WO2024033871A1 - Polarization-based repetitions in initial access procedures - Google Patents
Polarization-based repetitions in initial access procedures Download PDFInfo
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- WO2024033871A1 WO2024033871A1 PCT/IB2023/058104 IB2023058104W WO2024033871A1 WO 2024033871 A1 WO2024033871 A1 WO 2024033871A1 IB 2023058104 W IB2023058104 W IB 2023058104W WO 2024033871 A1 WO2024033871 A1 WO 2024033871A1
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- polarization
- physical channels
- uplink physical
- repetitions
- configuration
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- 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
- H04L1/02—Arrangements for detecting or preventing errors in the information received by diversity reception
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/14—Relay systems
- H04B7/15—Active relay systems
- H04B7/185—Space-based or airborne stations; Stations for satellite systems
- H04B7/1851—Systems using a satellite or space-based relay
- H04B7/18513—Transmission in a satellite or space-based system
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- 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
- H04L1/08—Arrangements for detecting or preventing errors in the information received by repeating transmission, e.g. Verdan system
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/08—Non-scheduled access, e.g. ALOHA
- H04W74/0833—Random access procedures, e.g. with 4-step access
Definitions
- the present disclosure relates to wireless communications, and more specifically to network access procedures for user equipment (UEs).
- UEs user equipment
- a wireless communications system may include one or multiple network communication devices, such as base stations, which may be otherwise known as an eNodeB (eNB), a next-generation NodeB (gNB), or other suitable terminology.
- Each network communication device such as a base station, may support wireless communications for one or multiple user communication devices, which may be otherwise known as user equipment (UE), or other suitable terminology.
- the wireless communications system may support wireless communications with one or multiple user communication devices by utilizing resources of the wireless communication system (e.g., time resources (e.g., symbols, slots, subframes, frames, or the like) or frequency resources (e.g., subcarriers, carriers).
- the wireless communications system may support wireless communications across various radio access technologies including third generation (3G) radio access technology, fourth generation (4G) radio access technology, fifth generation (5G) radio access technology, among other suitable radio access technologies beyond 5G (e.g., sixth generation (6G)).
- 3G third generation
- 4G fourth generation
- 5G fifth generation
- 6G sixth generation
- a user communication device performs an initial access procedure, such as a random access channel (RACH) process, to acquire uplink synchronization with a network entity, such as a gNB of a wireless communications system supporting the 5G radio access technology.
- the RACH process includes the UE sending a RACH preamble (e.g., Msgl) to the gNB, and, after a random access response from the gNB, sending a connection request or scheduled transmission (e.g., Msg3), often in repetition, to the gNB.
- the gNB in response to the connection request, sends back a connection setup response indicating a successful uplink connection between the UE and the gNB.
- the present disclosure relates to methods, apparatuses, and systems that support associating polarization types to random access channel transmissions.
- a UE and a network entity share polarization information, such as when the network entity configures the UE to associate a polarization type with RACH resources.
- the UE can employ or utilize polarization-based repetitions for Msgl, Msg3, and/or MsgA transmissions during the initial access procedures. In doing so, the UE can utilize the same time and frequency resources when performing polarization-based repetitions, enhancing coverage of the access procedures.
- Some implementations of the method and apparatuses described herein may further include a UE comprising a processor and a memory coupled with the processor, the processor configured to receive, from a network entity, a configuration that indicates polarization types associated with a repetition for uplink physical channels transmission during an initial access procedure, and transmit the repeated uplink physical channels based on the indicated polarization types.
- the configuration indicates polarization types for performing repetitions for Msgl, Msg3, MsgA, or a combination thereof.
- transmitting the repeated uplink physical channels includes transmitting multiple uplink physical channels multiple times while applying one or more polarization types.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes associating same frequency and time resources with different polarization types.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes configuring multiple, repeated physical random-access channel (PRACH) preamble transmissions for one or more detected signal synchronization blocks (SSBs) in a polarization domain.
- PRACH physical random-access channel
- transmitting the repeated uplink physical channels based on the indicated polarization types includes configuring PRACH transmissions for multiple RACH occasions (ROs).
- ROs RACH occasions
- transmitting the repeated uplink physical channels based on the indicated polarization types includes performing Msg3 repetitions in a polarization domain.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes configuring multiple MsgA repetitions in a polarization domain.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes transmitting MsgA preamble and MsgA PUSCH transmission in parallel using two different polarizations types at a same time.
- a MsgA PUSCH occasion may overlap in time and frequency with any MsgA PRACH occasion but would differ in a polarization domain.
- the polarization type includes left-hand circular polarization (LHCP) or right-hand circular polarization (RHCP).
- the configuration is received from the network entity via radio resource control (RRC) signaling.
- RRC radio resource control
- the configuration is received from the network entity of a non-terrestrial network (NTN).
- NTN non-terrestrial network
- Some implementations of the method and apparatuses described herein may further include a method performed by a UE, the method comprising receiving, from a network entity, a configuration that indicates polarization types associated with a repetition for uplink physical channels transmission during an initial access procedure and transmitting the repeated uplink physical channels based on the indicated polarization types.
- the configuration indicates polarization types for performing repetitions for Msgl, Msg3, MsgA, or a combination thereof.
- transmitting the repeated uplink physical channels includes transmitting multiple uplink physical channels multiple times while applying one or more polarization types.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes associating same frequency and time resources with different polarization types.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes configuring multiple, repeated physical random-access channel (PRACH) preamble transmissions for one or more detected signal synchronization blocks (SSBs) in a polarization domain.
- PRACH physical random-access channel
- transmitting the repeated uplink physical channels based on the indicated polarization types includes configuring PRACH transmissions for multiple RACH occasions (ROs).
- transmitting the repeated uplink physical channels based on the indicated polarization types includes performing Msg3 repetitions in a polarization domain.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes configuring multiple MsgA repetitions in a polarization domain.
