EP4541101A1 - Discontinuous reception and network energy saving - Google Patents
Discontinuous reception and network energy savingInfo
- Publication number
- EP4541101A1 EP4541101A1 EP23741829.8A EP23741829A EP4541101A1 EP 4541101 A1 EP4541101 A1 EP 4541101A1 EP 23741829 A EP23741829 A EP 23741829A EP 4541101 A1 EP4541101 A1 EP 4541101A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- drx
- base station
- energy saving
- harq
- timer value
- 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
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0212—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is leader and terminal is follower
- H04W52/0216—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is leader and terminal is follower using a pre-established activity schedule, e.g. traffic indication frame
-
- 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
- H04L1/1822—Automatic repetition systems, e.g. Van Duuren systems involving configuration of automatic repeat request [ARQ] with parallel processes
-
- 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
- H04L1/1829—Arrangements specially adapted for the receiver end
- H04L1/1848—Time-out mechanisms
- H04L1/1851—Time-out mechanisms using multiple timers
-
- 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
- H04L1/1829—Arrangements specially adapted for the receiver end
- H04L1/1864—ARQ related signaling
-
- 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
- H04L1/188—Time-out mechanisms
- H04L1/1883—Time-out mechanisms using multiple timers
-
- 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
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0203—Power saving arrangements in the radio access network or backbone network of wireless communication networks
- H04W52/0206—Power saving arrangements in the radio access network or backbone network of wireless communication networks in access points, e.g. base stations
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/20—Manipulation of established connections
- H04W76/28—Discontinuous transmission [DTX]; Discontinuous reception [DRX]
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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
- H04L1/12—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
- H04L1/1887—Scheduling and prioritising arrangements
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0225—Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
- H04W52/0229—Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal where the received signal is a wanted signal
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/70—Reducing energy consumption in communication networks in wireless communication networks
Definitions
- the present invention is directed to 5G, which is the 5 th generation mobile network. It is a new global wireless standard after 1G, 2G, 3G, and 4G networks. 5G enables networks designed to connect machines, objects and devices.
- the invention is more specifically directed to systems and/or methods for enhancing existing discontinuous reception (DRX) procedures to improve control channel monitoring performance at the user equipment (UE) when the network enters or exits a network energy saving state, for example, to enhance the existing DRX procedures to improve control channel monitoring performance at the UE when the network enters or exits a network energy saving state.
- DRX discontinuous reception
- a method of network energy saving includes steps of receiving, by a user equipment (UE): first discontinuous reception (DRX) configuration parameters associated with a non-energy saving state of a base station or a non-energy saving state of one or more cells provided by the base station; and second DRX configuration parameters associated with an energy saving state of the base station or an energy saving state of one or more cells provided by the base station; monitoring a control channel based on the first DRX configuration parameters while the base station or the one or more cells provided by me base station are m me non-energy saving state; and monitoring a control channel based on the second DRX configuration parameters while the base station or the one or more cells provided by the base station are in the energy saving state.
- DRX discontinuous reception
- first discontinuous reception (DRX) configuration parameters can be applicable to the one or more first cells; and the second DRX configuration parameters can be applicable to the one or more second cells.
- the first discontinuous reception (DRX) configuration parameters may comprise a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value; and the second DRX configuration parameters may comprise a second HARQ RTT timer value.
- the first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value and the second HARQ RTT timer value can be for a HARQ process.
- the first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value and the second HARQ RTT timer value can be for downlink HARQ RTT timers.
- the method also can include starting a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer with the first HARQ RTT timer value in response to reception of a first downlink transport block (TB) while base station or the one or more cells provided by the base station are in the non-energy saving state; and starting a second HARQ RTT timer with the second HARQ RTT timer value in response to reception of a second downlink TB while base station or the one or more cells provided by the base station are in the energy saving state.
- the first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value and the second HARQ RTT timer value can be for uplink HARQ RTT timers.
- Starting a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer with the first HARQ RTT timer value may be implemented in response to transmission of a first uplink transport block (TB) while the base station or the one or more cells provided by the base station are in the non-energy saving state; and starting a second HARQ RTT timer witn tne second HARQ RTT timer value may De implemented in response to transmission of a second uplink TB while base station or the one or more cells provided by the base station are in the energy saving state.
- HARQ hybrid automatic repeat request
- RTT round trip time
- the method can also include that the first discontinuous reception (DRX) configuration parameters comprise a first DRX retransmission timer value; and the second DRX configuration parameters comprise a second DRX retransmission timer value.
- the first discontinuous reception (DRX) retransmission timer value and the second DRX retransmission timer value can be for hybrid automatic repeat request HARQ processes.
- the first discontinuous reception (DRX) retransmission timer value and the second DRX retransmission timer value can be for downlink DRX retransmission timers.
- the method can also include starting the first discontinuous reception (DRX) retransmission timer in response to expiry of a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer while base station or the one or more cells provided by the base station are in the non-energy saving state; and starting the second DRX retransmission timer in response to expiry of a second HARQ RTT timer while base station or the one or more cells provided by the base station are in the energy saving state.
- HARQ hybrid automatic repeat request
- RTT round trip time
- the user equipment (UE) can be in a discontinuous reception (DRX) active time period while a discontinuous reception (DRX) retransmission timer is running.
- the first discontinuous reception (DRX) retransmission timer value and the second DRX retransmission timer value can be for uplink DRX retransmission timers.
- the method also can include starting the first discontinuous reception (DRX) retransmission timer with the first DRX retransmission timer value in response to expiry of a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer while base station or the one or more cells provided by the base station are in the non-energy saving state; and starting the second DRX retransmission timer with the second DRX retransmission timer value in response to expiry of a second HARQ RTT timer while the base station or the one or more cells provided by the base station are m tne energy saving state, rne tirst discontinuous reception (DRX) configuration parameters may comprise a first DRX inactivity timer value; and the second DRX configuration parameters may comprise a second DRX inactivity timer value.
- HARQ hybrid automatic repeat request
- RTT round trip time
- the method also can include starting a first discontinuous reception (DRX) inactivity timer with the first DRX inactivity timer value in response to receiving a scheduling downlink control information (DCI) while base station or the one or more cells provided by the base station are in the non-energy saving state; and starting a second DRX inactivity timer with the second DRX inactivity timer value in response to receiving a scheduling downlink control information (DCI) while base station or the one or more cells provided by the base station are in the energy saving state.
- the user equipment (UE) may be in a discontinuous reception (DRX) active time while the discontinuous reception (DRX) inactivity timer is running.
- the first discontinuous reception (DRX) configuration parameters may comprise a first DRX On Duration timer value; and the second DRX configuration parameters may comprise a second DRX On Duration timer value.
- the user equipment (UE) may be in a discontinuous reception (DRX) active time period while a discontinuous reception (DRX) On Duration timer is running.
- the first discontinuous reception (DRX) configuration parameters may comprise a first DRX slot offset; and the second DRX configuration parameters may comprise a second DRX slot offset.
- a discontinuous reception (DRX) slot offset may comprise a delay before starting a DRX On Duration timer.
- the method also may include receiving an indication that the base station or the one or more cells provided by the base station are in the energy saving state.
- the indication may indicate that the base station or the one or more cells provided by the base station have entered the energy saving state.
- the indication may be based on a radio resource control (RRC) message.
- the indication may be based on a medium access control (MAC) control element (CE).
- the indication may be based on a downlink control information (DCI).
- the indication may indicate at least one of tne second discontinuous reception (DRX) configuration parameters is associated with the energy saving state.
- the indication may indicate a timing by which the base station or the one or more cells provided by the base station enter into the energy saving state.
- the monitoring of the control channel while the base station or the one or more cells provided by the base station is in the nonenergy saving state may be for one or more first radio network temporary identifiers (RNTIs).
- the monitoring of the control channel while the base station or the one or more cells provided by the base station is in the energy saving state may be for one or more second radio network temporary identifiers (RNTIs) .
- At least one radio network temporary identifier (RNTI) of the one or more first and second RNTIs may not be monitored while the base station or the one or more cells provided by the base station is in the energy saving state.
- At least one signal or at least one channel or at least one message may be transmitted or received with a larger periodicity and less frequently while the base station or the one or more cells provided by the base station are in the energy saving state.
- FIG. 1 shows an example of a system of mobile communications according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 2A and FIG. 2B show examples of radio protocol stacks for user plane and control plane, respectively, according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 3A, FIG. 3B and FIG. 3C show example mappings between logical channels and transport channels in downlink, uplink and sidelink, respectively, according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 4A, FIG. 4B and FIG. 4C snow example mappings between transport channels and physical channels in downlink, uplink and sidelink, respectively, according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 5A, FIG. 5B, FIG. 5C and FIG. 5D show examples of radio protocol stacks for NR sidelink communication according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 6 shows example physical signals in downlink, uplink and sidelink according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 7 shows examples of Radio Resource Control (RRC) states and transitioning between different RRC states according to some aspects of some of various exemplary embodiments of the present disclosure.
- RRC Radio Resource Control
- FIG. 8 shows example frame structure and physical resources according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 9 shows example component carrier configurations in different carrier aggregation scenarios according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 10 shows example bandwidth part configuration and switching according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 11 shows example four-step contention-based and contention-free random access processes according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 12 shows example two-step contention-based and contention-free random access processes according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 13 shows example time and frequency structure of Synchronization Signal and Physical Broadcast Channel (PBCH) Block (SSB) according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 14 snows example SSB burst transmissions according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 15 shows example components of a user equipment and a base station for transmission and/or reception according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 16 shows an example process according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 17 shows an example process according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 18 shows an example process according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 1 shows an example of a system of mobile communications 100 according to some aspects of some of various exemplary embodiments of the present disclosure.
- the system of mobile communication 100 may be operated by a wireless communications system operator such as a Mobile Network Operator (MNO), a private network operator, a Multiple System Operator (MSO), an Internet of Things (IOT) network operator, etc., and may offer services such as voice, data (e.g., wireless Internet access), messaging, vehicular communications services such as Vehicle to Everything (V2X) communications services, safety services, mission critical service, services in residential, commercial or industrial settings such as loT, industrial IOT (HOT), etc.
- MNO Mobile Network Operator
- MSO Multiple System Operator
- IOT Internet of Things
- the system of mobile communications 100 may enable various types of applications with different requirements in terms of latency, reliability, throughput, etc.
- Example supported applications include enhanced Mobile Broadband (eMBB), Ultra- Reliable Low- Latency Communications (URLLC), and massive Machine Type Communications (mMTC).
- eMBB may support stable connections with high peak data rates, as well as moderate rates for cell-edge users
- URLLC may support application witn strict requirements m terms of latency and reliability and moderate requirements in terms of data rate.
- Example mMTC application includes a network of a massive number of loT devices, which are only sporadically active and send small data payloads.
- the system of mobile communications 100 may include a Radio Access Network (RAN) portion and a core network portion.
- RAN Radio Access Network
- FIG. 1 illustrates a Next Generation RAN (NG-RAN) 105 and a 5G Core Network (5GC) 110 as examples of the RAN and core network, respectively.
