present disclosure. [0030] Fig. 15 is a diagram of an example apparatus for wireless communication, in accordance with the present disclosure.
[0031] Fig. 16 is a diagram of an example apparatus for wireless communication, in accordance with the present disclosure.
DETAILED DESCRIPTION
[0032] Various aspects of the present disclosure are described hereinafter with reference to the accompanying drawings. However, aspects of the present disclosure may be embodied in many different forms and is not to be construed as limited to any specific aspect illustrated by or described with reference to an accompanying drawing or otherwise presented in this disclosure. Rather, these aspects are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. One skilled in the art may appreciate that the scope of the disclosure is intended to cover any aspect of the disclosure disclosed herein, whether implemented independently of or in combination with any other aspect of the disclosure. For example, an apparatus may be implemented or a method may be practiced using various combinations or quantities of the aspects set forth herein. In addition, the scope of the disclosure is intended to cover an apparatus having, or a method that is practiced using, other structures and/or functionalities in addition to or other than the structures and/or functionalities with which various aspects of the disclosure set forth herein may be practiced. Any aspect of the disclosure disclosed herein may be embodied by one or more elements of a claim.
[0033] Several aspects of telecommunication systems will now be presented with reference to various methods, operations, apparatuses, and techniques. These methods, operations, apparatuses, and techniques will be described in the following detailed description and illustrated in the accompanying drawings by various blocks, modules, components, circuits, steps, processes, or algorithms (collectively referred to as “elements”). These elements may be implemented using hardware, software, or a combination of hardware and software. Whether such elements are implemented as hardware or software depends upon the particular application and design constraints imposed on the overall system.
[0034] In New Radio (NR) 5G, a polar code is used for encoding control information, such as downlink control information (DCI) on downlink channels and uplink control information (UCI) on uplink channels. DCI and UCI include different fields. Each field includes multiple bits. DCI and UCI (bits in DCI/UCI) are given as inputs to a polar encoder. Some bits are unchanged (known bits) with respect to previous DCI. Other bits may have changed (unknown bits) with respect to the previous DCI. However, the UE expects that all of the DCI fields change at every time slot. The UE does not have information about whether a DCI field is changed or unchanged with respect to the previous DCI transmission and hence assumes that all of the DCI fields change at every time slot. If a UE blind decodes each DCI field, the UE consumes time and processing resources.
[0035] Many fields (bits) of DCI remain unchanged over multiple consecutive transmissions (MCTs). On the downlink, the UE can exploit the unchanged fields and improve the decoding performance. Various aspects relate generally to wireless communications. Some aspects more specifically relate to a network entity that indicates which fields of DCI are going to remain unchanged. The network entity may indicate, for example, that fields P2 and P4 include known bits and the UE is to start decoding at the first unchanged field, or P0. In some aspects, the network entity may indicate how long the unchanged fields are to remain unchanged over MCTs. The UE may decode only the changed fields and not decode the unchanged fields. [0036] Particular aspects of the subject matter described in this disclosure can be implemented to realize one or more of the following potential advantages. By decoding only the changed fields, the UE may reduce the amount of blind bit/field decoding and improve the DCI decoding performance and reliability. As a result, the UE conserves time and processing resources.
[0037] Multiple -access radio access technologies (RATs) have been adopted in various telecommunication standards to provide common protocols that enable wireless communication devices to communicate on a municipal, enterprise, national, regional, or global level. For example, 5G NR is part of a continuous mobile broadband evolution promulgated by the Third Generation Partnership Project (3GPP). 5G NR supports various technologies and use cases
including enhanced mobile broadband (eMBB), ultra-reliable low-latency communication (URLLC), massive machine-type communication (mMTC), millimeter wave (mmWave) technology, beamforming, network slicing, edge computing, Internet of Things (loT) connectivity and management, and network function virtualization (NFV).
[0038] As the demand for broadband access increases and as technologies supported by wireless communication networks evolve, further technological improvements may be adopted in or implemented for 5G NR or future RATs, such as 6G, to further advance the evolution of wireless communication for a wide variety of existing and new use cases and applications. Such technological improvements may be associated with new frequency band expansion, licensed and unlicensed spectrum access, overlapping spectrum use, small cell deployments, nonterrestrial network (NTN) deployments, disaggregated network architectures and network topology expansion, device aggregation, advanced duplex communication, sidelink and other device-to-device direct communication, loT (including passive or ambient loT) networks, reduced capability (RedCap) UE functionality, industrial connectivity, multiple-subscriber implementations, high-precision positioning, radio frequency (RF) sensing, and/or artificial intelligence or machine learning (AI/ML), among other examples. These technological improvements may support use cases such as wireless backhauls, wireless data centers, extended reality (XR) and metaverse applications, meta services for supporting vehicle connectivity, holographic and mixed reality communication, autonomous and collaborative robots, vehicle platooning and cooperative maneuvering, sensing networks, gesture monitoring, human-brain interfacing, digital twin applications, asset management, and universal coverage applications using non-terrestrial and/or aerial platforms, among other examples. The methods, operations, apparatuses, and techniques described herein may enable one or more of the foregoing technologies and/or support one or more of the foregoing use cases.
[0039] Fig. 1 is a diagram illustrating an example of a wireless communication network 100, in accordance with the present disclosure. The wireless communication network 100 may be or may include elements of a 5G (or NR) network or a 6G network, among other examples. The wireless communication network 100 may include multiple network nodes 110, shown as a network node (NN) 110a, a network node 110b, a network node 110c, and a network node 1 lOd. The network nodes 110 may support communications with multiple UEs 120, shown as a UE 120a, a UE 120b, a UE 120c, a UE 120d, and a UE 120e.
[0040] The network nodes 110 and the UEs 120 of the wireless communication network 100 may communicate using the electromagnetic spectrum, which may be subdivided by frequency or wavelength into various classes, bands, carriers, and/or channels. For example, devices of the wireless communication network 100 may communicate using one or more operating bands. In some aspects, multiple wireless communication networks 100 may be deployed in a given geographic area. Each wireless communication network 100 may support a particular RAT
(which may also be referred to as an air interface) and may operate on one or more carrier frequencies in one or more frequency ranges. Examples of RATs include a 4G RAT, a 5G/NR RAT, and/or a 6G RAT, among other examples. In some examples, when multiple RATs are deployed in a given geographic area, each RAT in the geographic area may operate on different frequencies to avoid interference with one another.
[0041] Various operating bands have been defined as frequency range designations FR1 (410 MHz through 7.125 GHz), FR2 (24.25 GHz through 52.6 GHz), FR3 (7.125 GHz through 24.25 GHz), FR4a or FR4-1 (52.6 GHz through 71 GHz), FR4 (52.6 GHz through 114.25 GHz), and FR5 (114.25 GHz through 300 GHz). Although a portion of FR1 is greater than 6 GHz, FR1 is often referred to (interchangeably) as a “Sub-6 GHz” band in some documents and articles. Similarly, FR2 is often referred to (interchangeably) as a “millimeter wave” band in some documents and articles, despite being different than the extremely high frequency (EHF) band (30 GHz through 300 GHz), which is identified by the International Telecommunications Union (ITU) as a “millimeter wave” band. The frequencies between FR1 and FR2 are often referred to as mid-band frequencies, which include FR3. Frequency bands falling within FR3 may inherit FR1 characteristics or FR2 characteristics, and thus may effectively extend features of FR1 or FR2 into mid-band frequencies. Thus, “sub-6 GHz,” if used herein, may broadly refer to frequencies that are less than 6 GHz, that are within FR1, and/or that are included in mid -band frequencies. Similarly, the term “millimeter wave,” if used herein, may broadly refer to frequencies that are included in mid-band frequencies, that are within FR2, FR4, FR4-a or FR4- 1, or FR5, and/or that are within the EHF band. Higher frequency bands may extend 5G NR operation, 6G operation, and/or other RATs beyond 52.6 GHz. For example, each of FR4a, FR4-1, FR4, and FR5 falls within the EHF band. In some examples, the wireless communication network 100 may implement dynamic spectrum sharing (DSS), in which multiple RATs (for example, 4G/Long Term Evolution (LTE) and 5G/NR) are implemented with dynamic bandwidth allocation (for example, based on user demand) in a single frequency band. It is contemplated that the frequencies included in these operating bands (for example, FR1, FR2, FR3, FR4, FR4-a, FR4-1, and/or FR5) may be modified, and techniques described herein may be applicable to those modified frequency ranges.
[0042] A network node 110 may include one or more devices, components, or systems that enable communication between a UE 120 and one or more devices, components, or systems of the wireless communication network 100. A network node 110 may be, may include, or may also be referred to as an NR network node, a 5G network node, a 6G network node, a Node B, an eNB, a gNB, an access point (AP), a transmission reception point (TRP), a mobility element, a core, a network entity, a network element, a network equipment, and/or another type of device, component, or system included in a radio access network (RAN).
[0043] A network node 110 may be implemented as a single physical node (for example, a single physical structure) or may be implemented as two or more physical nodes (for example, two or more distinct physical structures). For example, a network node 110 may be a device or system that implements part of a radio protocol stack, a device or system that implements a full radio protocol stack (such as a full gNB protocol stack), or a collection of devices or systems that collectively implement the full radio protocol stack. For example, and as shown, a network node 110 may be an aggregated network node (having an aggregated architecture), meaning that the network node 110 may implement a full radio protocol stack that is physically and logically integrated within a single node (for example, a single physical structure) in the wireless communication network 100. For example, an aggregated network node 110 may consist of a single standalone base station or a single TRP that uses a full radio protocol stack to enable or facilitate communication between a UE 120 and a core network of the wireless communication network 100.
[0044] Alternatively, and as also shown, a network node 110 may be a disaggregated network node (sometimes referred to as a disaggregated base station), meaning that the network node 110 may implement a radio protocol stack that is physically distributed and/or logically distributed among two or more nodes in the same geographic location or in different geographic locations. For example, a disaggregated network node may have a disaggregated architecture. In some deployments, disaggregated network nodes 110 may be used in an integrated access and backhaul (IAB) network, in an open radio access network (O-RAN) (such as a network configuration in compliance with the O-RAN Alliance), or in a virtualized radio access network (vRAN), also known as a cloud radio access network (C-RAN), to facilitate scaling by separating base station functionality into multiple units that can be individually deployed.
[0045] The network nodes 110 of the wireless communication network 100 may include one or more central units (CUs), one or more distributed units (DUs), and/or one or more radio units (RUs). A CU may host one or more higher layer control functions, such as radio resource control (RRC) functions, packet data convergence protocol (PDCP) functions, and/or service data adaptation protocol (SDAP) functions, among other examples. A DU may host one or more of a radio link control (RLC) layer, a medium access control (MAC) layer, and/or one or more higher physical (PHY) layers depending, at least in part, on a functional split, such as a functional split defined by the 3GPP. In some examples, a DU also may host one or more lower PHY layer functions, such as a fast Fourier transform (FFT), an inverse FFT (iFFT), beamforming, physical random access channel (PRACH) extraction and filtering, and/or scheduling of resources for one or more UEs 120, among other examples. An RU may host RF processing functions or lower PHY layer functions, such as an FFT, an iFFT, beamforming, or PRACH extraction and filtering, among other examples, according to a functional split, such as
a lower layer functional split. In such an architecture, each RU can be operated to handle over the air (OTA) communication with one or more UEs 120.
[0046] In some aspects, a single network node 110 may include a combination of one or more CUs, one or more DUs, and/or one or more RUs. Additionally or alternatively, a network node 110 may include one or more Near-Real Time (Near-RT) RAN Intelligent Controllers (RICs) and/or one or more Non-Real Time (Non-RT) RICs. In some examples, a CU, a DU, and/or an RU may be implemented as a virtual unit, such as a virtual central unit (VCU), a virtual distributed unit (VDU), or a virtual radio unit (VRU), among other examples. A virtual unit may be implemented as a virtual network function, such as associated with a cloud deployment.