- transmitting the repeated uplink physical channels based on the indicated polarization types includes transmitting MsgA preamble and MsgA PUSCH transmission in parallel using two different polarizations types at a same time.
- a MsgA PUSCH occasion may overlap in time and frequency with any MsgA PRACH occasion but would differ in a polarization domain.
- the polarization type includes left-hand circular polarization (LHCP) or right-hand circular polarization (RHCP).
- LHCP left-hand circular polarization
- RHCP right-hand circular polarization
- the configuration is received from the network entity via radio resource control (RRC) signaling.
- RRC radio resource control
- the configuration is received from the network entity of a non-terrestrial network (NTN).
- NTN non-terrestrial network
- Some implementations of the method and apparatuses described herein may further include a network entity, comprising a processor and a memory coupled with the processor, the processor configured to cause the network entity to transmit, to a UE, a configuration that indicates polarization types associated with a repetition for uplink physical channels transmission during an initial access procedure performed by the UE.
- a network entity comprising a processor and a memory coupled with the processor, the processor configured to cause the network entity to transmit, to a UE, a configuration that indicates polarization types associated with a repetition for uplink physical channels transmission during an initial access procedure performed by the UE.
- the configuration is transmitted via RRC signaling.
- FIG. 1 illustrates an example of a wireless communications system that supports polarization-based repetitions in initial access procedures, in accordance with aspects of the present disclosure.
- FIG. 2 illustrates an example of a diagram that supports one synchronization signal block (SSB) sharing multiple RACH occasions (ROs) in a polarization domain in accordance with aspects of the present disclosure.
- SSB synchronization signal block
- ROs RACH occasions
- FIG. 3 illustrates an example of a diagram that supports triggering Msg3 repetitions in the polarization domain in accordance with aspects of the present disclosure.
- FIG. 4 illustrates an example of a block diagram of a UE that supports polarization-based repetitions in initial access procedures in accordance with aspects of the present disclosure.
- FIG. 5 illustrates a flowchart of a method that supports polarization-based repetitions in initial access procedures in accordance with aspects of the present disclosure.
- NTNs non-terrestrial network
- performance degradation can occur when polarization is not known or shared between network entities and user communication devices.
- polarization mismatches between devices can result in frequent delays in connection establishment processes.
- polarization mismatches in specific messaging e.g., Msgl or Msg3 of the RACH process
- Msgl or Msg3 of the RACH process can lead reductions in coverage during initial access procedures, potential beam failures, and other drawbacks.
- a network entity can configure a UE to employ or utilize polarization-based repetitions for Msgl, Msg3, and/or MsgA transmission during the initial access procedures.
- the UE can utilize the same time and frequency resources when performing polarization-based repetitions, because the repetitions are orthogonal in their polarization.
- the sharing of polarization information during initial access procedures can enhance coverage of the random access channel during uplink synchronization.
- the use of the polarization domain, orthogonal to the time domain and/or frequency domain enhances the coverage during the access procedures without utilizing additional time or frequency resources, among other benefits.
- FIG. 1 illustrates an example of a wireless communications system 100 that supports polarization-based repetitions in initial access procedures in accordance with aspects of the present disclosure.
- the wireless communications system 100 may include one or more network entities 102, one or more UEs 104, a core network 106, and a packet data network 108.
- the wireless communications system 100 may support various radio access technologies.
- the wireless communications system 100 may be a 4G network, such as an LTE network or an LTE- Advanced (LTE-A) network.
- LTE-A LTE- Advanced
- the wireless communications system 100 may be a 5G network, such as an NR network.
- the wireless communications system 100 may be a combination of a 4G network and a 5G network, or other suitable radio access technology including Institute of Electrical and Electronics Engineers (IEEE) 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802.20.
- IEEE Institute of Electrical and Electronics Engineers
- Wi-Fi Wi-Fi
- WiMAX IEEE 802.16
- IEEE 802.20 The wireless communications system 100 may support radio access technologies beyond 5G. Additionally, the wireless communications system 100 may support technologies, such as time division multiple access (TDMA), frequency division multiple access (FDMA), or code division multiple access (CDMA), etc.
- TDMA time division multiple access
- FDMA frequency division multiple access
- CDMA code division multiple access
- the one or more network entities 102 may be dispersed throughout a geographic region to form the wireless communications system 100.
- One or more of the network entities 102 described herein may be or include or may be referred to as a network node, a base station, a network element, a radio access network (RAN), a base transceiver station, an access point, a NodeB, an eNodeB (eNB), a next-generation NodeB (gNB), or other suitable terminology.
- a network entity 102 and a UE 104 may communicate via a communication link 110, which may be a wireless or wired connection.
- a network entity 102 and a UE 104 may perform wireless communication (e.g., receive signaling, transmit signaling) over a Uu interface.
- a network entity 102 may provide a geographic coverage area 112 for which the network entity 102 may support services (e.g., voice, video, packet data, messaging, broadcast, etc.) for one or more UEs 104 within the geographic coverage area 112.
- a network entity 102 and a UE 104 may support wireless communication of signals related to services (e.g., voice, video, packet data, messaging, broadcast, etc.) according to one or multiple radio access technologies.
- a network entity 102 may be moveable, for example, a satellite associated with a non-terrestrial network.
- different geographic coverage areas 112 associated with the same or different radio access technologies may overlap, but the different geographic coverage areas 112 may be associated with different network entities 102.
- Information and signals described herein may be represented using any of a variety of different technologies and techniques.
- data, instructions, commands, information, signals, bits, symbols, and chips that may be referenced throughout the description may be represented by voltages, currents, electromagnetic waves, magnetic fields or particles, optical fields or particles, or any combination thereof.
- the one or more UEs 104 may be dispersed throughout a geographic region of the wireless communications system 100.
- a UE 104 may include or may be referred to as a mobile device, a wireless device, a remote device, a remote unit, a handheld device, or a subscriber device, or some other suitable terminology.