- NG-RAN Next Generation RAN
- 5GC 5G Core Network
- Other examples of RAN and core network may be implemented without departing from the scope of this disclosure.
- Other examples of RAN include Evolved Universal Terrestrial Radio Access Network (EUTRAN), Universal Terrestrial Radio Access Network (UTRAN), etc.
- Other examples of core network include Evolved Packet Core (EPC), UMTS Core Network (UCN), etc.
- EPC Evolved Packet Core
- UCN UMTS Core Network
- the RAN implements a Radio Access Technology (RAT) and resides between User Equipments (UEs) 125 and the core network.
- RAT Radio Access Technology
- RATs examples include New Radio (NR), Long Term Evolution (LTE) also known as Evolved Universal Terrestrial Radio Access (EUTRA), Universal Mobile Telecommunication System (UMTS), etc.
- NR New Radio
- LTE Long Term Evolution
- EUTRA Evolved Universal Terrestrial Radio Access
- UMTS Universal Mobile Telecommunication System
- the RAT of the example system of mobile communications 100 may be NR.
- the core network resides between the RAN and one or more external networks (e.g., data networks) and is responsible for functions such as mobility management, authentication, session management, setting up bearers and application of different Quality of Services (QoSs).
- QoSs Quality of Services
- the functional layer between the UE 125 and the RAN may be referred to as Access Stratum (AS) and the functional layer between the UE 125 and the core network (e.g., the 5GC 110) may be referred to as Non-access Stratum (NAS).
- AS Access Stratum
- NAS Non-access Stratum
- the UEs 125 may include wireless transmission and reception means for communications with one or more nodes in the RAN, one or more relay nodes, or one or more other UEs, etc.
- UEs include, but are not limited to, smartphones, tablets, laptops, computers, wireless transmission and/or reception units in a vehicle, V2X or Vehicle to Vehicle (V2V) devices, wireless sensors, loT devices, IIOT devices, etc.
- Oth er names may be used lor UEs such as a Mobile Station (MS), terminal equipment, terminal node, client device, mobile device, etc.
- the RAN may include nodes (e.g., base stations) for communications with the UEs.
- the NG-RAN 105 of the system of mobile communications 100 may comprise nodes for communications with the UEs 125.
- Different names for the RAN nodes may be used, for example depending on the RAT used for the RAN.
- a RAN node may be referred to as Node B (NB) in a RAN that uses the UMTS RAT.
- a RAN node may be referred to as an evolved Node B (eNB) in a RAN that uses LTE/EUTRA RAT.
- eNB evolved Node B
- the nodes of an NG-RAN 105 may be either a next generation Node B (gNB) 115 or a next generation evolved Node B (ng-eNB) 120.
- gNB next generation Node B
- ng-eNB next generation evolved Node B
- the gNB 115 may provide NR user plane and control plane protocol terminations towards the UE 125.
- the ng-eNB 120 may provide E-UTRA user plane and control plane protocol terminations towards the UE 125.
- An interface between the gNB 115 and the UE 125 or between the ng-eNB 120 and the UE 125 may be referred to as a Uu interface.
- the Uu interface may be established with a user plane protocol stack and a control plane protocol stack.
- the direction from the base station (e.g., the gNB 115 or the ng-eNB 120) to the UE 125 may be referred to as downlink and the direction from the UE 125 to the base station (e.g., gNB 115 or ng-eNB 120) may be referred to as uplink.
- the gNBs 115 and ng-eNBs 120 may be interconnected with each other by means of an Xn interface.
- the Xn interface may comprise an Xn User plane (Xn-U) interface and an Xn Control plane (Xn-C) interface.
- the transport network layer of the Xn-U interface may be built on Internet Protocol (IP) transport and GPRS Tunneling Protocol (GTP) may be used on top of User Datagram Protocol (UDP)/IP to carry the user plane protocol data units (PDUs).
- IP Internet Protocol
- GTP GPRS Tunneling Protocol
- UDP User Datagram Protocol
- PDUs user plane protocol data units
- Xn-U may provide non-guaranteed delivery of user plane PDUs and may support data lorwarclmg and iiow control, rne transport network layer oi the Xn-C interface may be built on Stream Control Transport Protocol (SCTP) on top of IP.
- SCTP Stream Control Transport Protocol
- the application layer signaling protocol may be referred to as XnAP (Xn Application Protocol) .
- the SCTP layer may provide the guaranteed delivery of application layer messages.
- point-to-point transmission may be used to deliver the signaling PDUs.
- the Xn-C interface may support Xn interface management, UE mobility management, including context transfer and RAN paging, and dual connectivity.
- the gNBs 115 and ng-eNBs 120 may also be connected to the 5GC 110 by means of the NG interfaces, more specifically to an Access and Mobility Management Function (AMF) 130 of the 5GC 110 by means of the NG-C interface and to a User Plane Function (UPF) 135 of the 5GC 110 by means of the NG-U interface.
- AMF Access and Mobility Management Function
- UPF User Plane Function
- the transport network layer of the NG-U interface may be built on IP transport and GTP protocol may be used on top of UDP/IP to carry the user plane PDUs between the NG-RAN node (e.g., gNB 115 or ng-eNB 120 ) and the UPF 135.
- NG-U may provide non-guaranteed delivery of user plane PDUs between the NG-RAN node and the UPF.
- the transport network layer of the NG-C interface may be built on IP transport. For the reliable transport of signaling messages, SCTP may be added on top of IP.
- the application layer signaling protocol may be referred to as NGAP (NG Application Protocol).
- the SCTP layer may provide guaranteed delivery of application layer messages.
- IP layer point-to-point transmission may be used to deliver the signaling PDUs.
- the NG-C interface may provide the following functions: NG interface management; UE context management; UE mobility management; transport of NAS messages; paging; PDU Session Management; configuration transfer; and warning message transmission.
- the gNB 115 or the ng-eNB 120 may host one or more of the following functions: Radio Resource Management functions such as Radio Bearer Control, Radio Admission Control, Connection Mobility Control, Dynamic allocation of resources to UEs in both uplink and downlink (e.g., scheduling); IP and Ethernet header compression, encryption and integrity protection of data; selection of an AMF at UE attacnment wnen no routing to an AMF can be determined from the information provided by the UE; Routing of User Plane data towards UPF(s); Routing of Control Plane information towards AMF;
- Radio Resource Management functions such as Radio Bearer Control, Radio Admission Control, Connection Mobility Control, Dynamic allocation of resources to UEs in both uplink and downlink (e.g., scheduling); IP and Ethernet header compression, encryption and integrity protection of data; selection of an AMF at UE attacnment wnen no routing to an AMF can be determined from the information provided by the UE; Routing of User Plane data towards UPF(s); Routing of Control Plane information towards A
- Connection setup and release Scheduling and transmission of paging messages; Scheduling and transmission of system broadcast information (e.g., originated from the AMF); Measurement and measurement reporting configuration for mobility and scheduling; Transport level packet marking in the uplink; Session Management; Support of Network Slicing; QoS Flow management and mapping to data radio bearers; Support of UEs in RRC Inactive state; Distribution function for NAS messages; Radio access network sharing; Dual Connectivity; Tight interworking between NR and E-UTRA; and Maintaining security and radio configuration for User Plane 5G system (5GS) Cellular loT (CIoT) Optimization.
- 5GS User Plane 5G system
- CGI Cellular loT
- the AMF 130 may host one or more of the following functions: NAS signaling termination; NAS signaling security; AS Security control; Inter CN node signaling for mobility between 3GPP access networks; Idle mode UE Reachability (including control and execution of paging retransmission); Registration Area management; Support of intra-system and inter- system mobility; Access Authentication; Access Authorization including check of roaming rights; Mobility management control (subscription and policies); Support of Network Slicing; Session Management Function (SMF) selection; Selection of 5GS CIoT optimizations.
- NAS signaling termination NAS signaling security
- AS Security control Inter CN node signaling for mobility between 3GPP access networks
- Idle mode UE Reachability including control and execution of paging retransmission
- Registration Area management Support of intra-system and inter- system mobility
- Access Authentication Access Authorization including check of roaming rights
- Mobility management control subscription and policies
- Support of Network Slicing Session Management Function (SMF) selection; Selection of 5GS CI
- the UPF 135 may host one or more of the following functions: Anchor point for Intra- /Inter-RAT mobility (when applicable); External PDU session point of interconnect to Data Network; Packet routing & forwarding; Packet inspection and User plane part of Policy rule enforcement; Traffic usage reporting; Uplink classifier to support routing traffic flows to a data network; Branching point to support multi-homed PDU session; QoS handling for user plane, e.g. packet filtering, gating, UL/DL rate enforcement; Uplink Traffic verification (Service Data Flow (SDF) to QoS flow mapping); Downlink packet buffering and downlink data notification triggering.
- Anchor point for Intra- /Inter-RAT mobility when applicable
- External PDU session point of interconnect to Data Network Packet routing & forwarding
- Packet inspection and User plane part of Policy rule enforcement Traffic usage reporting
- Uplink classifier to support routing traffic flows to a data network
- Branching point to support multi-homed PDU session
- QoS handling for user plane e.
- the NG-RAN 105 may support tne PC5 interlace between two UEs 125 (e.g., UE 125A and UE125B).
- the direction of communications between two UEs e.g., from UE 125A to UE 125B or vice versa
- sidelink Sidelink transmission and reception over the PC5 interface may be supported when the UE 125 is inside NG-RAN 105 coverage, irrespective of which RRC state the UE is in, and when the UE 125 is outside NG-RAN 105 coverage.
- Support of V2X services via the PC5 interface may be provided by NR sidelink communication and/or V2X sidelink communication.
- PC5-S signaling may be used for unicast link establishment with Direct Communication Request/ Accept message.
- a UE may self-assign its source Layer-2 ID for the PC5 unicast link for example based on the V2X service type.
- the UE may send its source Layer-2 ID for the PC5 unicast link to the peer UE, e.g., the UE for which a destination ID has been received from the upper layers.
- a pair of source Layer-2 ID and destination Layer-2 ID may uniquely identify a unicast link.
- the receiving UE may verify that the said destination ID belongs to it and may accept the Unicast link establishment request from the source UE.
- PC5-RRC procedure on the Access Stratum may be invoked for the purpose of UE sidelink context establishment as well as for AS layer configurations, capability exchange etc.
- PC5-RRC signaling may enable exchanging UE capabilities and AS layer configurations such as Sidelink Radio Bearer configurations between pair of UEs for which a PC5 unicast link is established.
- NR sidelink communication may support one of three types of transmission modes (e.g., Unicast transmission, Groupcast transmission, and Broadcast transmission) for a pair of a Source Layer-2 ID and a Destination Layer-2 ID in the AS.
- the Unicast transmission mode may be characterized by: Support of one PC5-RRC connection between peer UEs for the pair; Transmission and reception of control information and user traffic between peer UEs in sidelink; Support of sidelink HARQ feedback; Support of sidelink transmit power control; blipport ot RLC Acknowledged Mode (AM); and Detection of radio link failure for the PC5-RRC connection.
- the Groupcast transmission may be characterized by: Transmission and reception of user traffic among UEs belonging to a group in sidelink; and Support of sidelink HARQ feedback.
