Power Saving Mechanism
By implementing advanced techniques for wake-up procedures and power-saving operations in multi-carrier communication systems, the challenges of optimizing energy efficiency in wireless devices and base stations are addressed, resulting in improved system performance and reduced power consumption.
Patent Information
- Application Number
- JP2024006906
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-01-08
- Filing Date
- 2024-01-19
- Publication Date
- 2025-05-12
- Estimated Expiration
- 2040-01-08
AI Technical Summary
Existing wireless communication systems face challenges in optimizing wake-up procedures and power-saving operations in multi-carrier communication systems, particularly for wireless devices and base stations.
The implementation of advanced techniques for wake-up procedures and power-saving operations in wireless devices and base stations, utilizing multi-carrier communication systems, including dynamic modulation and coding schemes, and efficient channel management protocols.
This approach enhances energy efficiency, reduces power consumption, and improves overall system performance by optimizing resource allocation and communication protocols in multi-carrier systems.
Smart Images

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Abstract
Description
[Background technology]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 789,948, filed January 8, 2019, which is incorporated herein by reference in its entirety. Summary of the Invention [Means for solving the problem]
[0002] Exemplary embodiments of the present disclosure enable wake-up procedures and power saving operations of wireless devices and / or base stations. Embodiments of the techniques disclosed herein may be used in the technical field of multi-carrier communication systems. More specifically, embodiments of the techniques disclosed herein may relate to wireless devices and / or base stations in multi-carrier communication systems. [Brief description of the drawings]
[0003] Some examples of various embodiments of the present disclosure are described herein with reference to the drawings.
[0004] [Figure 1] 1 is a schematic diagram of an example RAN architecture according to an aspect of an embodiment of the present disclosure. [Figure 2A] 1 is a schematic diagram of an exemplary user plane protocol stack in accordance with an aspect of an embodiment of the present disclosure. [Figure 2B] 1 is a schematic diagram of an exemplary control user plane protocol stack in accordance with an aspect of an embodiment of the present disclosure. [Diagram 3] 2 is a schematic diagram of an exemplary wireless device and two base stations according to an aspect of an embodiment of the present disclosure. [Figure 4A] 2 is an exemplary diagram of uplink and downlink signal transmission according to an aspect of an embodiment of the present disclosure. [Figure 4B]2 is an exemplary diagram of uplink and downlink signal transmission according to an aspect of an embodiment of the present disclosure. [Figure 4C] 2 is an exemplary diagram of uplink and downlink signal transmission according to an aspect of an embodiment of the present disclosure. [Figure 4D] 2 is an exemplary diagram of uplink and downlink signal transmission according to an aspect of an embodiment of the present disclosure. [Figure 5A] 4 is a schematic diagram of an example uplink channel mapping and an example uplink physical signal according to an aspect of an embodiment of the present disclosure. [Figure 5B] 4 is a schematic diagram of an example downlink channel mapping and an example downlink physical signal according to an aspect of an embodiment of the present disclosure. [Figure 6] 2 is a diagram illustrating an exemplary carrier transmission or reception time according to an aspect of an embodiment of the present disclosure; [Figure 7A] FIG. 2 illustrates an example set of OFDM subcarriers according to an aspect of an embodiment of the present disclosure. [Figure 7B] FIG. 2 illustrates an example set of OFDM subcarriers according to an aspect of an embodiment of the present disclosure. [Figure 8] 1 is a diagram illustrating an example OFDM radio resource according to an aspect of an embodiment of the present disclosure. [Figure 9A] 1 is a diagram illustrating an example CSI-RS and / or SS block transmission in a multi-beam system. [Figure 9B] 1 is a diagram illustrating an example downlink beam management procedure in accordance with an aspect of an embodiment of the present disclosure. [Figure 10] 1 is an exemplary diagram of a configured