- the UE 104 may be referred to as a unit, a station, a terminal, or a client, among other examples.
- the UE 104 may be referred to as an Internet-of-Things (loT) device, an Internet-of-Everything (loE) device, or machine-type communication (MTC) device, among other examples.
- a UE 104 may be stationary in the wireless communications system 100.
- a UE 104 may be mobile in the wireless communications system 100.
- the one or more UEs 104 may be devices in different forms or having different capabilities. Some examples of UEs 104 are illustrated in FIG. 1.
- a UE 104 may be capable of communicating with various types of devices, such as the network entities 102, other UEs 104, or network equipment (e.g., the core network 106, the packet data network 108, a relay device, an integrated access and backhaul (IAB) node, or another network equipment), as shown in FIG. 1.
- a UE 104 may support communication with other network entities 102 or UEs 104, which may act as relays in the wireless communications system 100.
- a UE 104 may also be able to support wireless communication directly with other UEs 104 over a communication link 114.
- a UE 104 may support wireless communication directly with another UE 104 over a device-to-device (D2D) communication link.
- D2D device-to-device
- the communication link 114 may be referred to as a sidelink.
- a UE 104 may support wireless communication directly with another UE 104 over a PC5 interface.
- a network entity 102 may support communications with the core network 106, or with another network entity 102, or both.
- a network entity 102 may interface with the core network 106 through one or more backhaul links 116 (e.g., via an SI, N2, N2, or another network interface).
- the network entities 102 may communicate with each other over the backhaul links 116 (e.g., via an X2, Xn, or another network interface).
- the network entities 102 may communicate with each other directly (e.g., between the network entities 102).
- the network entities 102 may communicate with each other or indirectly (e.g., via the core network 106).
- one or more network entities 102 may include subcomponents, such as an access network entity, which may be an example of an access node controller (ANC).
- An ANC may communicate with the one or more UEs 104 through one or more other access network transmission entities, which may be referred to as a radio heads, smart radio heads, or transmission-reception points (TRPs).
- TRPs transmission-reception points
- a network entity 102 may be configured in a disaggregated architecture, which may be configured to utilize a protocol stack physically or logically distributed among two or more network entities 102, such as an integrated access backhaul (IAB) network, an open RAN (O-RAN) (e.g., a network configuration sponsored by the O-RAN Alliance), or a virtualized RAN (vRAN) (e.g., a cloud RAN (C- RAN)).
- IAB integrated access backhaul
- O-RAN open RAN
- vRAN virtualized RAN
- C- RAN cloud RAN
- a network entity 102 may include one or more of a central unit (CU), a distributed unit (DU), a radio unit (RU), a RAN Intelligent Controller (RIC) (e.g., a NearReal Time RIC (Near-RT RIC), a Non-Real Time RIC (Non-RT RIC)), a Service Management and Orchestration (SMO) system, or any combination thereof.
- CU central unit
- DU distributed unit
- RU radio unit
- RIC RAN Intelligent Controller
- RIC e.g., a NearReal Time RIC (Near-RT RIC), a Non-Real Time RIC (Non-RT RIC)
- SMO Service Management and Orchestration
- An RU may also be referred to as a radio head, a smart radio head, a remote radio head (RRH), a remote radio unit (RRU), or a transmission reception point (TRP).
- RRH remote radio head
- RRU remote radio unit
- TRP transmission reception point
- One or more components of the network entities 102 in a disaggregated RAN architecture may be co-located, or one or more components of the network entities 102 may be located in distributed locations (e.g., separate physical locations).
- one or more network entities 102 of a disaggregated RAN architecture may be implemented as virtual units (e.g., a virtual CU (VCU), a virtual DU (VDU), a virtual RU (VRU)).
- VCU virtual CU
- VDU virtual DU
- VRU virtual RU
- Split of functionality between a CU, a DU, and an RU may be flexible and may support different functionalities depending upon which functions (e.g., network layer functions, protocol layer functions, baseband functions, radio frequency functions, and any combinations thereof) are performed at a CU, a DU, or an RU.
- functions e.g., network layer functions, protocol layer functions, baseband functions, radio frequency functions, and any combinations thereof
- a functional split of a protocol stack may be employed between a CU and a DU such that the CU may support one or more layers of the protocol stack and the DU may support one or more different layers of the protocol stack.
- the CU may host upper protocol layer (e.g., a layer 3 (L3), a layer 2 (L2)) functionality and signaling (e.g., Radio Resource Control (RRC), service data adaption protocol (SDAP), Packet Data Convergence Protocol (PDCP)).
- RRC Radio Resource Control
- SDAP service data adaption protocol
- PDCP Packet Data Convergence Protocol
- the CU may be connected to one or more DUsor RUs, and the one or more DUs or RUs may host lower protocol layers, such as a layer 1 (LI) (e.g., physical (PHY) layer) or an L2 (e.g., radio link control (RLC) layer, medium access control (MAC) layer) functionality and signaling, and may each be at least partially controlled by the CU 160.
- LI layer 1
- PHY physical
- L2 radio link control
- MAC medium access control
- a functional split of the protocol stack may be employed between a DU and an RU such that the DU may support one or more layers of the protocol stack and the RU may support one or more different layers of the protocol stack.
- the DU may support one or multiple different cells (e.g., via one or more RUs).
- a functional split between a CU and a DU, or between a DU and an RU may be within a protocol layer (e.g., some functions for a protocol layer may be performed by one of a CU, a DU, or an RU, while other functions of the protocol layer are performed by a different one of the CU, the DU, or the RU).
- a CU may be functionally split further into CU control plane (CU-CP) and CU user plane (CU-UP) functions.
- a CU may be connected to one or more DUs via a midhaul communication link (e.g., Fl, Fl-c, Fl-u), and a DU may be connected to one or more RUs via a fronthaul communication link (e.g., open fronthaul (FH) interface).