[0047] Some network nodes 110 (for example, a base station, an RU, or a TRP) may provide communication coverage for a particular geographic area. In the 3GPP, the term “cell” can refer to a coverage area of a network node 110 or to a network node 110 itself, depending on the context in which the term is used. A network node 110 may support one or multiple (for example, three) cells. In some examples, a network node 110 may provide communication coverage for a macro cell, a pico cell, a femto cell, or another type of cell. A macro cell may cover a relatively large geographic area (for example, several kilometers in radius) and may allow unrestricted access by UEs 120 with service subscriptions. A pico cell may cover a relatively small geographic area and may allow unrestricted access by UEs 120 with service subscriptions. A femto cell may cover a relatively small geographic area (for example, a home) and may allow restricted access by UEs 120 having association with the femto cell (for example, UEs 120 in a closed subscriber group (CSG)). A network node 110 for a macro cell may be referred to as a macro network node. A network node 110 for a pico cell may be referred to as a pico network node. A network node 110 for a femto cell may be referred to as a femto network node or an in-home network node. In some examples, a cell may not necessarily be stationary. For example, the geographic area of the cell may move according to the location of an associated mobile network node 110 (for example, a train, a satellite base station, an unmanned aerial vehicle, or an NTN network node).
[0048] The wireless communication network 100 may be a heterogeneous network that includes network nodes 110 of different types, such as macro network nodes, pico network nodes, femto network nodes, relay network nodes, aggregated network nodes, and/or disaggregated network nodes, among other examples. In the example shown in Fig. 1, the network node 110a may be a macro network node for a macro cell 130a, the network node 110b may be a pico network node for a pico cell 130b, and the network node 110c may be a femto network node for a femto cell 130c.Various different types of network nodes 110 may generally transmit at different power levels, serve different coverage areas, and/or have different impacts on interference in the wireless communication network 100 than other types of network nodes
110. For example, macro network nodes may have a high transmit power level (for example, 5 to 40 watts), whereas pico network nodes, femto network nodes, and relay network nodes may have lower transmit power levels (for example, 0.1 to 2 watts).
[0049] In some examples, a network node 110 may be, may include, or may operate as an RU, a TRP, or a base station that communicates with one or more UEs 120 via a radio access link (which may be referred to as a “Uu” link). The radio access link may include a downlink and an uplink. “Downlink” (or “DL”) refers to a communication direction from a network node 110 to a UE 120, and “uplink” (or “UL”) refers to a communication direction from a UE 120 to a network node 110. Downlink channels may include one or more control channels and one or more data channels. A downlink control channel may be used to transmit downlink control information (DCI) (for example, scheduling information, reference signals, and/or configuration information) from a network node 110 to a UE 120. A downlink data channel may be used to transmit downlink data (for example, user data associated with a UE 120) from a network node 110 to a UE 120. Downlink control channels may include one or more physical downlink control channels (PDCCHs), and downlink data channels may include one or more physical downlink shared channels (PDSCHs). Uplink channels may similarly include one or more control channels and one or more data channels. An uplink control channel may be used to transmit uplink control information (UCI) (for example, reference signals and/or feedback corresponding to one or more downlink transmissions) from a UE 120 to a network node 110. An uplink data channel may be used to transmit uplink data (for example, user data associated with a UE 120) from a UE 120 to a network node 110. Uplink control channels may include one or more physical uplink control channels (PUCCHs), and uplink data channels may include one or more physical uplink shared channels (PUSCHs). The downlink and the uplink may each include a set of resources on which the network node 110 and the UE 120 may communicate.
[0050] Downlink and uplink resources may include time domain resources (frames, subframes, slots, and/or symbols), frequency domain resources (frequency bands, component carriers, subcarriers, resource blocks, and/or resource elements), and/or spatial domain resources (particular transmit directions and/or beam parameters). Frequency domain resources of some bands may be subdivided into bandwidth parts (BWPs). A BWP may be a continuous block of frequency domain resources (for example, a continuous block of resource blocks) that are allocated for one or more UEs 120. A UE 120 may be configured with both an uplink BWP and a downlink BWP (where the uplink BWP and the downlink BWP may be the same BWP or different BWPs). A BWP may be dynamically configured (for example, by a network node 110 transmitting a DCI configuration to the one or more UEs 120) and/or reconfigured, which means that a BWP can be adjusted in real-time (or near-real-time) based on changing network conditions in the wireless communication network 100 and/or based on the specific
requirements of the one or more UEs 120. This enables more efficient use of the available frequency domain resources in the wireless communication network 100 because fewer frequency domain resources may be allocated to a BWP for a UE 120 (which may reduce the quantity of frequency domain resources that a UE 120 is required to monitor), leaving more frequency domain resources to be spread across multiple UEs 120. Thus, BWPs may also assist in the implementation of lower-capability UEs 120 by facilitating the configuration of smaller bandwidths for communication by such UEs 120.
[0051] As described above, in some aspects, the wireless communication network 100 may be, may include, or may be included in, an IAB network. In an IAB network, at least one network node 110 is an anchor network node that communicates with a core network. An anchor network node 110 may also be referred to as an IAB donor (or “lAB-donor”). The anchor network node 110 may connect to the core network via a wired backhaul link. For example, an Ng interface of the anchor network node 110 may terminate at the core network. Additionally or alternatively, an anchor network node 110 may connect to one or more devices of the core network that provide a core access and mobility management function (AMF). An IAB network also generally includes multiple non-anchor network nodes 110, which may also be referred to as relay network nodes or simply as IAB nodes (or “lAB-nodes”). Each nonanchor network node 110 may communicate directly with the anchor network node 110 via a wireless backhaul link to access the core network, or may communicate indirectly with the anchor network node 110 via one or more other non-anchor network nodes 110 and associated wireless backhaul links that form a backhaul path to the core network. Some anchor network node 110 or other non-anchor network node 110 may also communicate directly with one or more UEs 120 via wireless access links that carry access traffic. In some examples, network resources for wireless communication (such as time resources, frequency resources, and/or spatial resources) may be shared between access links and backhaul links.
[0052] In some examples, any network node 110 that relays communications may be referred to as a relay network node, a relay station, or simply as a relay. A relay may receive a transmission of a communication from an upstream station (for example, another network node 110 or a UE 120) and transmit the communication to a downstream station (for example, a UE 120 or another network node 110). In this case, the wireless communication network 100 may include or be referred to as a “multi-hop network.” In the example shown in Fig. 1, the network node 1 lOd (for example, a relay network node) may communicate with the network node 110a (for example, a macro network node) and the UE 120d in order to facilitate communication between the network node 110a and the UE 120d. Additionally or alternatively, a UE 120 may be or may operate as a relay station that can relay transmissions to or from other UEs 120. A UE 120 that relays communications may be referred to as a UE relay or a relay UE, among other examples.
[0053] The UEs 120 may be physically dispersed throughout the wireless communication network 100, and each UE 120 may be stationary or mobile. A UE 120 may be, may include, or may be included in an access terminal, another terminal, a mobile station, or a subscriber unit. A UE 120 may be, include, or be coupled with a cellular phone (for example, a smart phone), a personal digital assistant (PDA), a wireless modem, a wireless communication device, a handheld device, a laptop computer, a cordless phone, a wireless local loop (WLL) station, a tablet, a camera, a gaming device, a netbook, a smartbook, an ultrabook, a medical device, a biometric device, a wearable device (for example, a smart watch, smart clothing, smart glasses, a smart wristband, and/or smart jewelry, such as a smart ring or a smart bracelet), an entertainment device (for example, a music device, a video device, and/or a satellite radio), an XR device, a vehicular component or sensor, a smart meter or sensor, industrial manufacturing equipment, a Global Navigation Satellite System (GNSS) device (such as a Global Positioning System device or another type of positioning device), a UE function of a network node, and/or any other suitable device or function that may communicate via a wireless medium.
[0054] A UE 120 and/or a network node 110 may include one or more chips, system -on- chips (SoCs), chipsets, packages, or devices that individually or collectively constitute or comprise a processing system. The processing system includes processor (or “processing”) circuitry in the form of one or multiple processors, microprocessors, processing units (such as central processing units (CPUs), graphics processing units (GPUs), neural processing units (NPUs) and/or digital signal processors (DSPs)), processing blocks, application-specific integrated circuits (ASIC), programmable logic devices (PLDs) (such as field programmable gate arrays (FPGAs)), or other discrete gate or transistor logic or circuitry (all of which may be generally referred to herein individually as “processors” or collectively as “the processor” or “the processor circuitry”). One or more of the processors may be individually or collectively configurable or configured to perform various functions or operations described herein. A group of processors collectively configurable or configured to perform a set of functions may include a first processor configurable or configured to perform a first function of the set and a second processor configurable or configured to perform a second function of the set, or may include the group of processors all being configured or configurable to perform the set of functions.
[0055] The processing system may further include memory circuitry in the form of one or more memory devices, memory blocks, memory elements or other discrete gate or transistor logic or circuitry, each of which may include tangible storage media such as random-access memory (RAM) or read-only memory (ROM), or combinations thereof (all of which may be generally referred to herein individually as “memories” or collectively as “the memory” or “the memory circuitry”). One or more of the memories may be coupled (for example, operatively coupled, communicatively coupled, electronically coupled, or electrically coupled) with one or
more of the processors and may individually or collectively store processor-executable code (such as software) that, when executed by one or more of the processors, may configure one or more of the processors to perform various functions or operations described herein. Additionally or alternatively, in some examples, one or more of the processors may be preconfigured to perform various functions or operations described herein without requiring configuration by software. The processing system may further include or be coupled with one or more modems (such as a Wi-Fi (for example, Institute of Electrical and Electronics Engineers (IEEE) compliant) modem or a cellular (for example, 3 GPP 4G LTE, 5G, or 6G compliant) modem). In some implementations, one or more processors of the processing system include or implement one or more of the modems. The processing system may further include or be coupled with multiple radios (collectively “the radio”), multiple RF chains, or multiple transceivers, each of which may in turn be coupled with one or more of multiple antennas. In some implementations, one or more processors of the processing system include or implement one or more of the radios, RF chains or transceivers. The UE 120 may include or may be included in a housing that houses components associated with the UE 120 including the processing system.
[0056] Some UEs 120 may be considered machine-type communication (MTC) UEs, evolved or enhanced machine-type communication (eMTC), UEs, further enhanced eMTC (feMTC) UEs, or enhanced feMTC (efeMTC) UEs, or further evolutions thereof, all of which may be simply referred to as “MTC UEs”. An MTC UE may be, may include, or may be included in or coupled with a robot, an uncrewed aerial vehicle, a remote device, a sensor, a meter, a monitor, and/or a location tag. Some UEs 120 may be considered loT devices and/or may be implemented as NB-IoT (narrowband loT) devices. An loT UE or NB-IoT device may be, may include, or may be included in or coupled with an industrial machine, an appliance, a refrigerator, a doorbell camera device, a home automation device, and/or a light fixture, among other examples. Some UEs 120 may be considered Customer Premises Equipment, which may include telecommunications devices that are installed at a customer location (such as a home or office) to enable access to a service provider's network (such as included in or in communication with the wireless communication network 100).
[0057] Some UEs 120 may be classified according to different categories in association with different complexities and/or different capabilities. UEs 120 in a first category may facilitate massive loT in the wireless communication network 100, and may offer low complexity and/or cost relative to UEs 120 in a second category. UEs 120 in a second category may include mission-critical loT devices, legacy UEs, baseline UEs, high-tier UEs, advanced UEs, fullcapability UEs, and/or premium UEs that are capable of URLLC, eMBB, and/or precise positioning in the wireless communication network 100, among other examples. A third category of UEs 120 may have mid-tier complexity and/or capability (for example, a capability
between UEs 120 of the first category and UEs 120 of the second capability). A UE 120 of the third category may be referred to as a reduced capacity UE (“RedCap UE”), a mid-tier UE, an NR-Light UE, and/or an NR-Lite UE, among other examples. RedCap UEs may bridge a gap between the capability and complexity of NB-IoT devices and/or eMTC UEs, and mission- critical loT devices and/or premium UEs. RedCap UEs may include, for example, wearable devices, loT devices, industrial sensors, and/or cameras that are associated with a limited bandwidth, power capacity, and/or transmission range, among other examples. RedCap UEs may support healthcare environments, building automation, electrical distribution, process automation, transport and logistics, and/or smart city deployments, among other examples. [0058] In some examples, two or more UEs 120 (for example, shown as UE 120a and UE 120e) may communicate directly with one another using sidelink communications (for example, without communicating by way of a network node 110 as an intermediary). As an example, the UE 120a may directly transmit data, control information, or other signaling as a side link communication to the UE 120e. This is in contrast to, for example, the UE 120a first transmitting data in an UL communication to a network node 110, which then transmits the data to the UE 120e in a DL communication. In various examples, the UEs 120 may transmit and receive sidelink communications using peer-to-peer (P2P) communication protocols, device-to- device (D2D) communication protocols, vehicle-to-everything (V2X) communication protocols (which may include vehicle-to-vehicle (V2V) protocols, vehicle-to-infrastructure (V2I) protocols, and/or vehicle-to-pedestrian (V2P) protocols), and/or mesh network communication protocols. In some deployments and configurations, a network node 110 may schedule and/or allocate resources for sidelink communications between UEs 120 in the wireless communication network 100. In some other deployments and configurations, a UE 120 (instead of a network node 110) may perform, or collaborate or negotiate with one or more other UEs to perform, scheduling operations, resource selection operations, and/or other operations for sidelink communications.