BWP according to an aspect of an embodiment of the present disclosure. [Figure 11A] 1 is a schematic diagram of an exemplary multi-connection according to an aspect of an embodiment of the present disclosure. [Figure 11B] 1 is a schematic diagram of an exemplary multi-connection according to an aspect of an embodiment of the present disclosure. [Figure 12] 1 is a schematic diagram of an exemplary random access procedure according to an aspect of an embodiment of the present disclosure. [Figure 13] 1 is a structure of an exemplary MAC entity according to an aspect of an embodiment of the present disclosure. [Figure 14] 1 is a schematic diagram of an example RAN architecture according to an aspect of an embodiment of the present disclosure. [Figure 15] 4 is a diagram of an example RRC state according to an aspect of an embodiment of the present disclosure. [Figure 16A] 1 is an example of a MAC sub-header according to an aspect of an embodiment of the present disclosure. [Figure 16B] 1 is an example of a MAC sub-header according to an aspect of an embodiment of the present disclosure. [Figure 16C] 1 is an example of a MAC sub-header according to an aspect of an embodiment of the present disclosure. [Figure 17A] 1 is an example of a MAC PDU according to an aspect of an embodiment of the present disclosure. [Figure 17B] 1 is an example of a MAC PDU according to an aspect of an embodiment of the present disclosure. [Figure 18] 1 is an example of an LCID for DL-SCH according to an aspect of an embodiment of the present disclosure. [Figure 19] 1 is an example of an LCID of a UL-SCH according to an aspect of an embodiment of the present disclosure. [Figure 20A] 1 is an example of a 1-octet SCell activation / deactivation MAC CE according to an aspect of an embodiment of the present disclosure. [Figure 20B] 1 is an example of a 4-octet SCell activation / deactivation MAC CE according to an aspect of an embodiment of the present disclosure. [Figure 21A] 1 is an example of a one-octet SCell hibernation MAC CE according to an aspect of an embodiment of the present disclosure. [Figure 21B] 1 is an example of a 4-octet SCell hibernation MAC CE according to an aspect of an embodiment of the present disclosure. [Figure 21C] 1 is an example of a MAC control element for SCell state transition according to an aspect of an embodiment of the present disclosure. [Figure 22] 1 is an example of a DCI format according to an aspect of an embodiment of the present disclosure. [Diagram 23] 1 is an example of BWP management on a SCell according to an aspect of an embodiment of the present disclosure. [Figure 24] 1 is an example of a discontinuous reception (DRX) operation according to an aspect of an embodiment of the present disclosure. [Diagram 25] 1 is an example of a DRX operation according to an aspect of an embodiment of the present disclosure. [Figure 26A] 1 is an example of a wake-up signal / channel based power saving operation according to an aspect of an embodiment of the present disclosure. [Figure 26B] 1 is an example of a sleep state signal / channel based power saving operation in accordance with an aspect of an embodiment of the present disclosure. [Figure 27] 1 illustrates an exemplary embodiment of power saving enable / disable. [Figure 28] 1 illustrates an example embodiment of a DCI for power save enablement (or activation). [Figure 29] 1 illustrates an example embodiment of a DCI for power saving disabling (or deactivation). [Diagram 30] 1 illustrates a diagram of an example embodiment of power saving operation / mode enablement (or activation) based on DCI verification. [Diagram 31] 1 illustrates a diagram of an example embodiment of power saving operation / mode disabling (or deactivation) based on DCI verification. [Diagram 32] 1 illustrates an exemplary embodiment of a power saving enable / disable mechanism. [Diagram 33] 1 illustrates an example embodiment of a power saving enable / disable mechanism with DRX operation. [Diagram 34] 1 illustrates an exemplary embodiment of a power saving enable / disable mechanism. [Diagram 35] 1 illustrates an exemplary embodiment of a power saving enable / disable mechanism. [Diagram 36] 1 illustrates an example embodiment of a DCI for power save enabling / disabling of multiple wireless devices. [Figure 37] 1 illustrates an example embodiment of a DCI for power saving enablement / disablement on multiple cells / BWPs. [Figure 38] 1 illustrates a diagram of an example embodiment of power saving enablement / disablement on multiple cells / BWPs. [Figure 39] 4 is an illustration