- a midhaul communication link or a fronthaul communication link may be implemented in accordance with an interface (e.g., a channel) between layers of a protocol stack supported by respective network entities 102 that are in communication via such communication links.
- the core network 106 may support user authentication, access authorization, tracking, connectivity, and other access, routing, or mobility functions.
- the core network 106 may be an evolved packet core (EPC), or a 5G core (5GC), which may include a control plane entity that manages access and mobility (e.g., a mobility management entity (MME), an access and mobility management functions (AMF)) and a user plane entity that routes packets or interconnects to external networks (e.g., a serving gateway (S-GW), a Packet Data Network (PDN) gateway (P-GW), or a user plane function (UPF)).
- EPC evolved packet core
- 5GC 5G core
- MME mobility management entity
- AMF access and mobility management functions
- S-GW serving gateway
- PDN gateway Packet Data Network gateway
- UPF user plane function
- control plane entity may manage non-access stratum (NAS) functions, such as mobility, authentication, and bearer management (e.g., data bearers, signal bearers, etc.) for the one or more UEs 104 served by the one or more network entities 102 associated with the core network 106.
- NAS non-access stratum
- the core network 106 may communicate with the packet data network 108 over one or more backhaul links 116 (e.g., via an SI, N2, N2, or another network interface).
- the packet data network 108 may include an application server 118.
- one or more UEs 104 may communicate with the application server 118.
- a UE 104 may establish a session (e.g., a protocol data unit (PDU) session, or the like) with the core network 106 via a network entity 102.
- the core network 106 may route traffic (e.g., control information, data, and the like) between the UE 104 and the application server 118 using the established session (e.g., the established PDU session).
- the PDU session may be an example of a logical connection between the UE 104 and the core network 106 (e.g., one or more network functions of the core network 106).
- the network entities 102 and the UEs 104 may use resources of the wireless communication system 100 (e.g., time resources (e.g., symbols, slots, subframes, frames, or the like) or frequency resources (e.g., subcarriers, carriers)) to perform various operations (e.g., wireless communications).
- the network entities 102 and the UEs 104 may support different resource structures.
- the network entities 102 and the UEs 104 may support different frame structures.
- the network entities 102 and the UEs 104 may support a single frame structure.
- the network entities 102 and the UEs 104 may support various frame structures (i.e., multiple frame structures).
- the network entities 102 and the UEs 104 may support various frame structures based on one or more numerologies.
- One or more numerologies may be supported in the wireless communications system 100, and a numerology may include a subcarrier spacing and a cyclic prefix.
- a first subcarrier spacing e.g., 15 kHz
- a normal cyclic prefix e.g. 15 kHz
- the first subcarrier spacing e.g., 15 kHz
- a time interval of a resource (e.g., a communication resource) may be organized according to frames (also referred to as radio frames).
- Each frame may have a duration, for example, a 10 millisecond (ms) duration.
- each frame may include multiple subframes.
- each frame may include 10 subframes, and each subframe may have a duration, for example, a 1 ms duration.
- each frame may have the same duration.
- each subframe of a frame may have the same duration.
- a time interval of a resource may be organized according to slots.
- a subframe may include a number (e.g., quantity) of slots.
- the number of slots in each subframe may also depend on the one or more numerologies supported in the wireless communications system 100.
- Each slot may include a number (e.g., quantity) of symbols (e.g., OFDM symbols).
- the number (e.g., quantity) of slots for a subframe may depend on a numerology.
- a slot For a normal cyclic prefix, a slot may include 14 symbols.
- a slot For an extended cyclic prefix (e.g., applicable for 60 kHz subcarrier spacing), a slot may include 12 symbols.
- a first subcarrier spacing e.g. 15 kHz
- an electromagnetic (EM) spectrum may be split, based on frequency or wavelength, into various classes, frequency bands, frequency channels, etc.
- the wireless communications system 100 may support one or multiple operating frequency bands, such as frequency range designations FR1 (410 MHz - 7.125 GHz), FR2 (24.25 GHz - 52.6 GHz), FR3 (7.125 GHz - 24.25 GHz), FR4 (52.6 GHz - 114.25 GHz), FR4a or FR4-1 (52.6 GHz - 71 GHz), and FR5 (114.25 GHz - 300 GHz).
- FR1 410 MHz - 7.125 GHz
- FR2 24.25 GHz - 52.6 GHz
- FR3 7.125 GHz - 24.25 GHz
- FR4 (52.6 GHz - 114.25 GHz
- FR4a or FR4-1 52.6 GHz - 71 GHz
- FR5 114.25 GHz - 300 GHz
- the network entities 102 and the UEs 104 may perform wireless communications over one or more of the operating frequency bands.
- FR1 may be used by the network entities 102 and the UEs 104, among other equipment or devices for cellular communications traffic (e.g., control information, data).
- FR2 may be used by the network entities 102 and the UEs 104, among other equipment or devices for short-range, high data rate capabilities.
- FR1 may be associated with one or multiple numerologies (e.g., at least three numerologies).
- FR2 may be associated with one or multiple numerologies (e.g., at least 2 numerologies).
- a network entity can configure a UE, via implicit or explicit communication, to utilize polarization-based repetitions during Msgl, Msg3, and/or MsgA transmissions.
- a UE such as the UE 104, performs multiple/repeated PRACH preamble transmissions for one or multiple detected SSBs in the polarization domain.
- the number, or amount, of repetitions in the polarization domain may be explicitly configured by RRC, via RACH RRC information elements, for both contention based and contention free random channel access methods.
- the number of repetitions is based on two circular polarization types (e.g., left-hand circular polarization, or LHCP, and right-hand circular polarization, or RHCP).
- RACH information elements can include a parameter field “PolRep ” with values ⁇ 0,1 ⁇ , to indicate a default repetition method based on the LHCP and RHCP.