- the Broadcast transmission may be characterized by: Transmission and reception of user traffic among UEs in sidelink.
- a Source Layer-2 ID, a Destination Layer-2 ID and a PC5 Link Identifier may be used for NR sidelink communication.
- the Source Layer-2 ID may be a link-layer identity that identifies a device or a group of devices that are recipients of sidelink communication frames.
- the Destination Layer-2 ID may be a link-layer identity that identifies a device that originates sidelink communication frames.
- the Source Layer-2 ID and the Destination Layer-2 ID may be assigned by a management function in the Core Network.
- the Source Layer-2 ID may identify the sender of the data in NR sidelink communication.
- the Source Layer-2 ID may be 24 bits long and may be split in the MAC layer into two bit strings: One bit string may be the LSB part (8 bits) of Source Layer-2 ID and forwarded to physical layer of the sender. This may identify the source of the intended data in sidelink control information and may be used for filtering of packets at the physical layer of the receiver; and the Second bit string may be the MSB part (16 bits) of the Source Layer-2 ID and may be carried within the Medium Access Control (MAC) header. This may be used for filtering of packets at the MAC layer of the receiver.
- the Destination Layer-2 ID may identify the target of the data in NR sidelink communication.
- the Destination Layer-2 ID may be 24 bits long and may be split in the MAC layer into two bit strings: One bit string may be the LSB part (16 bits) of Destination Layer-2 ID and forwarded to physical layer of the sender. This may identify the target of the intended data in sidelink control information and may be used for filtering of packets at the physical layer of the receiver; and the Second bit string may be the MSB part (8 bits) of the Destination Layer-2 ID and may be carried within the MAC header. This may be used for filtering of packets at the MAC layer of tne receiver, me PC5 Link Identifier may uniquely identity tne PC5 unicast link in a UE for the lifetime of the PC5 unicast link. The PC5 Link Identifier may be used to indicate the PC5 unicast link whose sidelink Radio Link failure (RLF) declaration was made and PC5-RRC connection was released.
- RLF Radio Link failure
- FIG. 2A and FIG. 2B show examples of radio protocol stacks for user plane and control plane, respectively, according to some aspects of some of various exemplary embodiments of the present disclosure.
- the protocol stack for the user plane of the Uu interface includes Service Data Adaptation Protocol (SDAP) 201 and SDAP 211, Packet Data Convergence Protocol (PDCP) 202 and PDCP 212, Radio Link Control (RLC) 203 and RLC 213, MAC 204 and MAC 214 sublayers of layer 2 and Physical (PHY) 205 and PHY 215 layer (layer 1 also referred to as LI).
- SDAP Service Data Adaptation Protocol
- PDCP Packet Data Convergence Protocol
- RLC Radio Link Control
- MAC 204 and MAC 214 sublayers of layer 2 and Physical (PHY) 205 and PHY 215 layer
- the PHY 205 and PHY 215 offer transport channels 244 to the MAC 204 and MAC 214 sublayer.
- the MAC 204 and MAC 214 sublayer offer logical channels 243 to the RLC 203 and RLC 213 sublayer.
- the RLC 203 and RLC 213 sublayer offer RLC channels 242 to the PDCP 202 and PCP 212 sublayer.
- the PDCP 202 and PDCP 212 sublayer offer radio bearers 241 to the SDAP 201 and SDAP 211 sublayer. Radio bearers may be categorized into two groups: Data Radio Bearers (DRBs) for user plane data and Signaling Radio Bearers (SRBs) for control plane data.
- DRBs Data Radio Bearers
- SRBs Signaling Radio Bearers
- the SDAP 201 and SDAP 211 sublayer offers QoS flows 240 to 5GC.
- the main services and functions of the MAC 204 or MAC 214 sublayer include: mapping between logical channels and transport channels; Multiplexing/ demultiplexing of MAC Service Data Units (SDUs) belonging to one or different logical channels into /from Transport Blocks (TB) delivered to/from the physical layer on transport channels; Scheduling information reporting; Error correction through Hybrid Automatic Repeat Request (HARQ) (one HARQ entity per cell in case of carrier aggregation (CA)); Priority handling between UEs by means of dynamic scheduling; Priority handling between logical ch annels of one UE by means of Logical cnannei Prioritization (LCP); Priority handling between overlapping resources of one UE; and Padding.
- a single MAC entity may support multiple numerologies, transmission timings and cells. Mapping restrictions in logical channel prioritization control which numerology(ies), cell(s), and transmission timing(s) a logical channel may use.
- the HARQ functionality may ensure delivery between peer entities at Layer 1.
- a single HARQ process may support one TB when the physical layer is not configured for downlink/uplink spatial multiplexing, and when the physical layer is configured for downlink/uplink spatial multiplexing, a single HARQ process may support one or multiple TBs.
- the RLC 203 or RLC 213 sublayer may support three transmission modes: Transparent Mode (TM); Unacknowledged Mode (UM); and Acknowledged Mode (AM).
- TM Transparent Mode
- UM Unacknowledged Mode
- AM Acknowledged Mode
- the RLC configuration may be per logical channel with no dependency on numerologies and/or transmission durations, and Automatic Repeat Request (ARQ) may operate on any of the numerologies and/or transmission durations the logical channel is configured with.
- ARQ Automatic Repeat Request
- the main services and functions of the RLC 203 or RLC 213 sublayer depend on the transmission mode (e.g., TM, UM or AM) and may include: Transfer of upper layer PDUs; Sequence numbering independent of the one in PDCP (UM and AM); Error Correction through ARQ (AM only); Segmentation (AM and UM) and re-segmentation (AM only) of RLC SDUs; Reassembly of SDU (AM and UM); Duplicate Detection (AM only); RLC SDU discard (AM and UM); RLC re-establishment; and Protocol error detection (AM only).
- TM Transmission Mode
- AM Transmission Mode
- the automatic repeat request within the RLC 203 or RLC 213 sublayer may have the following characteristics: ARQ retransmits RLC SDUs or RLC SDU segments based on RLC status reports; Polling for RLC status report may be used when needed by RLC; RLC receiver may also trigger RLC status report after detecting a missing RLC SDU or RLC SDU segment.
- the main services and functions of the PDCP 202 or PDCP 212 sublayer may include: Transfer of data (user plane or control plane); Maintenance of PDCP Sequence Numbers (SNs); Header compression and decompression using tne Robust Header compression (ROHC) protocol; Header compression and decompression using EHC protocol; Ciphering and deciphering; Integrity protection and integrity verification; Timer based SDU discard; Routing for split bearers; Duplication; Reordering and in-order delivery; Out-of-order delivery; and Duplicate discarding.
- Transfer of data user plane or control plane
- SNs PDCP Sequence Numbers
- ROHC Robust Header compression
- EHC EHC protocol
- Ciphering and deciphering Integrity protection and integrity verification
- Timer based SDU discard Routing for split bearers; Duplication; Reordering and in-order delivery; Out-of-order delivery; and Duplicate discarding.
- the main services and functions of SDAP 201 or SDAP 211 include: Mapping between a QoS flow and a data radio bearer; and Marking QoS Flow ID (QFI) in both downlink and uplink packets.
- QFI QoS Flow ID
- a single protocol entity of SDAP may be configured for each individual PDU session.
- the protocol stack of the control plane of the Uu interface (between the UE 125 and the gNB 115) includes PHY layer (layer 1), and MAC, RLC and PDCP sublayers of layer 2 as described above and in addition, the RRC 206 sublayer and RRC 216 sublayer.
- the main services and functions of the RRC 206 sublayer and the RRC 216 sublayer over the Uu interface include: Broadcast of System Information related to AS and NAS;
- the NAS 207 and NAS 227 layer is a control protocol (terminated in AMF on the network side) that performs the functions such as authentication, mobility management, security control, etc.
- the sidelink specific services and functions of the RRC sublayer over the Uu interface include: Configuration of sidelink resource allocation via system information or dedicated signaling; Reporting of UE sidelink information; Measurement configuration and reporting related to sidefmk; and Reporting of UE assistance information for SL traffic pattern(s) .
- FIG. 3A, FIG. 3B and FIG. 3C show example mappings between logical channels and transport channels in downlink, uplink and sidelink, respectively, according to some aspects of some of various exemplary embodiments of the present disclosure.
- Different kinds of data transfer services may be offered by MAC.
- Each logical channel type may be defined by what type of information is transferred.
- Logical channels may be classified into two groups: Control Channels and Traffic Channels. Control channels may be used for the transfer of control plane information only.
- the Broadcast Control Channel (BCCH) is a downlink channel for broadcasting system control information.
- the Paging Control Channel (PCCH) is a downlink channel that carries paging messages.
- the Common Control Channel (CCCH) is channel for transmitting control information between UEs and network.
- BCCH Broadcast Control Channel
- PCCH Paging Control Channel
- CCCH Common Control Channel
- the Dedicated Control Channel is a point-to-point bidirectional channel that transmits dedicated control information between a UE and the network and may be used by UEs having an RRC connection. Traffic channels may be used for the transfer of user plane information only.
- the Dedicated Traffic Channel (DTCH) is a point-to-point channel, dedicated to one UE, for the transfer of user information.
- a DTCH may exist in both uplink and downlink.
- Sidelink Control Channel (SCCH) is a sidelink channel for transmitting control information (e.g., PC5-RRC and PC5-S messages) from one UE to other UE(s).
- SBCCH Sidelink Broadcast Control Channel
- the downlink transport channel types include Broadcast Channel (BCH), Downlink Shared Channel (DL-SCH), and Paging Channel (PCH).
- BCH may be characterized by: fixed, pre-defined transport format; and requirement to be broadcast in the entire coverage area of the cell, either as a single message or by beamforming different BCH instances
- the DL-SCH may be characterized by: support for HARQ; support for dynamic link adaptation by varying the modulation, coding and transmit power; possibility to be broadcast in the entire cell; possibility to use beamforming; support for both dynamic and semi-static resource allocation; and the support for UE Discontinuous Reception (DRX) to enable UE power saving.
- DRX Discontinuous Reception
- the DL-SCH may be characterized by: support for HARQ; support for dynamic link adaptation by vaiying the modulation, coding and transmit power; possibility to be broadcast in the entire cell; possibility to use beamforming; support for both dynamic and semi-static resource allocation; support for UE discontinuous reception (DRX) to enable UE power saving.
- the PCH may be characterized by: support for UE discontinuous reception (DRX) to enable UE power saving (DRX cycle is indicated by the network to the UE); requirement to be broadcast in the entire coverage area of the cell, either as a single message or by beamforming different BCH instances; mapped to physical resources which can be used dynamically also for traffic /other control channels.
- BCCH may be mapped to BCH
- BCCH may be mapped to DL-SCH
- PCCH may be mapped to PCH
- CCCH may be mapped to DL-SCH
- DCCH may be mapped to DL-SCH
- DTCH may be mapped to DL-SCH.
- the uplink transport channel types include Uplink Shared Channel (UL- SCH) and Random Access Channel(s) (RACH).