[0059] In various examples, some of the network nodes 110 and the UEs 120 of the wireless communication network 100 may be configured for full -duplex operation in addition to halfduplex operation. A network node 110 or a UE 120 operating in a half-duplex mode may perform only one of transmission or reception during particular time resources, such as during particular slots, symbols, or other time periods. Half-duplex operation may involve timedivision duplexing (TDD), in which DL transmissions of the network node 110 and UL transmissions of the UE 120 do not occur in the same time resources (that is, the transmissions do not overlap in time). In contrast, a network node 110 or a UE 120 operating in a full-duplex mode can transmit and receive communications concurrently (for example, in the same time resources). By operating in a full-duplex mode, network nodes 110 and/or UEs 120 may generally increase the capacity of the network and the radio access link. In some examples, full-
duplex operation may involve frequency-division duplexing (FDD), in which DL transmissions of the network node 110 are performed in a first frequency band or on a first component carrier and transmissions of the UE 120 are performed in a second frequency band or on a second component carrier different than the first frequency band or the first component carrier, respectively. In some examples, full-duplex operation may be enabled for a UE 120 but not for a network node 110. For example, a UE 120 may simultaneously transmit an UL transmission to a first network node 110 and receive a DL transmission from a second network node 110 in the same time resources. In some other examples, full-duplex operation may be enabled for a network node 110 but not for a UE 120. For example, a network node 110 may simultaneously transmit a DL transmission to a first UE 120 and receive an UL transmission from a second UE 120 in the same time resources. In some other examples, full-duplex operation may be enabled for both a network node 110 and a UE 120.
[0060] In some examples, the UEs 120 and the network nodes 110 may perform MIMO communication. “MIMO” generally refers to transmitting or receiving multiple signals (such as multiple layers or multiple data streams) simultaneously over the same time and frequency resources. MIMO techniques generally exploit multipath propagation. MIMO may be implemented using various spatial processing or spatial multiplexing operations. In some examples, MIMO may support simultaneous transmission to multiple receivers, referred to as multi-user MIMO (MU-MIMO). Some RATs may employ advanced MIMO techniques, such as mTRP operation (including redundant transmission or reception on multiple TRPs), reciprocity in the time domain or the frequency domain, single -frequency-network (SFN) transmission, or non -coherent joint transmission (NC-JT).
[0061] In some aspects, a UE (e.g., a UE 120) may include a communication manager 140. As described in more detail elsewhere herein, the communication manager 140 may receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI. The communication manager 140 may receive DCI having the DCI format. The communication manager 140 may decode the one or more changed fields and not the one or more unchanged fields. Additionally, or alternatively, the communication manager 140 may perform one or more other operations described herein.
[0062] In some aspects, a network entity (e.g., a network node 110) may include a communication manager 150. As described in more detail elsewhere herein, the communication manager 150 may transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI. The communication manager 150 may encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format. The communication manager 150 may transmit
the DCI. Additionally, or alternatively, the communication manager 150 may perform one or more other operations described herein.
[0063] As indicated above, Fig. 1 is provided as an example. Other examples may differ from what is described with regard to Fig. 1.
[0064] Fig. 2 is a diagram illustrating an example network node 110 in communication with an example UE 120 in a wireless network, in accordance with the present disclosure.
[0065] As shown in Fig. 2, the network node 110 may include a data source 212, a transmit processor 214, a transmit (TX) MIMO processor 216, a set of modems 232 (shown as 232a through 232t, where t > 1), a set of antennas 234 (shown as 234a through 234v, where v > 1), a MIMO detector 236, a receive processor 238, a data sink 239, a controller/processor 240, a memory 242, a communication unit 244, a scheduler 246, and/or a communication manager 150, among other examples. In some configurations, one or a combination of the antenna(s) 234, the modem(s) 232, the MIMO detector 236, the receive processor 238, the transmit processor 214, and/or the TX MIMO processor 216 may be included in a transceiver of the network node 110. The transceiver may be under control of and used by one or more processors, such as the controller/processor 240, and in some aspects in conjunction with processor-readable code stored in the memory 242, to perform aspects of the methods, processes, and/or operations described herein. In some aspects, the network node 110 may include one or more interfaces, communication components, and/or other components that facilitate communication with the UE 120 or another network node.
[0066] The terms “processor,” “controller,” or “controller/processor” may refer to one or more controllers and/or one or more processors. For example, reference to “a/the processor,” “a/the controller/processor,” or the like (in the singular) should be understood to refer to any one or more of the processors described in connection with Fig. 2, such as a single processor or a combination of multiple different processors. Reference to “one or more processors” should be understood to refer to any one or more of the processors described in connection with Fig. 2. For example, one or more processors of the network node 110 may include transmit processor 214, TX MIMO processor 216, MIMO detector 236, receive processor 238, and/or controller/processor 240. Similarly, one or more processors of the UE 120 may include MIMO detector 256, receive processor 258, transmit processor 264, TX MIMO processor 266, and/or controller/processor 280.
[0067] In some aspects, a single processor may perform all of the operations described as being performed by the one or more processors. In some aspects, a first set of (one or more) processors of the one or more processors may perform a first operation described as being performed by the one or more processors, and a second set of (one or more) processors of the one or more processors may perform a second operation described as being performed by the
one or more processors. The first set of processors and the second set of processors may be the same set of processors or may be different sets of processors. Reference to “one or more memories” should be understood to refer to any one or more memories of a corresponding device, such as the memory described in connection with Fig. 2. For example, operation described as being performed by one or more memories can be performed by the same subset of the one or more memories or different subsets of the one or more memories.
[0068] For downlink communication from the network node 110 to the UE 120, the transmit processor 214 may receive data (“downlink data”) intended for the UE 120 (or a set of UEs that includes the UE 120) from the data source 212 (such as a data pipeline or a data queue). In some examples, the transmit processor 214 may select one or more MCSs for the UE 120 in accordance with one or more channel quality indicators (CQIs) received from the UE 120. The network node 110 may process the data (for example, including encoding the data) for transmission to the UE 120 on a downlink in accordance with the MCS(s) selected for the UE 120 to generate data symbols. The transmit processor 214 may process system information (for example, semi-static resource partitioning information (SRPI)) and/or control information (for example, CQI requests, grants, and/or upper layer signaling) and provide overhead symbols and/or control symbols. The transmit processor 214 may generate reference symbols for reference signals (for example, a cell-specific reference signal (CRS), a demodulation reference signal (DMRS), or a channel state information (CSI) reference signal (CSI-RS)) and/or synchronization signals (for example, a primary synchronization signal (PSS) or a secondary synchronization signals (SSS)).
[0069] The TX MIMO processor 216 may perform spatial processing (for example, precoding) on the data symbols, the control symbols, the overhead symbols, and/or the reference symbols, if applicable, and may provide a set of output symbol streams (for example, T output symbol streams) to the set of modems 232. For example, each output symbol stream may be provided to a respective modulator component (shown as MOD) of a modem 232. Each modem 232 may use the respective modulator component to process (for example, to modulate) a respective output symbol stream (for example, for orthogonal frequency division multiplexing (OFDM)) to obtain an output sample stream. Each modem 232 may further use the respective modulator component to process (for example, convert to analog, amplify, filter, and/or upconvert) the output sample stream to obtain a time domain downlink signal. The modems 232a through 232t may together transmit a set of downlink signals (for example, T downlink signals) via the corresponding set of antennas 234.
[0070] A downlink signal may include a DCI communication, a MAC control element (MAC-CE) communication, an RRC communication, a downlink reference signal, or another type of downlink communication. Downlink signals may be transmitted on a PDCCH, a PDSCH, and/or on another downlink channel. A downlink signal may carry one or more
transport blocks (TBs) of data. A TB may be a unit of data that is transmitted over an air interface in the wireless communication network 100. A data stream (for example, from the data source 212) may be encoded into multiple TBs for transmission over the air interface. The quantity of TBs used to carry the data associated with a particular data stream may be associated with a TB size common to the multiple TBs. The TB size may be based on or otherwise associated with radio channel conditions of the air interface, the MCS used for encoding the data, the downlink resources allocated for transmitting the data, and/or another parameter. In general, the larger the TB size, the greater the amount of data that can be transmitted in a single transmission, which reduces signaling overhead. However, larger TB sizes may be more prone to transmission and/or reception errors than smaller TB sizes, but such errors may be mitigated by more robust error correction techniques.
[0071] For uplink communication from the UE 120 to the network node 110, uplink signals from the UE 120 may be received by an antenna 234, may be processed by a modem 232 (for example, a demodulator component, shown as DEMOD, of a modem 232), may be detected by the MIMO detector 236 (for example, a receive (Rx) MIMO processor) if applicable, and/or may be further processed by the receive processor 238 to obtain decoded data and/or control information. The receive processor 238 may provide the decoded data to a data sink 239 (which may be a data pipeline, a data queue, and/or another type of data sink) and provide the decoded control information to a processor, such as the controller/processor 240.
[0072] The network node 110 may use the scheduler 246 to schedule one or more UEs 120 for downlink or uplink communications. In some aspects, the scheduler 246 may use DCI to dynamically schedule DL transmissions to the UE 120 and/or UL transmissions from the UE 120. In some examples, the scheduler 246 may allocate recurring time domain resources and/or frequency domain resources that the UE 120 may use to transmit and/or receive communications using an RRC configuration (for example, a semi-static configuration), for example, to perform semi-persistent scheduling (SPS) or to configure a configured grant (CG) for the UE 120.
[0073] One or more of the transmit processor 214, the TX MIMO processor 216, the modem 232, the antenna 234, the MIMO detector 236, the receive processor 238, and/or the controller/processor 240 may be included in an RF chain of the network node 110. An RF chain may include one or more filters, mixers, oscillators, amplifiers, analog-to-digital converters (ADCs), and/or other devices that convert between an analog signal (such as for transmission or reception via an air interface) and a digital signal (such as for processing by one or more processors of the network node 110). In some aspects, the RF chain may be or may be included in a transceiver of the network node 110.
[0074] In some examples, the network node 110 may use the communication unit 244 to communicate with a core network and/or with other network nodes. The communication unit
244 may support wired and/or wireless communication protocols and/or connections, such as Ethernet, optical fiber, common public radio interface (CPRI), and/or a wired or wireless backhaul, among other examples. The network node 110 may use the communication unit 244 to transmit and/or receive data associated with the UE 120 or to perform network control signaling, among other examples. The communication unit 244 may include a transceiver and/or an interface, such as a network interface.
[0075] The UE 120 may include a set of antennas 252 (shown as antennas 252a through 252r, where r > 1), a set of modems 254 (shown as modems 254a through 254u, where u > 1), a MIMO detector 256, a receive processor 258, a data sink 260, a data source 262, a transmit processor 264, a TX MIMO processor 266, a controller/processor 280, a memory 282, and/or a communication manager 140, among other examples. One or more of the components of the UE 120 may be included in a housing 284. In some aspects, one or a combination of the antenna(s) 252, the modem(s) 254, the MIMO detector 256, the receive processor 258, the transmit processor 264, or the TX MIMO processor 266 may be included in a transceiver that is included in the UE 120. The transceiver may be under control of and used by one or more processors, such as the controller/processor 280, and in some aspects in conjunction with processor-readable code stored in the memory 282, to perform aspects of the methods, processes, or operations described herein. In some aspects, the UE 120 may include another interface, another communication component, and/or another component that facilitates communication with the network node 110 and/or another UE 120.