- a parameter field of false indicates no repetition in the polarization domain
- a field of true indicates that the UE shall employ repetition in the polarization domain by transmitting PRACH preambles in both LHCP and RHCP.
- the number of polarization types to be used for repetitions can be greater than two, and can be pre-defined in the specification (e.g., via a mapping table that defines an index corresponding to polarization types to be used for repetition.
- the mapping table can define “0” to represent LHCP and Linear, “1” to represent RHCP and LHCP, and “2” to represent RHCP, LHCP, and Linear.
- RRC signaling can also indicate the number of polarization types (e.g., 1, 2, or 3) when the UE performs repetitions.
- the UE can perform RO configuration in the polarization domain where multiple ROs are configured for an SSB using time, frequency and polarize resources.
- FIG. 2 illustrates an example of a diagram 200 that supports one synchronization signal block (SSB) sharing multiple RACH occasions (ROs) in a polarization domain in accordance with aspects of the present disclosure.
- the diagram 200 illustrates the use of resources in a time domain 205, a frequency domain 210, and a polarization domain 215
- a single SSB is associated with 4 ROs 220.
- the UE can perform repetitions as follows: the UE utilizes the first two frequency resources over a single resource instance in the time domain 205 with one polarization, and then moves on to the next polarization using the same two time and frequency resources. The UE, then moves to the next time RO instance along the time domain 205.
- a repetition in the polarization domain includes repeating configured ROs, using time-frequency resources, for an SSB candidate in the polarization domain.
- the UE is configured to perform PRACH repetitions in the polarization domain for a single detected SSB using the same PRACH preamble (e.g., to employ polarization diversity).
- a UE is configured with one RO for an SSB candidate and configured (e.g., by default) to perform circular polarization-based repetitions using a polarization diversity method.
- the UE may first transmit a preamble on the configured RO with one circular polarization type (e.g., LHCP) and then transmit the same preamble on the same time-frequency resources with a second circular polarization type (e.g., RHCP).
- one circular polarization type e.g., LHCP
- RHCP second circular polarization type
- UEs are configured with multiple beams and/or multiple ROs for an SSB candidate and configured to perform polarization diversity-based repetitions. Based on such configuration, the UEs can perform multiple PRACH preamble transmissions in the time- frequency domain and in the polarization domain. For example, the UE can repeat a preamble for each of the configured ROs for an SSB in the polarization domain (e.g., repeating the same preamble for a RO with multiple, different, configured polarizations).
- a UE is configured to perform PRACH repetitions in the polarization domain for a single detected SSB using different PRACH preambles (e.g., exhibiting polarization multiplexing).
- PRACH preambles e.g., exhibiting polarization multiplexing.
- the utilization of polarization multiplexing can lower the probability of preamble collisions between UEs of a cell, such as in an NTN, which can have a large cell size with a large number attempting initial access to the network.
- a UE is configured with one RO for an SSB candidate and is configured (e.g., as a default configuration) to perform circular polarization-based repetitions using polarization multiplexing.
- the UE Upon detection of the SSB, the UE first transmits a preamble on the configured RO with one circular polarization type (e.g., LHCP) and then transmits a second preamble on the same time-frequency resources using a second circular polarization type (e.g., RHCP).
- one circular polarization type e.g., LHCP
- RHCP second circular polarization type
- the configuration indicates that the UE randomly chooses a preamble from a preamble set for use with different polarizations of one RO.
- each polarization repetition is configured or associated a set of preambles (e.g., preambles 0-31 are associated with LHCP, and preambles 32-63 are associated with RHCP).
- UEs are configured with multiple beams and/or multiple ROs for an SSB candidate and configured to perform polarization multiplexing-based repetitions.
- a UE employs different preambles for repetitions in the polarization domain for each of the beams/ROs.
- a configuration can indicate a combination or mixture of polarization diversity and spatial multiplexing based repetitions when multiple beams and/or multiple ROs are configured for an SSB.
- some of the beams/ROs may use polarization diversity based repetitions and some other beams/ROs may use polarization multiplexing based repetitions for an SSB candidate.
- a UE is configured to transmit multiple PRACH preambles associated with multiple SSBs at the same time while they are multiplexed in the polarization domain. For example, a UE detects the multiple SSBs and simultaneously transmits the PRACH preambles associated with the best detected SSBs with different polarizations. In some cases, the number of polarization domain transmissions is based on the UE polarization capability and the number of best detected SSBs.
- a separate RO is defined in the polarization domain for each SSB, there is only one valid RO configured for one SSB in the polarization domain, or there is only one valid RO and the UE transmits preambles for multiple SSBs in the polarization domain.
- the configuration may include a list of valid preambles associated with all SSBs to be used for the second polarizations type, so the network has knowledge of the second SSB.
- a UE if a UE has the capability of transmitting LHCP and RHCP polarizations, the UE identifies the best two SSBs (e.g., SSBs having a highest Reference Signal Received Power (RSRP) value within a predefined threshold) and searches for a valid RO for the first SSB. The UE may then transmit a PRACH preamble associated with the first SSB on the respective valid RO using a first polarization type (e.g., LHCP), and then search for the PRACH preamble associated with the second SSB on the same RO using a second polarization type (e.g., RHCP).
- a first polarization type e.g., LHCP
- RHCP second polarization type
- the network does not explicitly indicate the use of polarization-based repetitions.
- a UE can perform repetitions based on the RSRP of a detected SSB. For example, if the RSRP level of an SSB is below a certain threshold, the UE would employ polarization- based repetitions for the RO of that SSB, where the type of repetitions (e.g., diversity or multiplexing) and polarization types (e.g., LHCP, RHCP, Linear, and so on) are separately configured, pre-defined or autonomously chosen by the UE.
- the type of repetitions e.g., diversity or multiplexing
- polarization types e.g., LHCP, RHCP, Linear, and so on
- the threshold value for the RSRP level can also be predefined, configured through RRC signaling, or autonomously selected by the UE and may depend on various factors such as cell layout, frequency reuse fact, and/or position of the UE (e.g., for contention free random access procedures).