- UL-SCH may be characterized by possibility to use beamforming; support for dynamic link adaptation by vaiying the transmit power and potentially modulation and coding; support for HARQ; support for both dynamic and semi- static resource allocation.
- RACH may be characterized by limited control information; and collision risk.
- CCCH may be mapped to UL-SCH
- DCCH may be mapped to UL- SCH
- DTCH may be mapped to UL-SCH.
- the sidelink transport chiannel types include: Sideline broadcast channel (SL-BCH) and Sidelink shared channel (SL-SCH) .
- the SL-BCH may be characterized by pre-defined transport format.
- the SL-SCH may be characterized by support for unicast transmission, groupcast transmission and broadcast transmission; support for both UE autonomous resource selection and scheduled resource allocation by NG- RAN; support for both dynamic and semi-static resource allocation when UE is allocated resources by the NG-RAN; support for HARQ; and support for dynamic link adaptation by varying the transmit power, modulation and coding.
- SCCH may be mapped to SL-SCH
- STCH may be mapped to SL-SCH
- SBCCH may be mapped to SL-BCH.
- FIG. 4A, FIG. 4B and FIG. 4C show example mappings between transport channels and physical channels in downlink, uplink and sidelink, respectively, according to some aspects of some of various exemplaty embodiments of the present disclosure.
- the physical channels in downlink include Physical Downlink Shared Channel (PDSCH), Physical Downlink Control Channel (PDCCH) and Physical Broadcast Channel (PBCH).
- PDSCH Physical Downlink Shared Channel
- PDCCH Physical Downlink Control Channel
- PBCH Physical Broadcast Channel
- the PCH and DL-SCH transport channels are mapped to the PDSCH.
- the BCH transport channel is mapped to the PBCH.
- a transport channel is not mapped to the PDCCH but Downlink Control Information (DCI) is transmitted via the PDCCH.
- DCI Downlink Control Information
- the physical channels in the uplink include Physical Uplink Shared Channel (PUSCH), Physical Uplink Control Channel (PUCCH) and Physical Random Access Channel (PRACH).
- PUSCH Physical Uplink Shared Channel
- PUCCH Physical Uplink Control Channel
- PRACH Physical Random Access Channel
- the UL-SCH transport channel may be mapped to the PUSCH and the RACH transport channel may be mapped to the PRACH.
- a transport channel is not mapped to the PUCCH but Uplink Control Information (UCI) is transmitted via the PUCCH.
- UCI Uplink Control Information
- the physical channels in the sidelink include Physical Sidelink Shared Channel (PSSCH), Physical Sidelink Control Channel (PSCCH), Physical Sidelink Feedback Channel (PSFCH) and Physical Sidelink Broadcast Channel (PSBCH).
- the Physical Sidelink Control Channel (PSCCH) may indicate resource and other transmission parameters used by a UE for PSSCH.
- the Physical Sidelink Shared Channel (PSSCH) may transmit the TBs of data themselves, and control information for HARQ procedures and CSI feedback triggers, etc. At least 6 OFDM symbols within a slot may be used for PSSCH transmission.
- Physical Sidelink Feedback Channel (PSFCH) may carry the HARQ feedback over the sidelink from a UE which is an intended recipient of a PSSCH transmission to the UE which performed the transmission.
- PSFCH sequence may be transmitted in one PRB repeated over two OFDM symbols near the end of the sidelink resource in a slot.
- the SL-SCH transport channel may be mapped to the PSSCH.
- the SL-BCH may be mapped to PSBCH. No transport channel is mapped to the PSFCH but Sidelink Feedback Control Information (SFCI) may be mapped to the PSFCH. No transport channel is mapped to PSCCH but Sidelink Control Information (SCI) may mapped to the PSCCH.
- SFCI Sidelink Feedback Control Information
- SCI Sidelink Control Information
- FIG. 5A, FIG. 5B, FIG. 5C and FIG. 5D show examples of radio protocol stacks for NR sidelink communication according to some aspects of some of various exemplary embodiments of the present disclosure.
- the AS protocol stack for user plane in the PC5 interface i.e., for STCH
- the AS protocol stack for user plane in the PC5 interface may consist of SDAP, PDCP, RLC and MAC sublayers, and the physical layer.
- the protocol stack of user plane is shown in FIG. 5A.
- the AS protocol stack for SBCCH in the PC5 interface may consist of RRC, RLC, MAC sublayers, and the physical layer as shown below in FIG. 5B.
- PC5-S is located on top of PDCP, RLC and MAC sublayers, and the physical layer in the control plane protocol stack for SCCH for PC5-S, as shown in FIG. 5C.
- the AS protocol stack for the control plane for SCCH for RRC in the PC5 interface consists of RRC, PDCP, RLC and MAC sublayers, and the physical layer.
- the protocol stack of control plane for SCCH for RRC is shown in FIG. 5D.
- the Sidelink Radio Bearers may be categorized into two groups: Sidelink Data Radio Bearers (SL DRB) for user plane data and Sidelink Signaling Radio Bearers (SL SRB) for control plane data. Separate SL SRBs using different SCCHs may be configured tor PC5-RRC and PC5-S signaling, respectively.
- the MAC sublayer may provide the following services and functions over the PC5 interface: Radio resource selection; Packet filtering; Priority handling between uplink and sidelink transmissions for a given UE; and Sidelink CSI reporting.
- Radio resource selection With logical channel prioritization restrictions in MAC, only sidelink logical channels belonging to the same destination may be multiplexed into a MAC PDU for every unicast, groupcast and broadcast transmission which may be associated to the destination.
- a SL-SCH MAC header including portions of both Source Layer-2 ID and a Destination Layer-2 ID may be added to a MAC PDU.
- the Logical Channel Identifier (LCID) included within a MAC subheader may uniquely identify a logical channel within the scope of the Source Layer-2 ID and Destination Layer-2 ID combination.
- LCID Logical Channel Identifier
- RLC Unacknowledged Mode UM
- AM Acknowledged Mode
- UM only unidirectional transmission may be supported for groupcast and broadcast.
- the services and functions of the PDCP sublayer for the Uu interface may be supported for sidelink with some restrictions: Out-of-order delivery may be supported only for unicast transmission; and Duplication may not be supported over the PC5 interface.
- the SDAP sublayer may provide the following service and function over the PC5 interface: Mapping between a QoS flow and a sidelink data radio bearer. There may be one SDAP entity per destination for one of unicast, groupcast and broadcast which is associated to the destination.
- the RRC sublayer may provide the following services and functions over the PC5 interface: Transfer of a PC5-RRC message between peer UEs; Maintenance and release of a PC5-RRC connection between two UEs; and Detection of sidelink radio link failure for a PC5-RRC connection based on indication from MAC or RLC.
- a PC5-RRC connection may be a logical connection between two UEs tor a pair ot Source and Destination Layer- 2 IDS which may be considered to be established after a corresponding PC5 unicast link is established. There may be one-to-one correspondence between the PC5-RRC connection and the PC5 unicast link.
- a UE may have multiple PC5- RRC connections with one or more UEs for different pairs of Source and Destination Layer-2 IDs. Separate PC5-RRC procedures and messages may be used for a UE to transfer UE capability and sidelink configuration including SL-DRB configuration to the peer UE. Both peer UEs may exchange their own UE capability and sidelink configuration using separate bi-directional procedures in both sidelink directions.
- FIG. 6 shows example physical signals in downlink, uplink and sidelink according to some aspects of some of various exemplary embodiments of the present disclosure.
- the Demodulation Reference Signal (DM-RS) may be used in downlink, uplink and sidelink and may be used for channel estimation.
- DM-RS Demodulation Reference Signal
- DM-RS is a UE-specific reference signal and may be transmitted together with a physical channel in downlink, uplink or sidelink and may be used for channel estimation and coherent detection of the physical channel.
- the Phase Tracking Reference Signal (PT-RS) may be used in downlink, uplink and sidelink and may be used for tracking the phase and mitigating the performance loss due to phase noise.
- the PT-RS may be used mainly to estimate and minimize the effect of Common Phase Error (CPE) on system performance. Due to the phase noise properties, PT-RS signal may have a low density in the frequency domain and a high density in the time domain.
- PT-RS may occur in combination with DM-RS and when the network has configured PT-RS to be present.
- the Positioning Reference Signal may be used in downlink for positioning using different positioning techniques. PRS may be used to measure the delays of the downlink transmissions by correlating the received signal from the base station with a local replica in the receiver.
- the Channel State Information Reference Signal (CSI-RS) may be used in downlink and sidelink. CSI-RS may be used for channel state estimation, Reference Signal Received Power (RSRP) measurement for mobility and beam management, time /frequency tracking lor demodulation among otner uses. CSI-RS may be configured UE- specifically but multiple users may share the same CSI-RS resource. The UE may determine CSI reports and transit them in the uplink to the base station using PUCCH or PUSCH. The CSI report may be carried in a sidelink MAC CE.
- the Primary Synchronization Signal (PSS) and the Secondary Synchronization Signal (SSS) may be used for radio fame synchronization.
- PSS and SSS may be used for the cell search procedure during the initial attach or for mobility purposes.
- the Sounding Reference Signal (SRS) may be used in uplink for uplink channel estimation. Similar to CSI-RS, the SRS may serve as QCL reference for other physical channels such that they can be configured and transmitted quasi-collocated with SRS.
- S-PSS Sidelink PSS
- S-SSS Sidelink SSS
- S-SSS Sidelink SSS
- FIG. 7 shows examples of Radio Resource Control (RRC) states and transitioning between different RRC states according to some aspects of some of various exemplary embodiments of the present disclosure.
- a UE may be in one of three RRC states: RRC Connected State 710, RRC Idle State 720 and RRC Inactive state 730.
- RRC Connected State 710 After power up, the UE may be in RRC Idle state 720 and the UE may establish connection with the network using initial access and via an RRC connection establishment procedure to perform data transfer and/or to make/receive voice calls.
- RRC connection Once RRC connection is established, the UE may be in RRC Connected State 710. The UE may transition from the RRC Idle state 720 to the RRC connected state 710 or from the RRC Connected State 710 to the RRC Idle state 720 using the RRC connection Establishment/ Release procedures 740.
- the RRC Inactive State 730 may be used.
- the AS context may be stored by both UE and gNB. This may result in faster state transition from the RRC Inactive State 730 to RRC Connected State 710.
- the UE may transition from the RRC inactive State 730 to the RRC connected state 7 10 or irom me RRC Connected State 710 to the RRC Inactive State 730 using the RRC Connection Resume/ Inactivation procedures 760.
- the UE may transition from the RRC Inactive State 730 to RRC Idle State 720 using an RRC Connection Release procedure 750.
- FIG. 8 shows example frame structure and physical resources according to some aspects of some of various exemplary embodiments of the present disclosure.
- the downlink or uplink or sidelink transmissions may be organized into frames with 10 ms duration, consisting of ten 1 ms subframes.
- Each subframe may consist of 1, 2, 4, ... slots, wherein the number of slots per subframe may depend on the subcarrier spacing of the carrier on which the transmission takes place.