of a power saving operation according to an exemplary embodiment of the present disclosure. [Diagram 40] 4 is a flow chart of a power saving operation in accordance with an exemplary embodiment of the present disclosure. [Diagram 41] 4 is an illustration of a power saving operation according to an exemplary embodiment of the present disclosure. [Diagram 42] FIG. 1 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. [Diagram 43] FIG. 1 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. [Diagram 44] FIG. 1 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. [Diagram 45] FIG. 1 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. [Figure 46] FIG. 1 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. [Figure 47] FIG. 1 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0005] The following acronyms are used throughout this disclosure: [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4]
[0006] Exemplary embodiments of the present disclosure may be implemented using various physical layer modulation and transmission mechanisms. Exemplary transmission mechanisms may include, but are not limited to, Code Division Multiple Access (CDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Time Division Multiple Access (TDMA), wavelet technology, and / or the like. Hybrid transmission mechanisms such as TDMA / CDMA and OFDM / CDMA may also be used. Various modulation schemes may be applied for signal transmission at the physical layer. Examples of modulation schemes include, but are not limited to, phase, amplitude, code, combinations thereof, and / or the like. Exemplary wireless transmission methods may implement Quadrature Amplitude Modulation (QAM) using Binary Phase Shift Keying (BPSK), Quadrature Phase Shift Keying (QPSK), 16-QAM, 64-QAM, 256-QAM, 1024-QAM, and / or the like. Physical wireless transmission may be augmented by dynamically or semi-dynamically changing the modulation and coding scheme depending on the transmission requirements and radio conditions.
[0007] FIG. 1 is an exemplary Radio Access Network (RAN) architecture according to an aspect of an embodiment of the present disclosure. As illustrated in this example, the RAN node may be a Next Generation Node B (gNB) (e.g., 120A, 120B) and may provide New Radio (NR) user plane and control plane protocol termination towards a first wireless device (e.g., 110A). In one embodiment, the RAN node may be a Next Generation Evolved Node B (ng-eNB) (e.g., 120C, 120D) and may provide Evolved UMTS Terrestrial Radio Access (E-UTRA) user plane and control plane protocol termination towards a second wireless device (e.g., 110B). The first wireless device may communicate with the gNB via a Uu interface. The second wireless device may communicate with the ng-eNB via a Uu interface.
[0008] The gNB or ng-eNB may host functions such as radio resource management and scheduling, IP header compression, data encryption and integrity protection, selection of Access and Mobility Management Function (AMF) at User Equipment (UE) attachment, routing of user plane and control plane data, connection setup and release, scheduling and transmission of paging messages (arising from AMF), scheduling and transmission of system broadcast information (arising from AMF or Operations and Maintenance (O&M)), measurement and measurement report configuration, transport level packet marking in the uplink, session management, support for network slicing, Quality of Service (QoS) flow management and mapping to data radio bearers, support for UEs in RRC_INACTIVE state, distributed functions for Non-Access Stratum (NAS) messages, RAN sharing, dual connectivity, or tight interworking between NR and E-UTRA.
[0009] In one embodiment, one or more gNBs and / or one or more ng-eNBs may be interconnected with each other by an Xn interface. The gNBs or ng-eNBs may be connected to a 5G Core Network (5GC) by an NG interface. In one embodiment, the 5GC may comprise one or more AMF / User Planning Function (UPF) functions (e.g., 130A or 130B). The gNBs or ng-eNBs may be connected to a UPF by an NG-User Plane (NG-U) interface. The NG-U interface may provide delivery (e.g., non-guaranteed delivery) of user plane protocol data units (PDUs) between the RAN node and the UPF. The gNBs or ng-eNBs may be connected to an AMF by an NG-Control Plane (NG-C) interface. The NG-C interface may provide functions such as NG interface management, UE context management, UE mobility management, transport of NAS messages, paging, PDU session management, configuration transfer, or alert message transmission.