- the UE performs or applies Msg3 repetitions in the polarization domain, in addition to time domain repetitions, where the multiple polarization-based repetitions can utilize the same time and frequency resources.
- the configuration of polarization-based repetitions can depend on the polarization capabilities of the UE.
- the network has knowledge of the polarization capability of the UE (e.g., what polarization types the UE can employ) and configures the polarization-based repetitions based on the indicated UE capability.
- the UE can explicitly or implicitly indicate polarization capabilities polarization capabilities to the network during or within the Msgl transmission of the initial access procedure.
- a UE may be configured to use multiple polarization- based PRACH repetitions (e.g., configured with LHCP, RHCP, and linear polarization types). However, the UE may have only LHCP and RHCP capabilities, and applies PRACH repetitions based its capabilities.
- the network determines the UE capability of only LHCP and RHCP, and subsequently configures polarization-based Msg3 repetitions in a random access response (RAR) message using only LHCP and RHCP.
- RAR random access response
- the UE can configure the polarization-based Msg3 repetitions without receiving network configuration, where the repetitions on multiple polarizations are configured with a specified pattern.
- the UE applies repetitions based on its known capabilities, utilizing all or one of the polarizations-based repetitions in the specified pattern.
- the configuration of Msg3 repetitions in the time domain is indicated by a higher layer parameter “numberOjMsg3Repetitions, ” which is configured/associated with a polarization type in order to avoid a polarization loss.
- the Msg3 repetitions can also be configured by a RRC parameter or by a field in downlink control information (DCI), where the same or different polarization types may be configured with the repetitions.
- DCI downlink control information
- the configuration can define the different polarization pattern combinations associated with each repetition number, and an index for these patterns may be configured through DCI or RRC (e.g., in the Physical Uplink Shared Channel (PUSCH) scheduled by a RARUL grant).
- RRC Physical Uplink Shared Channel
- Table 1 illustrates different combinations of polarization mapping for Msg3 repetition number 4.
- all the configured Msg3 repetitions use the same polarization type that is configured for PRACH preambles, where one polarization type is configured.
- the number of Msg3 repetitions can be increased by associating two circular polarization types with each of the repetitions.
- the Msg3 repetitions can increase from 16 to 32 by using two orthogonal polarizations, LHCP and RHCP, with each repetition (and without using additional time and frequency resources).
- LHCP and RHCP orthogonal polarizations
- Such a configuration can utilize resources in an efficient manner while increasing the repetition factor often useful in an NTN due to higher path loss in the network.
- the number of Msg3 repetitions can be increased by predefining each number with a type of polarization. For example, the repetition numbers 1-16 are associated with LHCP, and the numbers 17-32 are associated with RHCP. Given the associations, the repetition would follow a similar sequence. Following the example, when configured with the number 16, all repetitions would use LHCP, However, when configured with the number 20, the first 4 repetitions would employ LHCP and RHCP, and the remaining repetitions would employ LHCP.
- each odd and even repetition number can be associated with a polarization type (e.g., odd with LHCP and even with RHCP), where the even repetition numbers utilize one time resource and repeat using two polarizations on the same time resource.
- a polarization type e.g., odd with LHCP and even with RHCP
- the even repetition numbers utilize one time resource and repeat using two polarizations on the same time resource.
- an even repetition number of 8 indicates 4 time domain occurrences (resources) by repeating Msg 3 at each time occurrence using two circular polarization types.
- An odd repetition number such as 7 would indicate 4 time domain occurrences (resources), but Msg 3 is repeated at the first 3 time occurrences using two circular polarization types and at the last time occurrence with only LHCP.
- the network can employ separate signaling to indicate that the number of configured Msg3 repetitions include, or do not include, polarizationbased repetitions.
- the signaling can include the RAR UL grant or Msg 1 configurations by using DCI or a parameter in RRC.
- the configuration can include a new higher layer parameter (e.g., “Polbasedrepeti tions”) along with higher layer parameter numberOjMsg3Repetitions to indicate whether time-based repetitions are to include additional polarization-based repetitions.
- the UE performs or applies polarization-based repetitions for Msg3 by default, such when the UE is configured to perform multiple/repeated PRACH preamble transmissions for one or multiple detected SSBs.
- the UE can employ a same polarization pattern for the Msg3 time domain repetitions as indicated for PRACH preamble transmission.
- the Msg3 time domain repetitions also employ polarization-based repetitions, such as LHCP and RHCP based repetitions.
- the configuration can include one higher layer parameter (e.g., only one parameter) to indicate the utilization of polarization- based repetitions for both Msgl and Msg3 transmissions.
- the configuration can include only one higher layer parameter to indicate the type of polarization to be used for repetitions of Msgl and Msg3.
- the UE activates or requests polarization-based Msg3 repetition when an SSB or Msg2 RSRP falls below a configured RSRP threshold value (e.g., when RSRP ⁇ RSRP threshold).
- the UE repeats the Msg3 repeated via configured polarization types for repetitions, using the polarization types configured for PRACH repetitions or specifically configured for Msg3 repetitions.
- the UE may repeat Msg3 using its polarization type capabilities.
- the parameter field “rsrp-ThresholdSSB ” in a RACH configuration IE can be employed for polarization-based repetitions.
- a synchronization signal RSRP (SS-RSRP) of an SSB is well above a rsrp-ThresholdSSB value, the UE may not apply repetitions for Msg3. However, when the value is near the threshold, the UE would apply a polarization-based repetition.
- a configuration can include or introduce a new RSRP threshold field for the four step RACH procedure that defines the use/activation/request of polarization-based repetitions.
- FIG. 3 illustrates an example of a diagram 300 that supports triggering Msg3 repetitions in the polarization domain in accordance with aspects of the present disclosure. As depicted, a threshold value for a field " srp-Th esholdPo ' 305 is set below a threshold value for a field “rsrp-ThresholdSSB” 310.