[0076] For downlink communication from the network node 110 to the UE 120, the set of antennas 252 may receive the downlink communications or signals from the network node 110 and may provide a set of received downlink signals (for example, R received signals) to the set of modems 254. For example, each received signal may be provided to a respective demodulator component (shown as DEMOD) of a modem 254. Each modem 254 may use the respective demodulator component to condition (for example, fdter, amplify, downconvert, and/or digitize) a received signal to obtain input samples. Each modem 254 may use the respective demodulator component to further demodulate or process the input samples (for example, for OFDM) to obtain received symbols. The MIMO detector 256 may obtain received symbols from the set of modems 254, may perform MIMO detection on the received symbols if applicable, and may provide detected symbols. The receive processor 258 may process (for example, decode) the detected symbols, may provide decoded data for the UE 120 to the data sink 260 (which may include a data pipeline, a data queue, and/or an application executed on the UE 120), and may provide decoded control information and system information to the controller/processor 280.
[0077] For uplink communication from the UE 120 to the network node 110, the transmit processor 264 may receive and process data (“uplink data”) from a data source 262 (such as a
data pipeline, a data queue, and/or an application executed on the UE 120) and control information from the controller/processor 280. The control information may include one or more parameters, feedback, one or more signal measurements, and/or other types of control information. In some aspects, the receive processor 258 and/or the controller/processor 280 may determine, for a received signal (such as received from the network node 110 or another UE), one or more parameters relating to transmission of the uplink communication. The one or more parameters may include a reference signal received power (RSRP) parameter, a received signal strength indicator (RS SI) parameter, a reference signal received quality (RSRQ) parameter, a CQI parameter, or a transmit power control (TPC) parameter, among other examples. The control information may include an indication of the RSRP parameter, the RSSI parameter, the RSRQ parameter, the CQI parameter, the TPC parameter, and/or another parameter. The control information may facilitate parameter selection and/or scheduling for the UE 120 by the network node 110.
[0078] The transmit processor 264 may generate reference symbols for one or more reference signals, such as an uplink DMRS, an uplink sounding reference signal (SRS), and/or another type of reference signal. The symbols from the transmit processor 264 may be precoded by the TX MIMO processor 266, if applicable, and further processed by the set of modems 254 (for example, for DFT-s-OFDM or CP-OFDM). The TX MIMO processor 266 may perform spatial processing (for example, precoding) on the data symbols, the control symbols, the overhead symbols, and/or the reference symbols, if applicable, and may provide a set of output symbol streams (for example, U output symbol streams) to the set of modems 254. For example, each output symbol stream may be provided to a respective modulator component (shown as MOD) of a modem 254. Each modem 254 may use the respective modulator component to process (for example, to modulate) a respective output symbol stream (for example, for OFDM) to obtain an output sample stream. Each modem 254 may further use the respective modulator component to process (for example, convert to analog, amplify, filter, and/or upconvert) the output sample stream to obtain an uplink signal.
[0079] The modems 254a through 254u may transmit a set of uplink signals (for example, R uplink signals or U uplink symbols) via the corresponding set of antennas 252. An uplink signal may include a UCI communication, a MAC-CE communication, an RRC communication, or another type of uplink communication. Uplink signals may be transmitted on a PUSCH, a PUCCH, and/or another type of uplink channel. An uplink signal may carry one or more TBs of data. Sidelink data and control transmissions (that is, transmissions directly between two or more UEs 120) may generally use similar techniques as were described for uplink data and control transmission, and may use sidelink-specific channels such as a physical sidelink shared channel (PSSCH), a physical sidelink control channel (PSCCH), and/or a physical sidelink feedback channel (PSFCH).
[0080] One or more antennas of the set of antennas 252 or the set of antennas 234 may include, or may be included within, one or more antenna panels, one or more antenna groups, one or more sets of antenna elements, or one or more antenna arrays, among other examples. An antenna panel, an antenna group, a set of antenna elements, or an antenna array may include one or more antenna elements (within a single housing or multiple housings), a set of coplanar antenna elements, a set of non-coplanar antenna elements, or one or more antenna elements coupled with one or more transmission or reception components, such as one or more components of Fig. 2. As used herein, “antenna” can refer to one or more antennas, one or more antenna panels, one or more antenna groups, one or more sets of antenna elements, or one or more antenna arrays. “Antenna panel” can refer to a group of antennas (such as antenna elements) arranged in an array or panel, which may facilitate beamforming by manipulating parameters of the group of antennas. “Antenna module” may refer to circuitry including one or more antennas, which may also include one or more other components (such as fdters, amplifiers, or processors) associated with integrating the antenna module into a wireless communication device.
[0081] In some examples, each of the antenna elements of an antenna 234 or an antenna 252 may include one or more sub-elements for radiating or receiving radio frequency signals. For example, a single antenna element may include a first sub-element cross-polarized with a second sub-element that can be used to independently transmit cross-polarized signals. The antenna elements may include patch antennas, dipole antennas, and/or other types of antennas arranged in a linear pattern, a two-dimensional pattern, or another pattern. A spacing between antenna elements may be such that signals with a desired wavelength transmitted separately by the antenna elements may interact or interfere constructively and destructively along various directions (such as to form a desired beam). For example, given an expected range of wavelengths or frequencies, the spacing may provide a quarter wavelength, a half wavelength, or another fraction of a wavelength of spacing between neighboring antenna elements to allow for the desired constructive and destructive interference patterns of signals transmitted by the separate antenna elements within that expected range.
[0082] The amplitudes and/or phases of signals transmitted via antenna elements and/or subelements may be modulated and shifted relative to each other (such as by manipulating phase shift, phase offset, and/or amplitude) to generate one or more beams, which is referred to as beamforming. The term “beam” may refer to a directional transmission of a wireless signal toward a receiving device or otherwise in a desired direction. “Beam” may also generally refer to a direction associated with such a directional signal transmission, a set of directional resources associated with the signal transmission (for example, an angle of arrival, a horizontal direction, and/or a vertical direction), and/or a set of parameters that indicate one or more aspects of a directional signal, a direction associated with the signal, and/or a set of directional
resources associated with the signal. In some implementations, antenna elements may be individually selected or deselected for directional transmission of a signal (or signals) by controlling amplitudes of one or more corresponding amplifiers and/or phases of the signal(s) to form one or more beams. The shape of a beam (such as the amplitude, width, and/or presence of side lobes) and/or the direction of a beam (such as an angle of the beam relative to a surface of an antenna array) can be dynamically controlled by modifying the phase shifts, phase offsets, and/or amplitudes of the multiple signals relative to each other.
[0083] Different UEs 120 or network nodes 110 may include different numbers of antenna elements. For example, a UE 120 may include a single antenna element, two antenna elements, four antenna elements, eight antenna elements, or a different number of antenna elements. As another example, a network node 110 may include eight antenna elements, 24 antenna elements, 64 antenna elements, 128 antenna elements, or a different number of antenna elements. Generally, a larger number of antenna elements may provide increased control over parameters for beam generation relative to a smaller number of antenna elements, whereas a smaller number of antenna elements may be less complex to implement and may use less power than a larger number of antenna elements. Multiple antenna elements may support multiple-layer transmission, in which a first layer of a communication (which may include a first data stream) and a second layer of a communication (which may include a second data stream) are transmitted using the same time and frequency resources with spatial multiplexing.
[0084] While blocks in Fig. 2 are illustrated as distinct components, the functions described above with respect to the blocks may be implemented in a single hardware, software, or combination component or in various combinations of components. For example, the functions described with respect to the transmit processor 264, the receive processor 258, and/or the TX MIMO processor 266 may be performed by or under the control of the controller/processor 280. [0085] Fig. 3 is a diagram illustrating an example disaggregated base station architecture 300, in accordance with the present disclosure. One or more components of the example disaggregated base station architecture 300 may be, may include, or may be included in one or more network nodes (such one or more network nodes 110). The disaggregated base station architecture 300 may include a CU 310 that can communicate directly with a core network 320 via a backhaul link, or that can communicate indirectly with the core network 320 via one or more disaggregated control units, such as a Non-RT RIC 350 associated with a Service Management and Orchestration (SMO) Framework 360 and/or a Near-RT RIC 370 (for example, via an E2 link). The CU 310 may communicate with one or more DUs 330 via respective midhaul links, such as via Fl interfaces. Each of the DUs 330 may communicate with one or more RUs 340 via respective fronthaul links. Each of the RUs 340 may communicate with one or more UEs 120 via respective RF access links. In some deployments, a UE 120 may be simultaneously served by multiple RUs 340.
[0086] Each of the components of the disaggregated base station architecture 300, including the CUs 310, the DUs 330, the RUs 340, the Near-RT RICs 370, the Non-RT RICs 350, and the SMO Framework 360, may include one or more interfaces or may be coupled with one or more interfaces for receiving or transmitting signals, such as data or information, via a wired or wireless transmission medium.
[0087] In some aspects, the CU 310 may be logically split into one or more CU user plane (CU-UP) units and one or more CU control plane (CU-CP) units. A CU-UP unit may communicate bidirectionally with a CU-CP unit via an interface, such as the El interface when implemented in an O-RAN configuration. The CU 310 may be deployed to communicate with one or more DUs 330, as necessary, for network control and signaling. Each DU 330 may correspond to a logical unit that includes one or more base station functions to control the operation of one or more RUs 340. For example, a DU 330 may host various layers, such as an RLC layer, a MAC layer, or one or more PHY layers, such as one or more high PHY layers or one or more low PHY layers. Each layer (which also may be referred to as a module) may be implemented with an interface for communicating signals with other layers (and modules) hosted by the DU 330, or for communicating signals with the control functions hosted by the CU 310. Each RU 340 may implement lower layer functionality. In some aspects, real-time and non-real-time aspects of control and user plane communication with the RU(s) 340 may be controlled by the corresponding DU 330.
[0088] The SMO Framework 360 may support RAN deployment and provisioning of nonvirtualized and virtualized network elements. For non-virtualized network elements, the SMO Framework 360 may support the deployment of dedicated physical resources for RAN coverage requirements, which may be managed via an operations and maintenance interface, such as an 01 interface. For virtualized network elements, the SMO Framework 360 may interact with a cloud computing platform (such as an open cloud (O-Cloud) platform 390) to perform network element life cycle management (such as to instantiate virtualized network elements) via a cloud computing platform interface, such as an 02 interface. A virtualized network element may include, but is not limited to, a CU 310, a DU 330, an RU 340, a non-RT RIC 350, and/or a Near-RT RIC 370. In some aspects, the SMO Framework 360 may communicate with a hardware aspect of a 4G RAN, a 5G NR RAN, and/or a 6G RAN, such as an open eNB (O- eNB) 380, via an 01 interface. Additionally or alternatively, the SMO Framework 360 may communicate directly with each of one or more RUs 340 via a respective 01 interface. In some deployments, this configuration can enable each DU 330 and the CU 310 to be implemented in a cloud-based RAN architecture, such as a vRAN architecture.
[0089] The Non-RT RIC 350 may include or may implement a logical function that enables non-real-time control and optimization of RAN elements and resources, AI/ML workflows including model training and updates, and/or policy-based guidance of applications and/or
features in the Near-RT RIC 370. The Non-RT RIC 350 may be coupled to or may communicate with (such as via an Al interface) the Near-RT RIC 370. The Near-RT RIC 370 may include or may implement a logical function that enables near-real-time control and optimization of RAN elements and resources via data collection and actions via an interface (such as via an E2 interface) connecting one or more CUs 310, one or more DUs 330, and/or an O-eNB with the Near-RT RIC 370.
[0090] In some aspects, to generate AI/ML models to be deployed in the Near-RT RIC 370, the Non-RT RIC 350 may receive parameters or external enrichment information from external servers. Such information may be utilized by the Near-RT RIC 370 and may be received at the SMO Framework 360 or the Non-RT RIC 350 from non-network data sources or from network functions. In some examples, the Non-RT RIC 350 or the Near-RT RIC 370 may tune RAN behavior or performance. For example, the Non-RT RIC 350 may monitor long-term trends and patterns for performance and may employ AI/ML models to perform corrective actions via the SMO Framework 360 (such as reconfiguration via an 01 interface) or via creation of RAN management policies (such as Al interface policies).