- the slot duration may be 14 symbols with Normal Cyclic Prefix (CP) and 12 symbols with Extended CP and may scale in time as a function of the used sub-carrier spacing so that there is an integer number of slots in a subframe.
- FIG. 8 shows a resource grid in time and frequency domain. Each element of the resource grid, comprising one symbol in time and one subcarrier in frequency, is referred to as a Resource Element (RE).
- a Resource Block (RB) may be defined as 12 consecutive subcarriers in the frequency domain.
- the transmission of a packet may occur over a portion of a slot, for example during 2, 4 or 7 OFDM symbols which may also be referred to as mini-slots.
- the mini-slots may be used for low latency applications such as URLLC and operation in unlicensed bands.
- the mini-slots may also be used for fast flexible scheduling of services (e.g., pre-emption of URLLC over eMBB).
- FIG. 9 shows example component carrier configurations in different carrier aggregation scenarios according to some aspects of some of various exemplary embodiments of the present disclosure.
- CA Carrier Aggregation
- two or more Component Carriers (CCs) may be aggregated.
- a UE may simultaneously receive or transmit on one or multiple CCs depending on its capabilities.
- CA may be supported tor bo th contiguous and non-contiguous CCs in the same band or on different bands as shown in FIG. 9.
- a gNB and the UE may communicate using a serving cell.
- a serving cell may be associated at least with one downlink CC (e.g., may be associated only with one downlink CC or may be associated with a downlink CC and an uplink CC).
- a serving cell may be a Primary Cell (PCell) or a Secondary cCell (SCell).
- PCell Primary Cell
- SCell Secondary cCell
- a UE may adjust the timing of its uplink transmissions using an uplink timing control procedure.
- a Timing Advance (TA) may be used to adjust the uplink frame timing relative to the downlink frame timing.
- the gNB may determine the desired Timing Advance setting and provides that to the UE.
- the UE may use the provided TA to determine its uplink transmit timing relative to the UE's observed downlink receive timing.
- the gNB may be responsible for maintaining the timing advance to keep the LI synchronized.
- Serving cells having uplink to which the same timing advance applies and using the same timing reference cell are grouped in a Timing Advance Group (TAG).
- a TAG may contain at least one serving cell with configured uplink.
- the mapping of a serving cell to a TAG may be configured by RRC.
- the UE may use the PCell as timing reference cell, except with shared spectrum channel access where an SCell may also be used as timing reference cell in certain cases.
- the UE may use any of the activated SCells of this TAG as a timing reference cell and may not change it unless necessary.
- Timing advance updates may be signaled by the gNB to the UE via MAC CE commands. Such commands may restart a TAG-specific timer which may indicate whether the LI can be synchronized or not: when the timer is running, the LI may be considered synchronized, otherwise, the LI may be considered non-synchronized (in which case uplink transmission may only take place on PRACH).
- a UE with single timing advance capability for CA may simultaneously receive and/or transmit on multiple CCs corresponding to multiple serving cells sharing the same timing advance (multiple serving cells grouped in one TAG).
- a UE witn multiple timing advance capability tor CA may simultaneously receive and / or transmit on multiple CCs corresponding to multiple serving cells with different timing advances (multiple serving cells grouped in multiple TAGs).
- the NG-RAN may ensure that each TAG contains at least one serving cell.
- a non-CA capable UE may receive on a single CC and may transmit on a single CC corresponding to one serving cell only (one serving cell in one TAG).
- the multi-carrier nature of the physical layer in case of CA may be exposed to the MAC layer and one HARQ entity may be required per serving cell.
- the UE may have one RRC connection with the network.
- one serving cell e.g., the PCell
- one serving cell may provide the NAS mobility information.
- SCells may be configured to form together with the PCell a set of serving cells.
- the configured set of serving cells for a UE may consist of one PCell and one or more SCells. The reconfiguration, addition and removal of SCells may be performed by RRC.
- a UE may be configured with a plurality of cells comprising a Master Cell Group (MCG) for communications with a master base station, a Secondary Cell Group (SCG) for communications with a secondary base station, and two MAC entities: one MAC entity and for the MCG for communications with the master base station and one MAC entity for the SCG for communications with the secondary base station.
- MCG Master Cell Group
- SCG Secondary Cell Group
- FIG. 10 shows example bandwidth part configuration and switching according to some aspects of some of various exemplary embodiments of the present disclosure.
- the UE may be configured with one or more Bandwidth Parts (BWPs) 1010 on a given component carrier.
- BWPs Bandwidth Parts
- one of the one or more bandwidth parts may be active at a time.
- the active bandwidth part may define the UE's operating bandwidth within the cell's operating bandwidth. For initial access, and until the UE’s configuration in a cell is received, initial bandwidth part 1020 determined from system information may be used.
- tne receive and transmit bandwidtn of a UE may not be as large as the bandwidth of the cell and may be adjusted.
- the width may be ordered to change (e.g. to shrink during period of low activity to save power) ; the location may move in the frequency domain (e.g. to increase scheduling flexibility); and the subcarrier spacing may be ordered to change (e.g. to allow different services).
- the first active BWP 1020 may be the active BWP upon RRC (re-)configuration for a PCell or activation of an SCell.
- the UE may be provided the following configuration parameters: a Subcarrier Spacing (SCS); a cyclic prefix; a common RB and a number of contiguous RBs; an index in the set of downlink BWPs or uplink BWPs by respective BWP-Id; a set of BWP-common and a set of BWP- dedicated parameters.
- a BWP may be associated with an OFDM numerology according to the configured subcarrier spacing and cyclic prefix for the BWP.
- a UE may be provided by a default downlink BWP among the configured downlink BWPs. If a UE is not provided a default downlink BWP, the default downlink BWP may be the initial downlink BWP.
- a downlink BWP may be associated with a BWP inactivity timer. If the BWP inactivity timer associated with the active downlink BWP expires and if the default downlink BWP is configured, the UE may perform BWP switching to the default BWP. If the BWP inactivity timer associated with the active downlink BWP expires and if the default downlink BWP is not configured, the UE may perform BWP switching to the initial downlink BWP.
- FIG. 11 shows example four-step contention-based and contention-free random access processes according to some aspects of some of various exemplary embodiments of the present disclosure.
- FIG. 12 shows example two-step contention-based and contention-free random access processes according to some aspects of some of various exemplary embodiments of the present disclosure.
- the random access procedure may be triggered by a number of events, for example: Initial access from RRC Idle State; RRC Connection Re-establishment procedure; downlink or uplink data arrival during RRC Connected State when uplink synchronization status is "nonsynchronized"; uplink data arrival during RRC Connected State when there are no PUCCH resources for Scheduling Request (SR) available; SR failure;
- SR Scheduling Request
- RRC Request by RRC upon synchronous reconfiguration (e.g. handover); Transition from RRC Inactive State; to establish time alignment for a secondary TAG;
- SI System Information
- BFR Beam Failure Recovery
- LBT Consistent uplink Listen-Before -Talk
- RA Random Access
- MSG1 2-step RA type with MSGA.
- Both types of RA procedure may support Contention-Based Random Access (CBRA) and Contention- Free Random Access (CFRA) as shown in FIG. 11 and FIG. 12.
- CBRA Contention-Based Random Access
- CFRA Contention- Free Random Access
- the UE may select the type of random access at initiation of the random access procedure based on network configuration.
- CFRA resources are not configured, a RSRP threshold may be used by the UE to select between 2- step RA type and 4-step RA type.
- CFRA resources for 4-step RA type are configured, UE may perform random access with 4-step RA type.
- CFRA resources for 2-step RA type are configured, UE may perform random access with 2-step RA type.
- the MSG1 of the 4-step RA type may consist of a preamble on PRACH.
- the UE may monitor for a response from the network within a configured window.
- dedicated preamble for MSG1 transmission may be assigned by the network and upon receiving Random Access Response (RAR) from the network, the UE may end the random access procedure as shown in FIG. 11.
- RAR Random Access Response
- CBRA upon reception of the random access response, the UE may send MSG3 using the uplink grant scheduled in the random access response and may monitor contention resolution as shown in FIG. 11. If contention resolution is not successful after MSG3 (re)transmission(s), the UE may go back to MSG1 transmission.
- the MSGA of the 2-step RA type may include a preamble on PRACH and a payload on PUSCH. After MSGA transmission, the UE may monitor for a response from the network within a configured window.
- dedicated preamble and PUSCH resource may be configured for MSGA transmission and upon receiving the network response, the UE may end the random access procedure as shown in FIG. 12.
- CBRA if contention resolution is successful upon receiving the network response, the UE may end the random access procedure as shown in FIG. 12; while if fallback indication is received in MSGB, the UE may perform MSG3 transmission using the uplink grant scheduled in the fallback indication and may monitor contention resolution. If contention resolution is not successful after MSG3 (re)transmission(s), the UE may go back to MSGA transmission.
- FIG. 13 shows example time and frequency structure of Synchronization Signal and Physical Broadcast Channel (PBCH) Block (SSB) according to some aspects of some of various exemplary embodiments of the present disclosure.
- the SS/PBCH Block (SSB) may consist of Primary and Secondary Synchronization Signals (PSS, SSS), each occupying 1 symbol and 127 subcarriers (e.g., subcarrier numbers 56 to 182 in FIG. 13), and PBCH spanning across 3 OFDM symbols and 240 subcarriers, but on one symbol leaving an unused part in the middle for SSS as show in FIG. 13.
- PSS Primary and Secondary Synchronization Signals
- SSS Primary and Secondary Synchronization Signals
- PBCH spanning across 3 OFDM symbols and 240 subcarriers, but on one symbol leaving an unused part in the middle for SSS as show in FIG. 13.
- the possible time locations of SSBs within a half-frame may be determined by sub-carrier spacing and the periodicity of the half-frames, where SSBs are transmitted, may be configured by the network.
- different SSBs may be transmitted in different spatial directions (i.e., using different beams, spanning the coverage area of a cell) .
- the PBCH may be used to carry Master Information Block (MIB) used by a UE during cell search and initial access procedures.
- the UE may first decode PBCH /MIB to receive other system information.
- the MIB may provide the UE with parameters required to acquire System Information Block 1 (SIB1), more specifically, information required for monitoring of PDCCH for scheduling PDSCH that carries SIB1.
- SIB may indicate cell barred status information.
- SIB and SIB1 may be collectively referred to as the minimum system information (SI) and SIB 1 may be referred to as remaining minimum system information (RMSI).
- the other system information blocks may be referred to as Other SI.
- the Other SI may be periodically broadcast on DL-SCH, broadcast on-demand on DL-SCH (e.g., upon request from UEs in RRC Idle State, RRC Inactive State, or RRC connected State), or sent in a dedicated manner on DL- SCH to UEs in RRC Connected State (e.g., upon request, if configured by the network, from UEs in RRC Connected State or when the UE has an active BWP with no common search space configured).
- FIG. 14 shows example SSB burst transmissions according to some aspects of some of various exemplary embodiments of the present disclosure.
- An SSB burst may include N SSBs and each SSB of the N SSBs may correspond to a beam.
- the SSB bursts may be transmitted according to a periodicity (e.g., SSB burst period).