- the UE When the value falls below the field “rsrp-IhresholdPol” 305 and above the field “rsrp-ThresholdSSB ”310 the UE triggers Msg3 repetition in the polarization domain. In some cases, the new field value is set higher than the value for the field “rsrp-ThresholdSSB” 310 to trigger Msg3 repetitions.
- the UE can be configured to perform multiple/repeated MsgA preamble transmissions for one or multiple detected SSBs on one or multiple ROs by employing multiple polarizations.
- the UE may not be configured with single or multiple resources to perform MsgA PUSCH repetition in the polarization domain.
- the UE can receive the configuration through RRC signaling, such as a configuration that indicates the type of polarizations to be employed for MsgA transmission.
- the UE can apply the indicated polarization type for both MsgA PRACH preamble transmission and MsgA PUSCH transmission.
- the configuration can indicate multiple polarization types.
- the UE may determine that MsgA is to be repeated in the polarization domain using the configured time and frequency resources.
- the indication for repetition of MsgA PRACH and MsgA PUSCH can be separately configured by a field (e.g., indicating that repetition in the polarization domain is to be done or not done), while multiple polarization types may indicate a UE can select a single polarization (out of multiple polarizations) for MsgA transmission based on the capabilities of the UE.
- the UE may repeat MsgA with polarizations using the same time and frequency resources.
- the UE transmits a MsgA preamble and a MsgA PUSCH transmission in parallel using two different polarizations types at a same time, (e.g., MsgA preamble transmission is performed with LHCP while MsgA PUSCH transmission is performed with RHCP).
- MsgA preamble transmission is performed with LHCP while MsgA PUSCH transmission is performed with RHCP.
- a PUSCH occasion may overlap in time and frequency with any PRACH occasion but would differ in the polarization domain.
- a MsgA PUSCH occasion is configured in the polarization domain, where a parameter may be used to indicate that number of PUSCH occasions available in the polarization domain.
- a parameter may be used to indicate that number of PUSCH occasions available in the polarization domain.
- the number of PUSCH occasions available in the frequency domain, configured by a nrMsgA-PO-FDM parameter, are repeated in the polarization domain for each configured time instance.
- a UE such as the UE 104, can perform random access procedures that employ polarization-based repetitions for Msgl, Msg3, and/or MsgA transmissions.
- FIG. 4 illustrates an example of a block diagram 400 of a device 402 that supports polarization-based repetitions in initial access procedures in accordance with aspects of the present disclosure.
- the device 402 may be an example of a UE 104 as described herein.
- the device 402 may support wireless communication with one or more network entities 102, UEs 104, or any combination thereof.
- the device 402 may include components for bi-directional communications including components for transmitting and receiving communications, such as a processor 404, a memory 406, a transceiver 408, and an I/O controller 410. These components may be in electronic communication or otherwise coupled (e.g., operatively, communicatively, functionally, electronically, electrically) via one or more interfaces (e.g., buses).
- the processor 404, the memory 406, the transceiver 408, or various combinations thereof or various components thereof may be examples of means for performing various aspects of the present disclosure as described herein.
- the processor 404, the memory 406, the transceiver 408, or various combinations or components thereof may support a method for performing one or more of the operations described herein.
- the processor 404, the memory 406, the transceiver 408, or various combinations or components thereof may be implemented in hardware (e.g., in communications management circuitry).
- the hardware may include a processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field- programmable gate array (FPGA) or other programmable logic device, a discrete gate or transistor logic, discrete hardware components, or any combination thereof configured as or otherwise supporting a means for performing the functions described in the present disclosure.
- the processor 404 and the memory 406 coupled with the processor 404 may be configured to perform one or more of the functions described herein (e.g., executing, by the processor 404, instructions stored in the memory 406).
- the processor 404 may support wireless communication at the device 402 in accordance with examples as disclosed herein.
- the processor 404 may be configured as or otherwise support a means for receiving, from a network entity, a configuration indicating a polarization type associated with a physical random access channel (PRACH) and performing PRACH repetitions in a polarization domain associated with the indicated polarization type.
- PRACH physical random access channel
- the processor 400 may be configured as or otherwise support a means for receiving, from a network entity, a configuration that indicates polarization types associated with a repetition for an uplink physical channels transmission during an initial access procedure and transmitting the repeated uplink physical channels based on the indicated polarization types.
- the processor 404 may include an intelligent hardware device (e.g., a general- purpose processor, a DSP, a CPU, a microcontroller, an ASIC, an FPGA, a programmable logic device, a discrete gate or transistor logic component, a discrete hardware component, or any combination thereof).
- the processor 404 may be configured to operate a memory array using a memory controller.
- a memory controller may be integrated into the processor 404.
- the processor 404 may be configured to execute computer-readable instructions stored in a memory (e.g., the memory 406) to cause the device 402 to perform various functions of the present disclosure.
- the memory 406 may include random access memory (RAM) and read-only memory (ROM).
- the memory 406 may store computer-readable, computer-executable code including instructions that, when executed by the processor 404 cause the device 402 to perform various functions described herein.
- the code may be stored in a non-transitory computer-readable medium such as system memory or another type of memory.
- the code may not be directly executable by the processor 404 but may cause a computer (e.g., when compiled and executed) to perform functions described herein.
- the memory 406 may include, among other things, a basic I/O system (BIOS) which may control basic hardware or software operation such as the interaction with peripheral components or devices.
- BIOS basic I/O system
- the I/O controller 410 may manage input and output signals for the device 402.
- the I/O controller 410 may also manage peripherals not integrated into the device M02.
- the I/O controller 410 may represent a physical connection or port to an external peripheral.
- the I/O controller 410 may utilize an operating system such as iOS®, ANDROID®, MS-DOS®, MS-WINDOWS®, OS/2®, UNIX®, LINUX®, or another known operating system.