[0091] The network node 110, the controller/processor 240 of the network node 110, the UE 120, the controller/processor 280 of the UE 120, the CU 310, the DU 330, the RU 340, or any other componcnt(s) of Figs. 1, 2, or 3 may implement one or more techniques or perform one or more operations associated with using a DCI format for fields with changed values and unchanged values, as described in more detail elsewhere herein. For example, the controller/processor 240 of the network node 110, the controller/processor 280 of the UE 120, any other component(s) of Fig. 2, the CU 310, the DU 330, or the RU 340 may perform or direct operations of, for example, process 1300 of Fig. 13, process 1400 of Fig. 14, or other processes as described herein (alone or in conjunction with one or more other processors). The memory 242 may store data and program codes for the network node 110, the network node 110, the CU 310, the DU 330, or the RU 340. The memory 282 may store data and program codes for the UE 120. In some examples, the memory 242 or the memory 282 may include a non-transitory computer-readable medium storing a set of instructions (for example, code or program code) for wireless communication. The memory 242 may include one or more memories, such as a single memory or multiple different memories (of the same type or of different types). The memory 282 may include one or more memories, such as a single memory or multiple different memories (of the same type or of different types). For example, the set of instructions, when executed (for example, directly, or after compiling, converting, or interpreting) by one or more processors of the network node 110, the UE 120, the CU 310, the DU 330, or the RU 340, may cause the one or more processors to perform process 1300 of Fig. 13, process 1400 of Fig. 14, or other processes as described herein. In some examples,
executing instructions may include running the instructions, converting the instructions, compiling the instructions, and/or interpreting the instructions, among other examples.
[0092] In some aspects, a UE (e.g., a UE 120) includes means for receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI; means for receiving DCI having the DCI format; and/or means for decoding the one or more changed fields and not the one or more unchanged fields. The means for the UE to perform operations described herein may include, for example, one or more of communication manager 140, antenna 252, modem 254, MIMO detector 256, receive processor 258, transmit processor 264, TX MIMO processor 266, controller/processor 280, or memory 282.
[0093] In some aspects, a network entity (e.g., a network node 110) includes means for transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI; means for encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format; and/or means for transmitting the DCI. In some aspects, the means for the network entity to perform operations described herein may include, for example, one or more of communication manager 150, transmit processor 214, TX MIMO processor 216, modem 232, antenna 234, MIMO detector 236, receive processor 238, controller/processor 240, memory 242, or scheduler 246.
[0094] As indicated above, Fig. 3 is provided as an example. Other examples may differ from what is described with regard to Fig. 3.
[0095] Fig. 4 is a diagram illustrating an example 400 of DCI fields, in accordance with the present disclosure.
[0096] In NR 5G, a polar code is used for encoding control information, such as DCI on downlink channels and UCI on uplink channels. Bits of the polar code may be used in different fields (P0 to Pr-1), as shown in example 400. Some bits are known (e.g., in P2, P4) with respect to previous DCI. Other bits may have changed (e.g., P0, Pl, P3, P5 to Pr-1) with respect to the previous DCI. However, the UE expects that all of the DCI fields change at every time slot. The UE does not have information about which fields are unchanged or have changed. If the UE blind decodes each DCI field, the UE consumes time and processing resources.
[0097] As indicated above, Fig. 4 is provided as an example. Other examples may differ from what is described with regard to Fig. 4.
[0098] Fig. 5 is a diagram illustrating an example 500 of a DCI format, in accordance with the present disclosure.
[0099] Many fields (bits) of DCI remain unchanged over multiple consecutive transmissions (MCTs). On the downlink, the UE can exploit the unchanged fields and improve the decoding performance. According to various aspects described herein, a network entity may indicate which fields of DCI are going to remain unchanged. The network entity may indicate, for example, that fields P2 and P4 include known bits (unchanged fields 502) and the UE is to start decoding at the first changed field (of changed fields 504), or P0. The changed fields 504 are fields that can be expected to change, but not all of these fields may have changed.
[0100] In some aspects, the network entity may indicate how long the unchanged fields are to remain unchanged over MCTs. The UE may decode only the changed fields 504 and not decode the unchanged fields 502. By decoding only the changed fields 504, the UE may reduce the amount of blind bit/field decoding and improve the DCI decoding performance and reliability. Improved reliability may be achieved by mapping the unchanged DCI bits of the unchanged fields 502 on the least reliable indices of polar codes and mapping the changed DCI bits of the changed fields 504 on the most reliable indices. As a result, the UE conserves time and processing resources.
[0101] In DCI, fields that can have a strong correlation in time may include: a DCI format indicator, DMRS ports, a modulation and coding scheme (MCS), a time domain resource allocation (TDRA), a frequency domain resource allocation (FDRA), a transmit power control (TPC), a DMRS pattern, a hybrid automatic repeat request (HARQ) acknowledgement (ACK) timing, a PUCCH resource indicator, a sounding reference signal (SRS) request, a HARQ process number, a new data indicator (NDI), a redundancy version (RV), and/or a downlink assignment index (DAI). These fields can have non-uniform probability distributions over all possible ranges of values. In some aspects, DCI fields with a strong correlation and non- uniform probability distribution may be located in the least reliable locations (e.g., beginning of the DCI) and other fields may be located in the most reliable locations (e.g., after the unchanged fields 502, in middle of the DCI). Using the same DCI/UCI bit to polar channel indexing mapping given in NR 5G, the network entity may arrange the DCI fields with a strong correlation and non-uniform probability distribution (unchanged fields 502) at the beginning of the DCI and remaining fields (changed fields 504) after the unchanged fields 502.
[0102] In NR 5G, there are multiple DCI formats (DCIFs). To keep the description generic, P0 to Pr-1 may be the fields of a given DCIF. As per NR 5G DCI design, P0 to Pr-1 may be mapped in the increasing order of their index. A DCIF may indicate which fields are unchanged or how many fields are unchanged with respect to a previous transmission of DCI. A configuration (e.g., via RRC or MAC-CE) may specify for how long (e.g., a window length) the unchanged fields 502 are to remain unchanged. If a window length w = 1, all of the fields of a DCI are changed fields with respect to a previous DCI transmission. If a window length w = 2, between two consecutive DCI transmissions, the unchanged fields remain the same. If w = N,
among N consecutive DCI transmissions starting from time t, the unchanged fields remain the same.
[0103] Good channels have higher reliability in transmission and bad channels have lower reliability in transmission. NR 5G may use tables for channel indices in the increasing order of their reliability. Such tables may include standards tables for channel indices of polar codes along with their reliability. The network entity may select the K most reliable channel indices out of N available channel indices and map K information bits to K channel indices of an ' bit vector. This may be referred to as K-to-N mapping. The remaining N-K indices of the A'-bit vector are set to zero. K may be equal to A + 24 (A payload and 24 cyclic redundancy check (CRC) bits) bits. The N-bit vector obtained after mapping may be given as an input to the polar encoder. During encoding, the network entity may map the information bits in the increasing order of their index. But, for NR 5G, there is no distinction between known bits and unknown bits. Therefore, in some aspects, the network entity may map the known bits to the least reliable locations and unknown bits to the most reliable locations, depending on the percentage of known bits from the previous transmission. Such mapping can result in significant improvement in the decoding performance of subsequent DCI transmissions after the first successful DCI transmission over MCTs.
[0104] Example 500 shows that, in a new control information mapping, the known bits (e.g., in fields P2 and P4) are mapped to the least reliable locations and the unknown bits (e.g., in fields P0, Pl, P3, P5, ... Pr-1) are mapped to the most reliable locations. As there is a coupling between fields of DCI transmissions over MCTs, DCIs transmitted with this scheme are referred to as “time domain coupled DCIs” (TDC-DCIs). Coupling refers to all or a portion of bits remaining unchanged over multiple consecutive DCI transmissions. For example, in NR 5G as shown in example 400, known bits of P2 and P4 remain unchanged over MCTs. But in NR 5G, the UE determines the time-domain coupling on its own to take advantage of the coupling. Even though the UE determines, in NR 5G, K-to-N mapping, the UE does not distinguish between unchanged and changed bits. In other words, the mapping of example 400 does not leverage the unchanged bits to enable the improvement in decoding performance at UE.
[0105] As indicated above, Fig. 5 is provided as an example. Other examples may differ from what is described with regard to Fig. 5.
[0106] Fig. 6 is a diagram illustrating an example 600 associated with a DCI format for unchanged fields, in accordance with the present disclosure. As shown in Fig. 6, a network entity 610 (e.g., network node 110) and a UE 620 (e.g., UE 120) may communicate with one another via a wireless network (e.g., wireless communication network 100).
[0107] In some aspects, the network entity 610 may indicate time-domain coupling of DCIs over MCTs to the UE 620 via a window length and by rearranging the fields as in example 500.
This indication aids the K-to-N mapping to map unchanged field (known bits) to the least reliable indices and changed fields (unknown bits) to the most reliable indices. The DCIs transmitted with this scheme are referred to as TDC-DCIs.
[0108] As shown by reference number 625, the network entity 610 may transmit an indication of a DCI format with changed fields (one or more fields with changed values since the previous DCI) that follow unchanged fields (one or more fields with unchanged values since the previous DCI). The network entity 610 may also transmit a window indication that indicates a window length for how long (e.g., how many slots or monitoring occasions) the unchanged fields are to be unchanged. The UE 620 may receive the indication and the window indication. As shown by reference number 630, the network entity 610 may transmit DCI having the DCI format. The UE 620 may receive the DCI.
[0109] As shown by reference number 635, the UE 620 may decode the unchanged fields of the DCI and not the unchanged fields. The unchanged fields may be consecutive fields at the beginning of the DCI. The changed fields may be consecutive fields that start after the unchanged field. In some aspects, the UE 620 may start decoding at a first field of the changed fields.
[0110] In some aspects, the changed fields and the unchanged fields (the order of the fields) may be permutated (rearranged) with respect to a reference DCI format, to obtain the DCI format. For example, the DCI formats 0 0, 1 1, 1 0, and 0 1 may be given in a 3GPP standard. With the change in channel characteristics, the quantity of fields that the network entity 610 selects to remain the same in a given window can change. This may involve a permutation of fields of DCI to keep all unchanged fields at the beginning and changed fields at the end. The permutation of fields in a DCI results in a new DCI format that is derived from a reference DCI format given in a 3GPP standard. One or more changed fields are mapped to higher reliability bit indices of polar encoder input than the one or more unchanged fields.
[OHl] A DCIF may be referred to as a base DCIF (BDCIF). BDCIFs may be existing DCIFs that are given in NR 5G. Each of these DCIFs may be defined in a 3GPP standard as BDCIF X, where X indicates a different DCI format (e.g., 0 0, 1 0, 1 1, 0 1). The field mapping of DCI in example 500 may include a permuted version of the DCI shown in example 400. The DCIF shown in example 500 may be a permuted DCIF (PDCIF), which is a permuted version of BDCIF. As there can be many permutations of a given BDCIF X, the permutations may be indexed as PDCIF X Y. Here, Y indicates an index corresponding to a possible permutation of BDCIF X. BDCIF X may also be indexed as PDCIF X 0 and any other permutations may be indexed as PDCIF X l, PDCIF X 2, . . . , PDCIF X Y. In each of these permuted versions, only the fields that are expected to remain the same over a given window length ( rr) of MCTs are placed at the beginning of the DCI, and the remaining fields are placed at the end in the increasing order of their field index. Increasing order is expected for
simplicity, but the order may be given in the standard or may be indicated via RRC signaling. In other words, each PDCIF X Y index may implicitly indicate how many fields at the beginning are to remain the same over w slots. All of the valid PDCIF_X_Y may be given in the standard, or the network entity 610 may indicate, to the UE 620 via RRC signaling or a MAC-CE, the order of fields and the quantity of fields at the beginning of a DCI that are to remain the same over the window length w. The network entity 610 may also transmit the window indication via RRC signaling or a MAC-CE. The window length w may be defined as the quantity of consecutive DCI slots. Even if there is no DCI transmission in some slots (empty slots), these slots are counted as a part of the window length w. With an empty slot, the network entity 610 may indicate to the UE 620 that some fields that are expected to be unchanged in a window are now going to be changed in the middle of a window starting from the next DCI transmission after the empty slot. In the case of TDD systems, w may be defined as a quantity of consecutive slots. Some of these slots may include uplink slots. Whether uplink slots are included or not and/or how many of the slots are included in the window length may be defined.
[0112] In some aspects, as shown by reference number 640, the network entity 610 may transmit an update of a DCI format and/or an update of a window length.
[0113] As indicated above, Fig. 6 is provided as an example. Other examples may differ from what is described with respect to Fig. 6.