- a UE may perform a random access resource selection process, wherein the UE first selects an SSB before selecting a RA preamble.
- the UE may select an SSB with an RSRP above a configured threshold value.
- the UE may select any SSB if no SSB with RSRP above the configured threshold is available.
- a set of random access preambles may be associated with an SSB. After selecting an SSB, the UE may select a random access preamble from the set of random access preambles associated with the SSB and may transmit the selected random access preamble to start the random access process.
- a beam of the N beams may be associated with a CSI-RS resource.
- a UE may measure CSI-RS resources and may select a CSI- RS with RSRP above a configured threshold value.
- the UE may select a random access preamble corresponding to the selected CSI-RS and may transmit the selected random access process to start the random access process. If there is no random access preamble associated with the selected CSI-RS, the UE may select a random access preamble corresponding to an SSB which is Quasi-Collocated with the selected CSI-RS.
- the base station may determine a Transmission Configuration Indication (TCI) state and may indicate the TCI state to the UE, wherein the UE may use the indicated TCI state for reception of downlink control information (e.g., via PDCCH) or data (e.g., via PDSCH).
- TCI Transmission Configuration Indication
- the UE may use the indicated TCI state for using the appropriate beam for reception of data or control information.
- the indication of the TCI states may be using RRC configuration or in combination of RRC signaling and dynamic signaling (e.g., via a MAC Control element (MAC CE) and/or based on a value of field in the downlink control information that schedules the downlink transmission).
- the TCI state may indicate a Quasi-Colocation (QCL) relationship between a downlink reference signal such as CSI-RS and the DM- RS associated with the downlink control or data channels (e.g., PDCCH or PDSCH, respectively).
- QCL Quasi-Colocation
- the UE may be configured with a list of up to M TCI-State configurations, using Physical Downlink Shared Channel (PDSCH) configuration parameters, to decode PDSCH according to a detected PDCCH with DCI intended for the UE and the given serving cell, where M may depend on the UE capability.
- PDSCH Physical Downlink Shared Channel
- Each TCI-State may contain parameters for configuring a QCL relationship between one or two downlink reference signals and the DM-RS ports of the PDSCH, the DM-RS port of PDCCH or the CSI-RS port(s) of a CSI-RS resource.
- the quasi co-location relationship may be configured by one or more RRC parameters.
- the quasi co-location types corresponding to each DL RS may take one of the following values: 'QCL-TypeA': (Doppler shift, Doppler spread, average delay, delay spread ⁇ ; 'QCL-TypeB': ⁇ Doppler shift, Doppler spread ⁇ ; 'QCL-TypeC: ⁇ Doppler shift, average delay); 'QCL-TypeD': ⁇ Spatial Rx parameter).
- the UE may receive an activation command (e.g., a MAC CE), used to map TCI states to the codepoints of a DCI field.
- an activation command e.g., a MAC CE
- FIG. 15 shows example components of a user equipment and a base station for transmission and/or reception according to some aspects of some of various exemplary embodiments of the present disclosure. All or a subset of blocks and functions in FIG. 15 may be in the base station 1505 and the user equipment 1500 and may be performed by the user equipment 1500 and by the base station 1505.
- the Antenna 1510 may be used for transmission or reception of electromagnetic signals.
- the Antenna 1510 may comprise one or more antenna elements and may enable different input-output antenna configurations including Multiple-Input Multiple Output (MIMO) configuration, Multiple-Input Single-Output (MISO) configuration and SingleInput Multiple-Output (SIMO) configuration.
- MIMO Multiple-Input Multiple Output
- MISO Multiple-Input Single-Output
- SIMO SingleInput Multiple-Output
- the Antenna 150 may enable a massive MIMO configuration with tens or hundreds of antenna elements.
- the Antenna 1510 may enable other multiantenna techniques such as beamforming.
- the UE 1500 may support a single antenna only.
- the transceiver 1520 may communicate bi-directionally, via the Antenna 1510, wireless links as described herein.
- the transceiver 1520 may represent a wireless transceiver at the UE and may communicate bi-directionally with the wireless transceiver at the base station or vice versa.
- the transceiver 1520 may include a modem to modulate the packets and provide the modulated packets to the Antennas 1510 for transmission, and to demodulate packets received from the Antennas 1510.
- the memory 1530 may include RAM and ROM.
- the memory 1530 may store computer-readable, computer-executable code 1535 including instructions that, when executed, cause the processor to perform various functions described herein.
- the memory 1530 may contain, among other things, a Basic Input/output System (BIOS) which may control basic hardware or software operation such as the interaction with peripheral components or devices.
- BIOS Basic Input/output System
- the processor 1540 may include a hardware device with processing capability (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 1540 may be configured to operate a memory using a memory controller.
- a memory controller may be integrated into the processor 1540.
- the processor 1540 may be configured to execute computer-readable instructions stored in a memory (e.g., the memory 1530) to cause the UE 1500 or the base station 1505 to perform various functions.
- the Central Processing Unit (CPU) 1550 may perform basic arithmetic, logic, controlling, and Input/output (I/O) operations specified by the computer instructions in the Memory 1530.
- the user equipment 1500 and/or the base station 1505 may include additional peripheral components such as a graphics processing unit (GPU) 1560 and a Global Positioning System (GPS) 1570.
- the GPU 1560 is a specialized circuitry for rapid manipulation and altering of the Memory 1530 for accelerating the processing performance of the user equipment 1500 and/or the base station 1505.
- the GPS 1570 may be used for enabling location-based services or other services for example based on geographical position of the user equipment 1500.
- the MAC entity may be configured by RRC with a DRX functionality that controls the UE's PDCCH monitoring activity for the MAC entity's C-RNTI, CI-RNTI, CS-RNTI, INT-RNTI, SFI-RNTI, SP-CSI- RNTI, TPC-PUCCH-RNTI, TPC-PUSCH-RNTI, TPC-SRS-RNTI, AI-RNTI, SL- RNTI, SLCS-RNTI and SL Semi-Persistent Scheduling V-RNTI.
- RRC_CONNECTED if DRX is configured, for the activated Serving Cells, the MAC entity may monitor the PDCCH discontinuously using the DRX operation.
- RRC may control DRX operation by configuring the following parameters: drx-onDurationTimer: the duration at the beginning of a DRX cycle; drx-SlotOffset: the delay before starting the drx-onDurationTimer; drx-InactivityTimer: the duration after the PDCCH occasion in which a PDCCH indicates a new UL or DL transmission for the MAC entity; drx- RetransmissionTimerDL (per DL HARQ process except for the broadcast process): the maximum duration until a DL retransmission is received; drx- RetransmissionTimerUL (per UL HARQ process): the maximum duration until a grant for UL retransmission is received; drx-LongCycleStartOffset: the Long DRX cycle and drx-StartOffset which defines the subframe where the Long and Short DRX cycle starts; drx-ShortCycle (optional):
- serving Cells of a MAC entity may be configured by RRC in two DRX groups with separate DRX parameters.
- RRC does not configure a secondary DRX group, there is only one DRX group and all Serving Cells belong to that one DRX group.
- each Serving Cell is uniquely assigned to either of the two groups.
- the DRX parameters that are separately configured for each DRX group may be: drx-onDurationTimer, drx-InactivityTimer.
- the DRX parameters that may be common to the DRX groups are: drx-SlotOffset, drx- RetransmissionTimerDL, drx-RetransmissionTimerUL, drx- LongCycleStartQffset, drx-ShortCycle (optional), drx-ShortCycleTimer (optional), drx-HARQ-RTT-TimerDL, drx-HARQ-RTT-TimerUL, and uplinkHARQ-Mode (optional).
- the Active Time for Serving Cells in a DRX group may include the time while: drx-onDurationTimer or drx-InactivityTimer configured for the DRX group is running; or drx- RetransmissionTimerDL, drx-RetransmissionTimerUL or drx- RetransmissionTimerSL is running on any Serving Cell in the DRX group; or ra-ContentionResolutionTimer or msgB-ResponseWindow is running; or a Scheduling Request is sent on PUCCH and is pending.
- the Active Time may be started after the first Scheduling Request transmission plus the UE-gNB RTT; or a PDCCH indicating a new transmission addressed to the C-RNTI of the MAC entity has not been received after successful reception of a Random Access Response for the Random Access Preamble not selected by the MAC entity among the contention-based Random Access Preamble.
- the MAC entity may start the drx-HARQ- RTT-TimerDL for the corresponding HARQ process in the first symbol after the end of the corresponding transmission carrying the DL HARQ feedback.
- the MAC entity may top the drx-RetransmissionTimerDL for the corresponding HARQ process.
- the MAC entity may start the drx-HARQ-RTT- TimerUL for the corresponding HARQ process in the first symbol after the end of the first transmission (within a bundle) of the corresponding PUSCH transmission.
- the MAC entity may stop the drx-RetransmissionTimerUL for the corresponding HARQ process at the first transmission (within a bundle) of the corresponding PUSCH transmission.
- the MAC entity may start the drx-RetransmissionTimerDL for the corresponding HARQ process in the first symbol after the expiry of drx-HARQ-RTT-TimerDL.
- the MAC entity may start the drx-RetransmissionTimerUL for the corresponding HARQ process in the first symbol after the expiry of drx-HARQ-RTT-TimerUL.
- the MAC entity may start the drx-RetransmissionTimerSL for the corresponding HARQ process in the first symbol after the expiry of drx-HARQ-RTT-TimerSL.
- the MAC entity may stop drx-onDurationTimer for each DRX group; may stop drx-InactivityTimer for each DRX group.
- drx-InactivityTimer for a DRX group expires: if the Short DRX cycle is configured: the MAC entity may start or restart drx- ShortCycleTimer for this DRX group in the first symbol after the expiry of drx- InactivityTimer; the MAC entity may use the Short DRX cycle for this DRX group. Otherwise, the MAC entity may use the Long DRX cycle for this DRX group.
- a DRX Command MAC CE if a DRX Command MAC CE is received: if the Short DRX cycle is configured: the MAC entity may start or restart drx- ShortCycleTimer for each DRX group in the first symbol after the end of DRX Command MAC CE reception; and may use the Short DRX cycle for each DRX group. Otherwise, the MAC entity may use the Long DRX cycle for each DRX group.
- the MAC entity may use the Long DRX cycle for this DRX group.
- the MAC entity may stop drx-ShortCycleTimer for each DRX group; and may use the Long DRX cycle for each DRX group.
- the MAC entity may start drx-onDurationTimer for this DRX group after drx-SlotOffset from the beginning of the subframe.
- the MAC entity may start drx-onDurationTimer for this DRX group after drx- SlotOffset from the beginning of the subframe.
- the MAC entity may monitor the PDCCH on the Serving Cells in this DRX group.
- the MAC entity may start or restart the drx-HARQ-RTT-TimerDL for the corresponding HARQ process(es) whose HARQ feedback is reported in the first symbol after the end of the corresponding transmission carrying the DL HARQ feedback.
- HARQ feedback is postponed by PDSCH-to-HARQ_feedback timing indicating an inapplicable kl value, the corresponding transmission opportunity to send the DL HARQ feedback may be indicated in a later PDCCH requesting the HARQ-ACK feedback.