- the I/O controller 410 may be implemented as part of a processor, such as the processor M06.
- a user may interact with the device 402 via the I/O controller 410 or via hardware components controlled by the I/O controller 410.
- the device 402 may include a single antenna 412. However, in some other implementations, the device 402 may have more than one antenna 412 (i.e., multiple antennas), including multiple antenna panels or antenna arrays, which may be capable of concurrently transmitting or receiving multiple wireless transmissions.
- the transceiver 408 may communicate bi-directionally, via the one or more antennas 412, wired, or wireless links as described herein.
- the transceiver 408 may represent a wireless transceiver and may communicate bi-directionally with another wireless transceiver.
- the transceiver 408 may also include a modem to modulate the packets, to provide the modulated packets to one or more antennas 412 for transmission, and to demodulate packets received from the one or more antennas 412.
- FIG. 5 illustrates a flowchart of a method 500 that supports polarization-based repetitions in initial access procedures in accordance with aspects of the present disclosure.
- the operations of the method 500 may be implemented by a device or its components as described herein.
- the operations of the method 500 may be performed by the UE 104 as described with reference to FIGs. 1 through 4.
- the device may execute a set of instructions to control the function elements of the device to perform the described functions. Additionally, or alternatively, the device may perform aspects of the described functions using special-purpose hardware.
- the method may include receiving, from a network entity, a configuration that indicates polarization types associated with a repetition for an uplink physical channels transmission during an initial access procedure.
- the operations of 510 may be performed in accordance with examples as described herein. In some implementations, aspects of the operations of 510 may be performed by a device as described with reference to FIG. 1.
- the method may include transmitting the repeated uplink physical channels based on the indicated polarization types.
- the operations of 520 may be performed in accordance with examples as described herein. In some implementations, aspects of the operations of 520 may be performed by a device as described with reference to FIG. 1.
- a general-purpose processor may be a microprocessor, but in the alternative, the processor may be any processor, controller, microcontroller, or state machine.
- a processor may also be implemented as a combination of computing devices (e.g., a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration.
- the functions described herein may be implemented in hardware, software executed by a processor, firmware, or any combination thereof. If implemented in software executed by a processor, the functions may be stored on or transmitted over as one or more instructions or code on a computer-readable medium. Other examples and implementations are within the scope of the disclosure and appended claims. For example, due to the nature of software, functions described herein may be implemented using software executed by a processor, hardware, firmware, hardwiring, or combinations of any of these. Features implementing functions may also be physically located at various positions, including being distributed such that portions of functions are implemented at different physical locations.
- Computer-readable media includes both non-transitory computer storage media and communication media including any medium that facilitates transfer of a computer program from one place to another.
- a non-transitory storage medium may be any available medium that may be accessed by a general-purpose or special-purpose computer.
- non-transitory computer-readable media may include RAM, ROM, electrically erasable programmable ROM (EEPROM), flash memory, compact disk (CD) ROM or other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other non-transitory medium that may be used to carry or store desired program code means in the form of instructions or data structures and that may be accessed by a general-purpose or special-purpose computer, or a general-purpose or special-purpose processor.
- RAM random access memory
- ROM read only memory
- EEPROM electrically erasable programmable ROM
- CD compact disk
- magnetic disk storage or other magnetic storage devices or any other non-transitory medium that may be used to carry or store desired program code means in the form of instructions or data structures and that may be accessed by a general-purpose or special-purpose computer, or a general-purpose or special-purpose processor.
- any connection may be properly termed a computer-readable medium.
- the software is transmitted from a website, server, or other remote source using a coaxial cable, fiber optic cable, twisted pair, digital subscriber line (DSL), or wireless technologies such as infrared, radio, and microwave
- the coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave are included in the definition of computer-readable medium.
- Disk and disc include CD, laser disc, optical disc, digital versatile disc (DVD), floppy disk and Blu-ray disc where disks usually reproduce data magnetically, while discs reproduce data optically with lasers. Combinations of the above are also included within the scope of computer- readable media.
- a list of items indicates an inclusive list such that, for example, a list of at least one of A, B, or C means A or B or C or AB or AC or BC or ABC (i.e., A and B and C).
- the phrase “based on” shall not be construed as a reference to a closed set of conditions. For example, an example step that is described as “based on condition A” may be based on both a condition A and a condition B without departing from the scope of the present disclosure.
- the phrase “based on” shall be construed in the same manner as the phrase “based at least in part on.
- a “set” may include one or more elements.
- the terms “transmitting,” “receiving,” or “communicating,” when referring to a network entity, may refer to any portion of a network entity (e.g., a base station, a CU, a DU, a RU) of a RAN communicating with another device (e.g., directly or via one or more other network entities).
- a network entity e.g., a base station, a CU, a DU, a RU
- another device e.g., directly or via one or more other network entities.
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| WO2022152181A1 (en) * | 2021-01-15 | 2022-07-21 | FG Innovation Company Limited | Method of channel scheduling for narrowband internet of things in non-terrestrial network and user equipment using the same |
Non-Patent Citations (2)
| Title |
|---|
| ERICSSON: "On physical layer control procedures for NTN", vol. RAN WG1, no. Chongqing, China; 20191014 - 20191020, 5 October 2019 (2019-10-05), XP051789761, Retrieved from the Internet <URL:http://www.3gpp.org/ftp/tsg_ran/WG1_RL1/TSGR1_98b/Docs/R1-1910981.zip> [retrieved on 20191005] * |
| NOKIA ET AL: "Other aspects related to NTN operation for Rel-18", vol. RAN WG1, no. e-Meeting; 20220509 - 20220520, 29 April 2022 (2022-04-29), XP052153223, Retrieved from the Internet <URL:https://ftp.3gpp.org/tsg_ran/WG1_RL1/TSGR1_109-e/Docs/R1-2203845.zip R1-2203845.docx> [retrieved on 20220429] * |
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