[0114] Fig. 7 is a diagram illustrating an example 700 of signaling for DCI formats, in accordance with the present disclosure.
[0115] Example 700 shows a timing diagram and a pictorial representation of a message exchange between the network entity 610 and the UE 620. At the beginning (e.g., at time instance t = 0), the network entity 610 may transmit an indication of the DCI format (PDCIF 702 index) via an RRC message. After an RRC setup or reconfiguration delay at t = tl , the network entity 610 may start transmitting DCI using the PDCIF 702 format. The window length w may include slots for which the fields of PDCIF 702 remain unchanged. In example 700, w is assumed to be greater than the RRC setup or reconfiguration delay. Within the window w, at t = tl + m, if the value of the known bits is expected to change, the network entity 610 may indicate this information to the UE 620. As per NR 5G, the RRC setup or reconfiguration delay (e.g., 10 ms) may be high. If the network entity 610 waits 10 ms to indicate a DCIF change to the UE 620, there may be a delay in the communication. To avoid the delay, the network entity 610 may transmit a MAC-CE to the UE 620 for fast signaling of special control information. MAC-CE action timing may be around 3 ms.
[0116] If w is large enough and if the known bits are expected to be changed within w slots (e.g., at t = tl + m), at t = tl+ql, the network entity 610 may transmit a MAC-CE to the UE 620
for a new PDCIF 704 for DCI transmissions starting t = tl + m. At the end of w slots (t = tl + w), if the network entity 610 is expected to change the DCIF to PDCIF 706 at t = tl + q2, the network entity 610 may indicate to the UE 620 via RRC that the network entity 610 is to use PDCIF 706 for DCI transmissions starting at t = tl + w. At t = tl + w, the network entity 610 may start using PDCIF 706 for DCI transmissions.
[0117] In example 700, detailed RRC and MAC-CE signaling between the network entity 610 and the UE 620 is to be expected as per NR 5G. The parameters tl, ql, q2, m, w may be variable. In example 700, m is expected to be greater than MAC-CE action timing, and w is expected to be greater than RRC setup or reconfiguration delays. However, for other scenarios, the values of m and w may be different. The smallest possible window length where the proposed scheme can be leveraged for DCI transmissions is w = 2 slots. That is, only two consecutive slots have the same fields with the same values. For every even slot, known bit values keep changing and for every odd slot, the known bit values may remain the same as the previous slot, and w = 1 is equivalent to NR 5G DCI transmissions. The larger the value of w, the bigger the gain that is offered by UE 620. Example 700 shows one MAC-CE signal between two RRC signals to update the DCI format. But in practice, for larger w, it is possible to have more than one MAC-CE exchange between two RRC exchanges related to a DCI format update.
[0118] As indicated above, Fig. 7 is provided as an example. Other examples may differ from what is described with regard to Fig. 7.
[0119] Fig. 8 is a diagram illustrating an example 800 of DCI formats, in accordance with the present disclosure.
[0120] In some aspects, if m = w, the DCI format remains unchanged during the window w, and thus there is no MAC-CE signaling, in contrast with the MAC-CE signaling shown in example 700. As shown by example 800, the DCI format change related communication between the network entity 610 and the UE 620 occurs via RRC signaling.
[0121] As indicated above, Fig. 8 is provided as an example. Other examples may differ from what is described with regard to Fig. 8.
[0122] Fig. 9 is a diagram illustrating an example 900 of using a DCI format, in accordance with the present disclosure.
[0123] It is possible that the network entity 610 may initially expect a larger w but because of the change in channel characteristics, the network entity 610 may change known bits within the window m shown in example 700. If the network entity 610 does not have enough time to update the UE 620 about the DCIF change via MAC-CE signaling, the network entity 610 may not change the payload of the known bits through consecutive slots. To change the known bits without any RRC or MAC-CE signaling, the network entity 610 may wait for one slot. Hence,
in this case, there is an empty slot 902 where the network entity 610 does not transmit any DCI to the UE 620 in one slot and from the subsequent slot in that window w . The network entity may not change the format (because there is no way to communicate the format change to the UE 620) but may change the value of some bits or a portion of known bits. Accordingly, as shown in example 900, the DCI transmissions in ml slots may have the same values for known bits. If the network entity 610 is to change the value of known bits again during ml slots, there may be an empty slot 902. If w is large, the percentage of empty slots may be negligible. If w is set to be small, there may not be a need for empty slots. In example 900, if ml is large enough, the network entity 610 may use MAC-CE signaling to update the UE 620 about the format change and use a different format for transmission in the middle of ml slots.
[0124] In example 900, the time-domain coupling is interrupted in the middle of the window, but the network entity 610 does not explicitly communicate this interruption to the UE 620. The empty slot aids the UE 620 in recognizing the interruption in time-domain coupling and thus the UE 620 may decode the subsequent DCIs, considering all of the fields/bits as unknown.
Without the empty slot, the UE 620 decodes DCI assuming some bits are unchanged, while the bits are actually changed. This assumption may result in a CRC failure for that DCI.
[0125] As indicated above, Fig. 9 is provided as an example. Other examples may differ from what is described with regard to Fig. 9.
[0126] Fig. 10 is a diagram illustrating examples 1000 and 1002 of encoding DCI, in accordance with the present disclosure.
[0127] Example 1000 shows a DCI encoding chain in NR 5G, starting with a DCI payload 1004. A radio temporary network identifier (RNTI) mask may be used for the CRC of the DCI payload 1004 before an interleaver 1006 interleaves DCI fields for mapping to a polar encoder. Example 1002 shows the changes in the DCI encoding associated with the TDC-DCI transmissions described herein. In some aspects, a difference between example 1000 and example 1002 is that, in example 1000, AT bits (DCI payload 1008 and CRC) are interleaved before K-to-N mapping. In example 1002, AT bits are not interleaved so as to allow for the permutation of the DCI fields according to a DCI format for unchanged values.
[0128] As indicated above, Fig. 10 is provided as an example. Other examples may differ from what is described with regard to Fig. 10.
[0129] Fig. 11 is a diagram illustrating an example 1100 of decoding DCI with a BDCIF, in accordance with the present disclosure.
Example 1100 shows a decoding methodology generally used at the UE 620 n NR 5G for DCI decoding. The UE 620 may perform blind bit/field decoding to decode the DCI. The NR 5G Standard specifies the DCI formats like Format 0 0, Format 0 1, Format 1 0, Format 1 1, ... , Format 3 1. In example 1100, BDCIF X may be one of these formats. The hypothesis hyp-A
may correspond to a hypothesis where a certain j number of fields at the beginning of the payload (depends on BDCIF 1104) are the same over MCTs. The hypothesis hyp-B may correspond to a hypothesis where all of the fields are unknown. In NR 5G, decoding the hypothesis expects that all of the fields in a DCI payload are unknown.
[0130] As indicated above, Fig. 11 is provided as an example. Other examples may differ from what is described with regard to Fig. 11.
[0131] Fig. 12 is a diagram illustrating an example 1200 of decoding DCI with a PDCIF, in accordance with the present disclosure.
[0132] Example 1200 shows a decoding methodology that can leverage the proposed TDC- DCI transmissions to improve the decoding performance. As shown in Figure 7, PDCIF 1104 may be transmitted over m slots. Hence, within the window m, after the first detected DCI, the UE 620 may expect all known fields to stay constant across the window. Therefore, at UE 620, in the first time slot among these m time slots, if there is a passing hypothesis (hyp), bits corresponding to j fields are known for the remaining (m - 1) slots. While decoding the hypothesis in the subsequent (m - 1) slots, bits of j fields are treated as known bits. This aids the UE 620 in significantly improving the decoding performance in the next (m - 1) slots. Also, the UE 620 may decode the DCI in subsequent (m - 1) slots at a lower signal -to-noise ratio (SNR). In the first time slot, hyp-B may be decoded and in the remaining time slots, hyp- A is decoded.
[0133] In some aspects, during a given timing window m in example 700 or w in example 800, the network entity 610 may communicate, to the 620, that the UE 620 has j fields that remain constant. If hyp-A does not pass in any slot (ith slot), starting from (i + \ )th slot to mth or wth slots, the UE 620 may decode hyp-B (all the bits are assumed to be unknown). As shown in Figure 9, the ith slot could be an empty slot and hence there is no passing hypothesis. With the proposed TDCI-DCI scheme, the general decoding methodology is that, even though the window length w is greater than 2, the UE 620 may expect that the time correlation only applies to consecutive DCI transmissions. If there is no correlation between consecutive DCI transmissions, the UE 620 may automatically fall back to hyp-B decoding. In this approach, the number of hypotheses remains the same as in NR 5G, but the benefits of the proposed TDC- DCI transmissions are manifest in i - 1 slots, but not in the remaining ml slots in example 800. Therefore, to take advantage of TDC-DCI transmissions in the remaining l slots, if hyp-B passes in the (i + \ )th slot, the UE may try hyp-A again starting from the (i + 2)th slot and repeat this process based on CRC pass/fail. Hence, as shown in example 1200, the decoding hypothesis may switch between hyp-A and hyp-B.
[0134] As indicated above, Fig. 12 is provided as an example. Other examples may differ from what is described with regard to Fig. 12.
[0135] Fig. 13 is a diagram illustrating an example process 1300 performed, for example, at a UE or an apparatus of a UE, in accordance with the present disclosure. Example process 1300 is an example where the apparatus or the UE (e.g., UE 120, UE 620) performs operations associated with a DCI format for fields with unchanged values.
[0136] As shown in Fig. 13, in some aspects, process 1300 may include receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI (block 1310). For example, the UE (e.g., using reception component 1502 and/or communication manager 1506, depicted in Fig. 15) may receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI, as described above.
[0137] As further shown in Fig. 13, in some aspects, process 1300 may include receiving DCI having the DCI format (block 1320). For example, the UE (e.g., using reception component 1502 and/or communication manager 1506, depicted in Fig. 15) may receive DCI having the DCI format, as described above.
[0138] As further shown in Fig. 13, in some aspects, process 1300 may include decoding the one or more changed fields and not the one or more unchanged fields (block 1330). For example, the UE (e.g., using communication manager 1506, depicted in Fig. 15) may decode the one or more changed fields and not the one or more unchanged fields, as described above.
[0139] Process 1300 may include additional aspects, such as any single aspect or any combination of aspects described below and/or in connection with one or more other processes described elsewhere herein.
[0140] In a first aspect, the one or more changed fields are consecutive fields.
[0141] In a second aspect, alone or in combination with the first aspect, the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
[0142] In a third aspect, alone or in combination with one or more of the first and second aspects, the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
[0143] In a fourth aspect, alone or in combination with one or more of the first through third aspects, the one or more changed fields are located after the one or more unchanged fields.
[0144] In a fifth aspect, alone or in combination with one or more of the first through fourth aspects, process 1300 includes receiving a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
[0145] In a sixth aspect, alone or in combination with one or more of the first through fifth aspects, the window includes one or more consecutive DCI slots or monitoring occasions.
[0146] In a seventh aspect, alone or in combination with one or more of the first through sixth aspects, a configuration for the DCI format indicates which fields are the one or more changed fields and which fields are the one or more unchanged fields.
[0147] In an eighth aspect, alone or in combination with one or more of the first through seventh aspects, process 1300 includes receiving a DCI format update via a MAC-CE or radio resource control signaling.
[0148] In a ninth aspect, alone or in combination with one or more of the first through eighth aspects, process 1300 includes receiving a window length update via a MAC-CE or radio resource control signaling.
[0149] In a tenth aspect, alone or in combination with one or more of the first through ninth aspects, process 1300 includes modifying the one or more unchanged fields based at least in part on receiving an empty slot.
[0150] Although Fig. 13 shows example blocks of process 1300, in some aspects, process 1300 may include additional blocks, fewer blocks, different blocks, or differently arranged blocks than those depicted in Fig. 13. Additionally, or alternatively, two or more of the blocks of process 1300 may be performed in parallel.
[0151] Fig. 14 is a diagram illustrating an example process 1400 performed, for example, at a network entity or an apparatus of a network entity, in accordance with the present disclosure. Example process 1400 is an example where the apparatus or the network entity (e.g., network node 110, network entity 610) performs operations associated with a DCI format for fields with unchanged values.
[0152] As shown in Fig. 14, in some aspects, process 1400 may include transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI (block 1410). For example, the network entity (e.g., using transmission component 1604 and/or communication manager 1606, depicted in Fig. 16) may transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI, as described above.