- the MAC entity may stop the drx-RetransmissionTimerDL for the corresponding HARQ process(es) whose HARQ feedback is reported. If the PDSCH-to-HARQ feedback timing indicate an inapplicable kl value: the MAC entity may start the drx- RetransmissionTimerDL in the first symbol after the (end of the last) PDSCH transmission (within a bundle) for the corresponding HARQ process.
- the MAC entity may start the drx-HARQ-RTT-TimerUL for the corresponding HARQ process in the first symbol after the end of the first transmission (within a bundle) of the corresponding PUSCH transmission; the MAC entity may stop the drx- RetransmissionTimerUL for the corresponding HARQ process.
- the power consumption of a base station may be split into two parts: the dynamic part which may be consumed when data transmission/ reception is ongoing, and the static part which may be consumed (e.g., all the time) to maintain the necessary operation of the base station, even when the data transmission/ reception is not on-going.
- the static power consumption may be determined by the sleep modes and may be a fixed value.
- the power consumption may be optimized based on the traffic.
- the transmission parameters like the active TRX chain set, the transmit power, may be adjusted based on service’s requirements and maximize the potential power savings without incurring large performance loss.
- some transmission parameters may be adjusted according to the UEs’ data rate requirements and the expected transmission capacity.
- the transceiver chains or components may be turned off in order to reduce power consumption.
- Example techniques to enable NES may comprise power reduction in time, spatial, frequency and/or power domains. For example, dynamic on/off and light common signaling may be for time domain.
- the base station may reduce power consumption by symbol muting. More efficient symbol muting may be achieved by simplifying some always-on signals /channels.
- some always-on common signals e.g., SSB and SIB1
- SSB and SIB1 may be transmitted by the base station to guarantee that the cell is detectable by UEs. These always-on common signals may occupy a certain number of symbols, in which the BS may not go into a sleep mode for energy saving.
- a portion of the symbols may be active in a time for the network to only transmit SSB and SIB 1.
- a periodicity of SSB and SIB1 may be changed when the network is idle. Changing the periodicity may increase the access delay of UEs and there may be a risk that the legacy UE may not correctly identify a cell with a longer periodicity of SSB.
- the common signals for other carriers may be simplified and / or assisted by the signals received from the first carrier.
- discovery reference signal occupying fewer symbols (e.g., 2 symbols) than the existing SSB may be transmitted on an energy saving carrier to impose less impact on UE performance such as synchronization accuracy.
- the BS can maintain the synchronization between different carriers (such as anchor carrier and energy saving carrier)
- the SSB on energy saving carrier may be completely skipped, e.g., SSB-less, achieving additional sleeping time.
- the UE on energy saving carrier may acquire time and synchronization based on the SSB on anchor carrier.
- the legacy UE may not access the network through energy saving carrier, however, due to the existence of anchor carrier, legacy UE may receive normal SSB and SIB1 on anchor carrier.
- skipping SSB on energy saving carrier may reduce the latency of SCell activation and improve throughput performance, since UE may acquire synchronization information from PCell. For example, the latency of fast SCell activation may be reduced.
- use of SSB received from one carrier for other carriers in multi-carrier scenarios may bring energy saving gain as well as lower latency of SCell activation procedure.
- transmission of common signals e.g., SSB and SIB1
- single-carrier and multi-carrier scenarios may be optimized to minimize the energy consumption.
- Existing UE and network processes may result in high energy consumption at the network/ base station. Network energy saving may be important for environmental sustainability and for operation cost savings.
- Existing DRX processes may lead to degraded control channel monitoring when a base station or a cell provided by a base station moves from a nonenergy saving state to an energy saving state and vice versa.
- Example embodiments enhance the existing DRX procedures to improve control channel monitoring performance at the UE when the network enters or exits a network energy saving state.
- a UE may receive one or more messages comprising configuration parameters (e.g., RRC configuration parameters).
- the one or more messages may comprise one or more RRC messages.
- the configuration parameters may comprise first parameters that are used while a base station or one or more cells provided by the base station are in a non-energy saving state.
- the configuration parameters may comprise second parameters that are used while the base station or one or more cells provided by the base station are in a network energy saving stare.
- An energy saving state of the base station, or one or more cells provided by the base station may be associated with minimizing power consumption by the base station by not transmitting/receiving or transmitting/ receiving of one or more messages (e.g., RRC messages), channels (e.g., PDSCH, PDCCH, PUCCH, PUSCH, PRACH, PBCH, etc.) or signals (e.g., SSB/reference signals, CSI-RS, SRS, etc.) with a lower periodicity or less frequently or with a time pattern that results in transmitting/receiving the one or more messages, signals or channels less often.
- messages e.g., RRC messages
- channels e.g., PDSCH, PDCCH, PUCCH, PUSCH, PRACH, PBCH, etc.
- signals e.g., SSB/reference signals, CSI-RS, SRS, etc.
- the first configuration parameters may comprise first DRX configuration parameters used in a DRX process at the UE while the base station or one or more cells provided by the base station are in a non-energy saving state.
- the second configuration parameters may comprise second DRX configuration parameters that are used in a DRX procedure while the base station or one or more cells provided by the base station are in an energy saving state.
- the DRX process may be used by the UE to monitor a control channel for a number of RNTIs.
- the UE may determine, based on a DRX procedure, whether the UE is in a DRX Active time or whether the UE is not in the DRX Active time. While in a DRX Active time, the UE may monitor the control channels for one or more RNTIs. While not in a DRX Active time, the UE may not monitor the control channel for the one or more RNTIs.
- the UE may perform the DRX procedure, for determination of DRX Active time, using the first DRX configuration parameters.
- the UE may monitor the control channel based on the determination of DRX Active time using the first DRX configuration parameters.
- the UE may perform the DRX procedure, for determination of DRX Active time, using the second DRX configuration parameters.
- the UE may monitor the control channel based on the determination of DRX Active time using the second DRX configuration parameters.
- the cells provided by the base station may comprise one or more first cells and one or more second cells.
- the one or more first cells, provided by the base station may be in the non-energy saving state and the one or more second cells, provided by the base station, may be in the energy saving state.
- the UE may perform the DRX procedure for the one or more first cells that are in the non-energy saving state and for determination of DRX Active time using the first DRX configuration parameters.
- the UE may perform the DRX procedure for the one or more second cells that are in the energy saving state and for determination of DRX Active time using the second DRX configuration parameters.
- the first DRX configuration parameters may be applicable to the one or more first cells and the second DRX configuration parameters may be applicable to the one or more second cells.
- the first DRX configuration parameters may comprise a first HARQ RTT timer parameter indicating a first HARQ RTT timer value and the second DRX configuration parameters may comprise a second HARQ RTT timer parameter indicating a second HARQ timer value.
- the first HARQ RTT timer and the second HARQ RTT timer may be HARQ process specific (e.g., for a given HARQ process).
- the first HARQ RTT timer may be a first downlink HARQ RTT timer, and the UE may start the first downlink HARQ RTT timer with the first HARQ RTT timer value in response to receiving a first downlink TB while the base station or the one or more cells provided by the base station are in a non-energy saving state.
- the second HARQ RTT timer may be a second downlink HARQ RTT timer, and the UE may start the second downlink HARQ RTT timer with the second HARQ RTT timer value in response to receiving a second downlink TB while the base station or the one or more cells provided by the base station are in an energy saving state.
- the first HARQ RTT timer may be a first uplink HARQ RTT timer, and the UE may start the first uplink HARQ RTT timer with the first HARQ RTT timer value in response to transmitting a first uplink TB while the base station or the one or more cells provided by the base station are in a non-energy saving state.
- the second HARQ RTT timer may be a second uplink HARQ RTT timer, and the UE may start the second uplink HARQ RTT timer with the second HARQ RTT timer value in response to transmitting a second uplink TB while the base station or the one or more cells provided by the base station are in an energy saving state.
- the first DRX configuration parameters may comprise a first DRX retransmission timer parameter indicating a first DRX retransmission timer value and the second DRX configuration parameters may comprise a second DRX retransmission timer parameter indicating a second DRX retransmission value.
- the first DRX retransmission timer and the second DRX retransmission timer may be HARQ process specific (e.g., for a given HARQ process).
- the UE may be in a DRX Active time while a DRX retransmission timer is running.
- the first DRX retransmission timer may be a first downlink DRX retransmission timer
- the UE may start the first downlink DRX retransmission timer with the first DRX retransmission timer value in response to expiry of a first HARQ RTT timer while the base station or the one or more cells provided by the base station are in a non-energy saving state.
- the second DRX retransmission timer may be a second downlink DRX retransmission timer, and the UE may start the second downlink DRX retransmission timer with the second DRX retransmission timer value in response to expiry of a second HARQ RTT timer while the base station or the one or more cells provided by the base station are in an energy saving state.
- the first DRX retransmission timer may be a first uplink DRX retransmission timer
- the UE may start the first uplink DRX retransmission timer with the first DRX retransmission timer value in response to expiry of a first HARQ RTT timer while the base station or the one or more cells provided by the base station are in a non-energy saving state.
- the second DRX retransmission timer may be a second uplink DRX retransmission timer, and the UE may start the second uplink DRX retransmission timer with the second DRX retransmission timer value in response to expiry of a second HARQ RTT timer while the base station or the one or more cells provided by the base station are in an energy saving state.
- the first DRX configuration parameters may comprise a first DRX inactivity timer parameter indicating a first DRX inactivity timer value and the second DRX configuration parameters may comprise a second DRX inactivity timer parameter indicating a second DRX inactivity timer value.
- the UE may start the first DRX inactivity timer with the first DRX inactivity timer value in response to receiving a scheduling DCI (e.g., comprising scheduling information for an uplink transmission or a downlink transmission or a sidelink transmission) while the base station or one or more cells provided by the base station are in a non-energy saving state.
- a scheduling DCI e.g., comprising scheduling information for an uplink transmission or a downlink transmission or a sidelink transmission
- the UE may start the second DRX inactivity timer with the second DRX inactivity timer value in response to receiving a scheduling DCI (e.g., comprising scheduling information for an uplink transmission or a downlink transmission or a sidelink transmission) while the base station or one or more cells provided by the base station are in an energy saving state. While a DRX inactivity timer is running, the UE may be in a DRX Active time.
- a scheduling DCI e.g., comprising scheduling information for an uplink transmission or a downlink transmission or a sidelink transmission
- the first DRX configuration parameters may comprise a first DRX On Duration timer parameter indicating a first DRX On Duration timer value and the second DRX configuration parameters may comprise a second DRX On Duration parameter indicating a second DRX On Duration timer value. While a DRX On Duration timer is running, the UE may be in a DRX Active time.
- the first DRX configuration parameters may comprise a first DRX slot offset parameter indicating a first DRX slot offset and the second DRX configuration parameters may comprise a second DRX slot offset parameter indicating a second DRX slot offset.
- a DRX slot offset may be a delay before starting a DRX On Duration timer.
- the UE may determine that the base station or one or more cells provided by the base station are in an energy saving state or may determine whether the UE has entered an energy saving state for the base station or one or more cells provided by the base station. The determination may be based on an indication from the base station.