[0153] As further shown in Fig. 14, in some aspects, process 1400 may include encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format (block 1420). For example, the network entity (e.g., using communication manager 1606, depicted in Fig. 16) may encode DCI to have the one or more
changed fields and the one or more unchanged fields based at least in part on the DCI format, as described above.
[0154] As further shown in Fig. 14, in some aspects, process 1400 may include transmitting the DCI (block 1430). For example, the network entity (e.g., using transmission component 1604 and/or communication manager 1606, depicted in Fig. 16) may transmit the DCI, as described above.
[0155] Process 1400 may include additional aspects, such as any single aspect or any combination of aspects described below and/or in connection with one or more other processes described elsewhere herein.
[0156] In a first aspect, the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
[0157] In a second aspect, alone or in combination with the first aspect, the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
[0158] In a third aspect, alone or in combination with one or more of the first and second aspects, the one or more changed fields are located after the one or more unchanged fields.
[0159] In a fourth aspect, alone or in combination with one or more of the first through third aspects, process 1400 includes transmitting a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
[0160] In a fifth aspect, alone or in combination with one or more of the first through fourth aspects, process 1400 includes transmitting a DCI format update or a window length update via a MAC-CE or RRC signaling.
[0161] In a sixth aspect, alone or in combination with one or more of the first through fifth aspects, process 1400 includes indicating a modification of the one or more unchanged fields using an empty slot during transmission.
[0162] In a seventh aspect, alone or in combination with one or more of the first through sixth aspects, bits for DCI are not interleaved in a DCI encoding chain before encoding.
[0163] Although F ig . 14 shows example blocks of process 1400, in some aspects, process 1400 may include additional blocks, fewer blocks, different blocks, or differently arranged blocks than those depicted in Fig. 14. Additionally, or alternatively, two or more of the blocks of process 1400 may be performed in parallel.
[0164] Fig. 15 is a diagram of an example apparatus 1500 for wireless communication, in accordance with the present disclosure. The apparatus 1500 may be a UE, or a UE may include the apparatus 1500. In some aspects, the apparatus 1500 includes a reception component 1502, a transmission component 1504, and/or a communication manager 1506, which may be in communication with one another (for example, via one or more buses and/or one or more other
components). In some aspects, the communication manager 1506 is the communication manager 140 described in connection with Fig. 1. As shown, the apparatus 1500 may communicate with another apparatus 1508, such as a UE or a network node (such as a CU, a DU, an RU, or a base station), using the reception component 1502 and the transmission component 1504.
[0165] In some aspects, the apparatus 1500 may be configured to perform one or more operations described herein in connection with Figs. 1-12. Additionally, or alternatively, the apparatus 1500 may be configured to perform one or more processes described herein, such as process 1300 of Fig. 13. In some aspects, the apparatus 1500 and/or one or more components shown in Fig. 15 may include one or more components of the UE described in connection with Fig. 2. Additionally, or alternatively, one or more components shown in Fig. 15 may be implemented within one or more components described in connection with Fig. 2. Additionally, or alternatively, one or more components of the set of components may be implemented at least in part as software stored in one or more memories. For example, a component (or a portion of a component) may be implemented as instructions or code stored in a non-transitory computer- readable medium and executable by one or more controllers or one or more processors to perform the functions or operations of the component.
[0166] The reception component 1502 may receive communications, such as reference signals, control information, data communications, or a combination thereof, from the apparatus 1508. The reception component 1502 may provide received communications to one or more other components of the apparatus 1500. In some aspects, the reception component 1502 may perform signal processing on the received communications (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, de-mapping, equalization, interference cancellation, or decoding, among other examples), and may provide the processed signals to the one or more other components of the apparatus 1500. In some aspects, the reception component 1502 may include one or more antennas, one or more modems, one or more demodulators, one or more MIMO detectors, one or more receive processors, one or more controllers/processors, one or more memories, or a combination thereof, of the UE described in connection with Fig. 2.
[0167] The transmission component 1504 may transmit communications, such as reference signals, control information, data communications, or a combination thereof, to the apparatus 1508. In some aspects, one or more other components of the apparatus 1500 may generate communications and may provide the generated communications to the transmission component 1504 for transmission to the apparatus 1508. In some aspects, the transmission component 1504 may perform signal processing on the generated communications (such as filtering, amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples), and may transmit the processed signals to the apparatus
1508. In some aspects, the transmission component 1504 may include one or more antennas, one or more modems, one or more modulators, one or more transmit MIMO processors, one or more transmit processors, one or more controllers/processors, one or more memories, or a combination thereof, of the UE described in connection with Fig. 2. In some aspects, the transmission component 1504 may be co-located with the reception component 1502 in one or more transceivers.
[0168] The communication manager 1506 may support operations of the reception component 1502 and/or the transmission component 1504. For example, the communication manager 1506 may receive information associated with configuring reception of communications by the reception component 1502 and/or transmission of communications by the transmission component 1504. Additionally, or alternatively, the communication manager 1506 may generate and/or provide control information to the reception component 1502 and/or the transmission component 1504 to control reception and/or transmission of communications. [0169] The reception component 1502 may receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI. The reception component 1502 may receive DCI having the DCI format. The communication manager 1506 may decode the one or more changed fields and not the one or more unchanged fields.
[0170] The reception component 1502 may receive a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged. The reception component 1502 may receive a DCI format update via a MAC-CE or RRC signaling. The reception component 1502 may receive a window length update via a MAC-CE or radio resource control signaling. The communication manager 1506 may modify the one or more unchanged fields based at least in part on receiving an empty slot.
[0171] The number and arrangement of components shown in Fig. 15 are provided as an example. In practice, there may be additional components, fewer components, different components, or differently arranged components than those shown in Fig. 15. Furthermore, two or more components shown in Fig. 15 may be implemented within a single component, or a single component shown in Fig. 15 may be implemented as multiple, distributed components. Additionally, or alternatively, a set of (one or more) components shown in Fig. 15 may perform one or more functions described as being performed by another set of components shown in Fig. 15.
[0172] Fig. 16 is a diagram of an example apparatus 1600 for wireless communication, in accordance with the present disclosure. The apparatus 1600 may be a network entity, or a network entity may include the apparatus 1600. In some aspects, the apparatus 1600 includes a
reception component 1602, a transmission component 1604, and/or a communication manager 1606, which may be in communication with one another (for example, via one or more buses and/or one or more other components). In some aspects, the communication manager 1606 is the communication manager 150 described in connection with Fig. 1. As shown, the apparatus 1600 may communicate with another apparatus 1608, such as a UE or a network node (such as a CU, a DU, an RU, or a base station), using the reception component 1602 and the transmission component 1604.
[0173] In some aspects, the apparatus 1600 may be configured to perform one or more operations described herein in connection with Figs. 1-12. Additionally, or alternatively, the apparatus 1600 may be configured to perform one or more processes described herein, such as process 1400 of Fig. 14. In some aspects, the apparatus 1600 and/or one or more components shown in Fig. 16 may include one or more components of the network entity described in connection with Fig. 2. Additionally, or alternatively, one or more components shown in Fig. 16 may be implemented within one or more components described in connection with Fig. 2. Additionally, or alternatively, one or more components of the set of components may be implemented at least in part as software stored in one or more memories. For example, a component (or a portion of a component) may be implemented as instructions or code stored in a non-transitory computer-readable medium and executable by one or more controllers or one or more processors to perform the functions or operations of the component.
[0174] The reception component 1602 may receive communications, such as reference signals, control information, data communications, or a combination thereof, from the apparatus 1608. The reception component 1602 may provide received communications to one or more other components of the apparatus 1600. In some aspects, the reception component 1602 may perform signal processing on the received communications (such as filtering, amplification, demodulation, analog-to-digital conversion, demultiplexing, deinterleaving, de-mapping, equalization, interference cancellation, or decoding, among other examples), and may provide the processed signals to the one or more other components of the apparatus 1600. In some aspects, the reception component 1602 may include one or more antennas, one or more modems, one or more demodulators, one or more MIMO detectors, one or more receive processors, one or more controllers/processors, one or more memories, or a combination thereof, of the network entity described in connection with Fig. 2.
[0175] The transmission component 1604 may transmit communications, such as reference signals, control information, data communications, or a combination thereof, to the apparatus 1608. In some aspects, one or more other components of the apparatus 1600 may generate communications and may provide the generated communications to the transmission component 1604 for transmission to the apparatus 1608. In some aspects, the transmission component 1604 may perform signal processing on the generated communications (such as filtering,
amplification, modulation, digital-to-analog conversion, multiplexing, interleaving, mapping, or encoding, among other examples), and may transmit the processed signals to the apparatus 1608. In some aspects, the transmission component 1604 may include one or more antennas, one or more modems, one or more modulators, one or more transmit MIMO processors, one or more transmit processors, one or more controllers/processors, one or more memories, or a combination thereof, of the network entity described in connection with Fig. 2. In some aspects, the transmission component 1604 may be co-located with the reception component 1602 in one or more transceivers.
[0176] The communication manager 1606 may support operations of the reception component 1602 and/or the transmission component 1604. For example, the communication manager 1606 may receive information associated with configuring reception of communications by the reception component 1602 and/or transmission of communications by the transmission component 1604. Additionally, or alternatively, the communication manager 1606 may generate and/or provide control information to the reception component 1602 and/or the transmission component 1604 to control reception and/or transmission of communications. [0177] The transmission component 1604 may transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI. The communication manager 1606 may encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format. The transmission component 1604 may transmit the DCI.
[0178] The transmission component 1604 may transmit a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged. The transmission component 1604 may transmit a DCI format update or a window length update via a MAC-CE or radio resource control signaling. The communication manager 1606 may indicate a modification of the one or more unchanged fields using an empty slot during transmission.
[0179] The number and arrangement of components shown in Fig. 16 are provided as an example. In practice, there may be additional components, fewer components, different components, or differently arranged components than those shown in Fig. 16. Furthermore, two or more components shown in Fig. 16 may be implemented within a single component, or a single component shown in Fig. 16 may be implemented as multiple, distributed components. Additionally, or alternatively, a set of (one or more) components shown in Fig. 16 may perform one or more functions described as being performed by another set of components shown in Fig. 16.
[0180] The following provides an overview of some Aspects of the present disclosure:
[0181] Aspect 1 : A method of wireless communication performed by a UE, comprising: receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI; receiving DCI having the DCI format; and decoding the one or more changed fields and not the one or more unchanged fields.
[0182] Aspect 2: The method of Aspect 1, wherein the one or more changed fields are consecutive fields.
[0183] Aspect 3: The method of any of Aspects 1-2, wherein the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
[0184] Aspect 4: The method of any of Aspects 1-3, wherein the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields. [0185] Aspect 5: The method of any of Aspects 1-4, wherein the one or more changed fields are located after the one or more unchanged fields.
[0186] Aspect 6: The method of any of Aspects 1-5, further comprising receiving a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
[0187] Aspect 7: The method of Aspect 6, wherein the window includes one or more consecutive DCI slots or monitoring occasions.
[0188] Aspect 8: The method of any of Aspects 1-7, wherein a configuration for the DCI format indicates which fields are the one or more changed fields and which fields are the one or more unchanged fields.
[0189] Aspect 9: The method of any of Aspects 1-8, further comprising receiving a DCI format update via a medium access control control element (MAC-CE) or radio resource control signaling.
[0190] Aspect 10: The method of any of Aspects 1-9, further comprising receiving a window length update via a medium access control control element (MAC-CE) or radio resource control signaling.
[0191] Aspect 11: The method of any of Aspects 1-10, further comprising modifying the one or more unchanged fields based at least in part on receiving an empty slot.
[0192] Aspect 12: A method of wireless communication performed by a network entity, comprising: transmitting a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI; encoding DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format; and transmitting the DCI.
[0193] Aspect 13: The method of Aspect 12, wherein the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
[0194] Aspect 14: The method of any of Aspects 12-13, wherein the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
[0195] Aspect 15: The method of any of Aspects 12-14, wherein the one or more changed fields are located after the one or more unchanged fields.
[0196] Aspect 16: The method of any of Aspects 12-15, further comprising transmitting a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
[0197] Aspect 17: The method of any of Aspects 12-16, further comprising transmitting a DCI format update or a window length update via a medium access control control element (MAC-CE) or radio resource control signaling.
[0198] Aspect 18: The method of any of Aspects 12-17, further comprising indicating a modification of the one or more unchanged fields using an empty slot during transmission.
[0199] Aspect 19: The method of any of Aspects 12-18, wherein bits for DCI are not interleaved in a DCI encoding chain before encoding.
[0200] Aspect 20: An apparatus for wireless communication at a device, the apparatus comprising one or more processors; one or more memories coupled with the one or more processors; and instructions stored in the one or more memories and executable by the one or more processors to cause the apparatus to perform the method of one or more of Aspects 1-19.
[0201] Aspect 21 : An apparatus for wireless communication at a device, the apparatus comprising one or more memories and one or more processors coupled to the one or more memories, the one or more processors configured to cause the device to perform the method of one or more of Aspects 1-19.
[0202] Aspect 22: An apparatus for wireless communication, the apparatus comprising at least one means for performing the method of one or more of Aspects 1-19.
[0203] Aspect 23 : A non-transitory computer-readable medium storing code for wireless communication, the code comprising instructions executable by one or more processors to perform the method of one or more of Aspects 1-19.
[0204] Aspect 24: A non-transitory computer-readable medium storing a set of instructions for wireless communication, the set of instructions comprising one or more instructions that, when executed by one or more processors of a device, cause the device to perform the method of one or more of Aspects 1-19.
[0205] Aspect 25: A device for wireless communication, the device comprising a processing system that includes one or more processors and one or more memories coupled with the one or more processors, the processing system configured to cause the device to perform the method of one or more of Aspects 1-19.
[0206] Aspect 26: An apparatus for wireless communication at a device, the apparatus comprising one or more memories and one or more processors coupled to the one or more memories, the one or more processors individually or collectively configured to cause the device to perform the method of one or more of Aspects 1-19.
[0207] The foregoing disclosure provides illustration and description but is not intended to be exhaustive or to limit the aspects to the precise forms disclosed. Modifications and variations may be made in light of the above disclosure or may be acquired from practice of the aspects. [0208] As used herein, the term “component” is intended to be broadly construed as hardware or a combination of hardware and at least one of software or firmware. “Software” shall be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executables, threads of execution, procedures, or functions, among other examples, whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise. As used herein, a “processor” is implemented in hardware or a combination of hardware and software. It will be apparent that systems or methods described herein may be implemented in different forms of hardware or a combination of hardware and software. The actual specialized control hardware or software code used to implement these systems or methods is not limiting of the aspects. Thus, the operation and behavior of the systems or methods are described herein without reference to specific software code, because those skilled in the art will understand that software and hardware can be designed to implement the systems or methods based, at least in part, on the description herein. A component being configured to perform a function means that the component has a capability to perform the function, and does not require the function to be actually performed by the component, unless noted otherwise.
[0209] As used herein, “satisfying a threshold” may, depending on the context, refer to a value being greater than the threshold, greater than or equal to the threshold, less than the threshold, less than or equal to the threshold, equal to the threshold, or not equal to the threshold, among other examples.
[0210] As used herein, a phrase referring to “at least one of’ a list of items refers to any combination of those items, including single members. As an example, “at least one of: a, b, or c” is intended to cover a, b, c, a + b, a + c, b + c, and a + b + c, as well as any combination with
multiples of the same element (for example, a + a, a + a + a, a + a + b, a + a + c, a + b + b, a + c + c, b + b, b + b + b, b + b + c, c + c, and c + c + c, or any other ordering of a, b, and c).
[0211] No element, act, or instruction used herein should be construed as critical or essential unless explicitly described as such. Also, as used herein, the articles “a” and “an” are intended to include one or more items and may be used interchangeably with “one or more.” Further, as used herein, the article “the” is intended to include one or more items referenced in connection with the article “the” and may be used interchangeably with “the one or more.” Furthermore, as used herein, the terms “set” and “group” are intended to include one or more items and may be used interchangeably with “one or more.” Where only one item is intended, the phrase “only one” or similar language is used. Also, as used herein, the terms “has,” “have,” “having,” and similar terms are intended to be open-ended terms that do not limit an element that they modify (for example, an element “having” A may also have B). Further, the phrase “based on” is intended to mean “based on or otherwise in association with” unless explicitly stated otherwise. Also, as used herein, the term “or” is intended to be inclusive when used in a series and may be used interchangeably with “and/or,” unless explicitly stated otherwise (for example, if used in combination with “either” or “only one of’). It should be understood that “one or more” is equivalent to “at least one.”
[0212] Even though particular combinations of features are recited in the claims or disclosed in the specification, these combinations are not intended to limit the disclosure of various aspects. Many of these features may be combined in ways not specifically recited in the claims or disclosed in the specification. The disclosure of various aspects includes each dependent claim in combination with every other claim in the claim set.
Claims
1. An apparatus for wireless communication at a user equipment (UE), comprising: one or more memories; and one or more processors, coupled to the one or more memories, individually or collectively configured to cause the UE to: receive a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI; receive DCI having the DCI format; and decode the one or more changed fields and not the one or more unchanged fields.
2. The apparatus of claim 1, wherein the one or more changed fields are consecutive fields.
3. The apparatus of claim 1, wherein the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
4. The apparatus of claim 1, wherein the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
5. The apparatus of claim 1, wherein the one or more changed fields are located after the one or more unchanged fields.
6. The apparatus of claim 1, wherein the one or more processors are individually or collectively configured to cause the UE to receive a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
7. The apparatus of claim 6, wherein the window includes one or more consecutive DCI slots or monitoring occasions.
8. The apparatus of claim 1, wherein a configuration for the DCI format indicates which fields are the one or more changed fields and which fields are the one or more unchanged fields.
9. The apparatus of claim 1, wherein the one or more processors are individually or collectively configured to cause the UE to receive a DCI format update via a medium access control control element (MAC-CE) or radio resource control signaling.
10. The apparatus of claim 1, wherein the one or more processors are individually or collectively configured to cause the UE to receive a window length update via a medium access control control element (MAC-CE) or radio resource control signaling.
11. The apparatus of claim 1, wherein the one or more processors are individually or collectively configured to cause the UE to modify the one or more unchanged fields based at least in part on receiving an empty slot.
12. An apparatus for wireless communication at a network entity, comprising: one or more memories; and one or more processors, coupled to the one or more memories, individually or collectively configured to cause the network entity to: transmit a format indication of a DCI format that includes one or more changed fields with changed values with respect to a previous DCI and one or more unchanged fields with unchanged values with respect to the previous DCI; encode DCI to have the one or more changed fields and the one or more unchanged fields based at least in part on the DCI format; and transmit the DCI.
13. The apparatus of claim 12, wherein the one or more changed fields and the one or more unchanged fields are permutated with respect to a reference DCI format to obtain the DCI format.
14. The apparatus of claim 12, wherein the one or more changed fields are mapped to higher reliability indices of polar codes than the one or more unchanged fields.
15. The apparatus of claim 12, wherein the one or more changed fields are located after the one or more unchanged fields.
16. The apparatus of claim 12, wherein the one or more processors are individually or collectively configured to cause the network entity to transmit a window indication that indicates a window length of a window during which the one or more unchanged fields are going to remain unchanged.
17. The apparatus of claim 12, wherein the one or more processors are individually or collectively configured to cause the network entity to transmit a DCI format update or a window length update via a medium access control control element (MAC-CE) or radio resource control signaling.
18. The apparatus of claim 12, wherein the one or more processors are individually or collectively configured to cause the network entity to indicate a modification of the one or more unchanged fields using an empty slot during transmission.
19. The apparatus of claim 12, wherein bits for DCI are not interleaved in a DCI encoding chain before encoding.
20. A method of wireless communication performed by a UE, comprising: receiving a format indication of a DCI format that includes one or more changed fields having changed values with respect to a previous DCI and one or more unchanged fields having unchanged values with respect to the previous DCI; receiving DCI having the DCI format; and decoding the one or more changed fields and not the one or more unchanged fields.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US18/746,557 | 2024-06-18 | ||
| US18/746,557 US20250386357A1 (en) | 2024-06-18 | 2024-06-18 | Downlink control information format for fields with unchanged values |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2025264342A1 true WO2025264342A1 (en) | 2025-12-26 |
Family
ID=95981584
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2025/029735 Pending WO2025264342A1 (en) | 2024-06-18 | 2025-05-16 | Downlink control information format for fields with unchanged values |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US20250386357A1 (en) |
| WO (1) | WO2025264342A1 (en) |
Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20080240305A1 (en) * | 2005-08-16 | 2008-10-02 | Havish Koorapaty | Message Decoding With Apriori Information and Soft Combining |
| US20090225906A1 (en) * | 2008-01-28 | 2009-09-10 | Lg Electronics Inc. | Method for transmitting and decoding signals considering repeatedly transmitted information |
| US20090316823A1 (en) * | 2008-06-19 | 2009-12-24 | Qualcomm Incorporated | Methods and systems for improving frame decoding performance using known information |
| US20230275693A1 (en) * | 2022-02-28 | 2023-08-31 | Samsung Electronics Co., Ltd. | Pdcch decoding with known dci bits |
-
2024
- 2024-06-18 US US18/746,557 patent/US20250386357A1/en active Pending
-
2025
- 2025-05-16 WO PCT/US2025/029735 patent/WO2025264342A1/en active Pending
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20080240305A1 (en) * | 2005-08-16 | 2008-10-02 | Havish Koorapaty | Message Decoding With Apriori Information and Soft Combining |
| US20090225906A1 (en) * | 2008-01-28 | 2009-09-10 | Lg Electronics Inc. | Method for transmitting and decoding signals considering repeatedly transmitted information |
| US20090316823A1 (en) * | 2008-06-19 | 2009-12-24 | Qualcomm Incorporated | Methods and systems for improving frame decoding performance using known information |
| US20230275693A1 (en) * | 2022-02-28 | 2023-08-31 | Samsung Electronics Co., Ltd. | Pdcch decoding with known dci bits |
Also Published As
| Publication number | Publication date |
|---|---|
| US20250386357A1 (en) | 2025-12-18 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US20250266954A1 (en) | Synchronization signal block puncturing for channel bandwidth | |
| US20250386357A1 (en) | Downlink control information format for fields with unchanged values | |
| US20260019192A1 (en) | Code block bundle interleaving | |
| US20260005935A1 (en) | Known data indicator for time domain coupled control information transmissions | |
| US20250324419A1 (en) | Downlink control information transmissions via physical downlink shared channel resources | |
| US20260089688A1 (en) | Demodulation reference signal parameter selection for grant-free user equipment uplink transmission | |
| US20260012955A1 (en) | Group downlink control information for multi-user multiple-input-multiple-output communication | |
| US20260059540A1 (en) | Indication of physical downlink control channel message | |
| WO2026000276A1 (en) | Configuration for first physical uplink control channel | |
| WO2025147889A1 (en) | Frozen cyclic redundancy check bit using a polar code | |
| US20250317909A1 (en) | Aggregation factor parameter for control plane | |
| WO2026039929A1 (en) | Measurement gap indication in non-scheduling downlink control information | |
| US20250330428A1 (en) | Dynamic payload sizes in sequence-based transmissions | |
| US20260019999A1 (en) | Resource pool based uplink retransmissions | |
| WO2025194323A1 (en) | Retransmissions based on unused transmission occasion uplink control information and downlink feedback information | |
| US20250338289A1 (en) | Physical resource blocks outside downlink subband for physical downlink shared channel | |
| US20250324434A1 (en) | Physical downlink shared channel resources that carry downlink control information for multiple user equipments | |
| US20250300786A1 (en) | Reduction of a control plane section size for an interleaved physical downlink control channel control resource set 0 | |
| WO2025091200A1 (en) | Separate power control for sounding reference signal transmissions | |
| US20250150238A1 (en) | Enhanced hybrid automatic repeat request acknowledgement/negative acknowledgement configurations associated with initial physical downlink control channel communications | |
| US20260052544A1 (en) | Downlink control information monitoring restrictions | |
| WO2026020298A1 (en) | Remaining minimum system information segmentation | |
| US20250386279A1 (en) | System information blocks without downlink control information | |
| WO2025145312A1 (en) | Unused transmission occasion multiplexing | |
| US20260052490A1 (en) | Synchronization signal block identifier in primary synchronization signal or discovery signal |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 25729957 Country of ref document: EP Kind code of ref document: A1 |