- the indication may further comprise one or more parameters (e.g., one or more DRX parameters, etc.) for the UE operation while in the base station or one or more cells provided by the base station are in the energy saving state.
- the indication may be based on physical layer signaling and using a DCI (e.g., based on a value of a field of the DCI).
- the indication may be based on MAC layer signaling (e.g., based on a MAC CE).
- the indication may be based on an RRC message.
- the RNTIs may be excluded from monitoring while the base station or the one or more cells provided by the base station are in an energy saving state.
- the UE may monitor one or more first RNTIs while the base station or one or more cells provided by the base station are in the non-energy saving state and the UE may monitor one or more second RNTIs while the base station or the one or more cells provided by the base station are in the energy saving state.
- the one or more second RNTIs may be a subset of the one or more first RNTIs and at least some of the RNTIs may be excluded from monitoring while the base station or one or more cells provided by the base station are in the energy saving state.
- the one or more second RNTIs may include additional RNTIs from the RNTIs that are monitored while the base station or the one or more cells provided by the base station are in the energy saving state.
- a user equipment may receive first discontinuous reception (DRX) configuration parameters and second DRX configuration parameters.
- the first DRX configuration parameters may be associated with a non-energy saving state of a base station or a non-energy saving state of one or more cells provided by the base station.
- the second DRX configuration parameters may be associated with an energy saving state of the base station or an energy saving state of one or more cells provided by the base station.
- the UE may monitor a control channel based on the first DRX configuration parameters while the base station or the one or more cells provided by the base station are in the non-energy saving state.
- the UE may monitor a control channel based on the second DRX configuration parameters while the base station or the one or more cells provided by the base station are in the energy saving state.
- one or more first cells provided by the base station may be in the non-energy saving state.
- One or more second cells provided by the base station may be in the energy saving state.
- the first discontinuous reception (DRX) configuration parameters may be applicable to the one or more first cells.
- the second DRX configuration parameters may be applicable to the one or more second cells.
- the first discontinuous reception (DRX) configuration parameters may comprise a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value.
- the second DRX configuration parameters may comprise a second HARQ RTT timer value.
- the first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value and the second HARQ RTT timer value may be for a HARQ process.
- the first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value and the second HARQ RTT timer value may be for downlink HARQ RTT timers.
- the UE may start a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer with the first HARQ RTT timer value in response to reception of a first downlink transport block (TB) while base station or the one or more cells provided by the base station are in the non-energy saving state.
- the UE may start a second HARQ RTT timer with the second HARQ RTT timer value in response to reception of a second downlink TB while base station or the one or more cells provided by the base station are in the energy saving state.
- the first hybrid automatic repeat request (HARQ) round trip time (RTT) timer value and the second HARQ RTT timer value may be for uplink HARQ RTT timers.
- the UE may start a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer with the first HARQ RTT timer value in response to transmission of a first uplink transport block (TB) while base station or the one or more cells provided by the base station are in the nonenergy saving state.
- the UE may start a second HARQ RTT timer with the second HARQ RTT timer value in response to transmission of a second uplink TB while base station or the one or more cells provided by the base station are in the energy saving state.
- HARQ hybrid automatic repeat request
- RTT round trip time
- the first discontinuous reception (DRX) configuration parameters may comprise a first DRX retransmission timer value.
- the second DRX configuration parameters may comprise a second DRX retransmission timer value.
- the first discontinuous reception (DRX) retransmission timer value and the second DRX retransmission timer value may be for a hybrid automatic repeat request HARQ process.
- the first discontinuous reception (DRX) retransmission timer value and the second DRX retransmission timer value may be for downlink DRX retransmission timers.
- the UE may start the first discontinuous reception (DRX) retransmission timer value in response to expiry of a first hybrid automatic repeat request (HARQ) round trip time (RTT) timer while base station or the one or more cells provided by the base station are in the non-energy saving state.
- the UE may start the second DRX retransmission timer value in response to expiry of a second HARQ RTT timer while base station or the one or more cells provided by the base station are in the energy saving state.
- the user equipment (UE) may be in a discontinuous reception (DRX) active time while a discontinuous reception (DRX) retransmission timer is running.
- the first discontinuous reception (DRX) retransmission timer value and the second DRX retransmission timer value may be for uplink DRX retransmission timers.
- the UE may start the first discontinuous reception (DRX) retransmission timer with the first DRX retransmission timer value in response to expiry of a first hybrid automatic repeat request. (HARQ) round trip time (RTT) timer while base station or the one or more cells provided by the base station are in the non-energy saving state.
- HARQ hybrid automatic repeat request.
- the UE may start the second DRX retransmission timer with the second DRX retransmission timer value in response to expiry of a second HARQ RTT timer while the base station or the one or more cells provided by the base station are in the energy saving state.
- the first discontinuous reception (DRX) configuration parameters may comprise a first DRX inactivity timer value.
- the second DRX configuration parameters may comprise a second DRX inactivity timer value.
- the UE may start a first discontinuous reception (DRX) inactivity timer with the first DRX inactivity timer value in response to receiving a scheduling downlink control information (DCI) while base station or the one or more cells provided by the base station are in the non-energy saving state.
- the UE may start a second DRX inactivity timer with the second DRX inactivity timer value in response to receiving a scheduling downlink control information (DCI) while base station or the one or more cells provided by the base station are in the energy saving state.
- DCI scheduling downlink control information
- the user equipment (UE) may be in a discontinuous reception (DRX) active time while a discontinuous reception (DRX) inactivity timer is running.
- the first discontinuous reception (DRX) configuration parameters may comprise a first DRX On Duration timer value.
- the second DRX configuration parameters may comprise a second DRX On Duration timer value.
- the user equipment (UE) may be in a discontinuous reception (DRX) active time while a discontinuous reception (DRX) On Duration timer is running.
- the first discontinuous reception (DRX) configuration parameters may comprise a first DRX slot offset.
- the second DRX configuration parameters may comprise a second DRX slot offset.
- a discontinuous reception (DRX) slot offset may be a delay before starting a DRX On Duration timer.
- the UE may receive an indication that the base station or the one or more cells provided by the base station are in the energy saving state.
- the indication may indicate that the base station or the one or more cells provided by the base station have entered the energy saving state.
- the indication may be based on a radio resource control (RRC) message.
- the indication may be based on a medium access control (MAC) control element (CE).
- the indication may be based on a downlink control information (DCI).
- the indication may indicate at least one of the second discontinuous reception (DRX) configuration parameters associated with the energy saving state.
- the indication may indicate timing that the base station or the one or more cells provided by the base station enter into the energy saving state.
- monitoring the control channel while the base station or the one or more cells provided by the base station are in the nonenergy saving state may be for one or more first radio network temporary identifiers (RNTIs).
- monitoring the control channel while the base station or the one or more cells provided by the base station is in the energy saving state may be for one or more second radio network temporary identifiers (RNTIs).
- RNTI radio network temporary identifier
- at least one radio network temporary identifier (RNTI) may not be monitored while the base station or the one or more cells provided by the base station are in the energy saving state.
- At least one signal or at least one channel or at least one message may be transmitted or received with a larger periodicity and less frequently while the base station or the one or more cells provided by the base station are in the energy saving state.
- the exemplary blocks and modules described in this disclosure with respect to the various example embodiments may be implemented or performed with a general-purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC) , a field programmable gate array (FPGA), or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein.
- DSP digital signal processor
- ASIC application specific integrated circuit
- FPGA field programmable gate array
- Examples of the general-purpose processor include but are not limited to a microprocessor, any conventional processor, a controller, a microcontroller, or a state machine.
- a processor may be implemented using a combination of 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 in this disclosure may be implemented in hardware, software executed by a processor, firmware, or any combination thereof. Instructions or code may be stored or transmitted on a computer- readable medium for implementation of the functions. Other examples for implementation of the functions disclosed herein are also within the scope of this disclosure. Implementation of the functions may be via physically colocated or distributed elements (e.g., at various positions), including being distributed such that portions of functions are implemented at different physical locations.
- Computer-readable media includes but is not limited to non-transitory computer storage media.
- a non-transitory storage medium may be accessed by a general purpose or special purpose computer. Examples of non-transitory storage media include, but are not limited to, random access memory (RAM), read-only memory (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, etc.
- RAM random access memory
- ROM read-only memory
- EEPROM electrically erasable programmable ROM
- flash memory compact disk (CD) ROM or other optical disk storage
- magnetic disk storage or other magnetic storage devices etc.
- a non-transitory medium may be used to carry or store desired program code means (e.g., instructions and/or data structures) and may be accessed by a general-purpose or specialpurpose computer, or a general-purpose or special-purpose processor.
- the software /program code may be transmitted from a remote source (e.g., a website, a server, etc.) using a coaxial cable, fiber optic cable, twisted pair, digital subscriber line (DSL), or wireless technologies such as infrared, radio, and microwave.
- a remote source e.g., a website, a server, etc.
- coaxial cable, fiber optic cable, twisted pair, DSL, or wireless technologies such as infrared, radio, and microwave are within the scope of the definition of medium.
- a list of items indicates an inclusive list.
- the list of items may be prefaced by a phrase such as “at least one of or “one or more of.
- a list of at least one of A, B, or C includes A or B or C or AB (i.e., A and B) or AC or BC or ABC (i.e., A and B and C).
- prefacing a list of conditions with the phrase “based on” shall not be construed as “based only on” the set of conditions and rather shall be construed as “based at least in part on” the set of conditions.
- an outcome described as “based on condition A” may be based on both a condition A and a condition B without departing from the scope of this disclosure.
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Abstract
Description
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202263352696P | 2022-06-16 | 2022-06-16 | |
| PCT/US2023/025358 WO2023244701A1 (en) | 2022-06-16 | 2023-06-15 | Discontinuous reception and network energy saving |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4541101A1 true EP4541101A1 (en) | 2025-04-23 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23741829.8A Pending EP4541101A1 (en) | 2022-06-16 | 2023-06-15 | Discontinuous reception and network energy saving |
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| Country | Link |
|---|---|
| EP (1) | EP4541101A1 (en) |
| JP (1) | JP2025523443A (en) |
| WO (1) | WO2023244701A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP3139684B1 (en) * | 2014-04-28 | 2020-08-19 | Sharp Kabushiki Kaisha | User equipment and communication method |
| CN110881208B (en) * | 2018-09-05 | 2021-08-13 | 华为技术有限公司 | A communication method and device |
| US11582784B2 (en) * | 2019-08-12 | 2023-02-14 | FG Innovation Company Limited | Method and apparatus for PDCCH monitoring adaptation |
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2023
- 2023-06-15 WO PCT/US2023/025358 patent/WO2023244701A1/en not_active Ceased
- 2023-06-15 JP JP2024573554A patent/JP2025523443A/en active Pending
- 2023-06-15 EP EP23741829.8A patent/EP4541101A1/en active Pending
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| Publication number | Publication date |
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| WO2023244701A1 (en) | 2023-12-21 |
| JP2025523443A (en) | 2025-07-23 |
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