[0010] In one embodiment, the UPF may host functions such as an anchor point for intra / inter-Radio Access Technology (RAT) mobility (where applicable), an external PDU session point for interconnection with a data network, packet routing and forwarding, packet inspection and user plane portion for policy rule enforcement, traffic usage reporting, an uplink classifier to support routing of traffic flows to the data network, a branching point to support multi-homed PDU sessions, QoS processing for the user plane, e.g., packet filtering, gating, uplink (UL) / downlink (DL) rate enforcement, uplink traffic validation (e.g., Service Data Flow (SDF) to QoS flow mapping), downlink packet buffering, and / or downlink data notification triggering.
[0011] In one embodiment, the AMF may host functions such as NAS signaling termination, NAS signaling security, Access Stratum (AS) security control, Inter-Core Network (CN) node signaling for mobility between Third Generation Partnership Project (3GPP) access networks, idle mode UE reachability (e.g., control and execution of paging retransmissions), registration area management, support for intra-system and inter-system mobility, access authentication, access authorization including checking of roaming rights, mobility management control (subscription and policy), support for network slice and / or Session Management Function (SMF) selection, etc.
[0012] 2A is an example user plane protocol stack, where Service Data Adaptation Protocol (SDAP) (e.g., 211 and 221), Packet Data Convergence Protocol (PDCP) (e.g., 212 and 222), Radio Link Control (RLC) (e.g., 213 and 223) and Medium Access Control (MAC) (e.g., 214 and 224) sublayers, as well as the Physical (PHY) (e.g., 215 and 225) layer, may terminate at the wireless device (e.g., 110) and the gNB (e.g., 120) on the network side. In one embodiment, the PHY layer provides transport services to higher layers (e.g., MAC, RRC, etc.). In one embodiment, the services and functions of the MAC sublayer may include mapping between logical channels and transport channels, multiplexing / segmentation of MAC service data units (SDUs) belonging to one or different logical channels to / from transport blocks (TBs) delivered to / from the PHY layer, scheduling information reporting, error correction via hybrid automatic repeat request (HARQ) (e.g., one HARQ entity per carrier in case of carrier aggregation (CA)), priority handling between UEs with dynamic scheduling, priority handling between logical channels of one UE with logical channel prioritization, and / or padding. The MAC entity may support one or more numerologies and / or transmission timings. In one embodiment, mapping restrictions in logical channel prioritization may control which numerology and / or transmission timings a logical channel may use. In one embodiment, the RLC sublayer may support transparent mode (TM), unacknowledged mode (UM), and acknowledged mode (AM) transmission modes. This RLC configuration can be per logical channel, independent of numerology and / or transmission time interval (TTI) duration. In one embodiment, automatic repeat request (ARQ) can operate for any numerology and / or TTI duration for which a logical channel is configured.In one embodiment, the services and functions of the PDCP layer for the user plane may include sequence numbering, header compression and decompression, forwarding of user data, reordering and duplicate detection, PDCP PDU routing (e.g., in case of split bearers), retransmission of PDCP SDUs, ciphering, deciphering and integrity protection, PDCP SDU discarding, PDCP re-establishment and data recovery for RLC AM, and / or duplication of PDCP PDUs. In one embodiment, the services and functions of the SDAP may include mapping between QoS flows and data radio bearers. In one embodiment, the services and functions of the SDAP may include mapping quality of service indicators (QFIs) in DL and UL packets. In one embodiment, a protocol entity of the SDAP may be configured for each PDU session.
[0013] 2B is an example control plane protocol stack, where the PDCP (e.g., 233 and 242), RLC (e.g., 234 and 243), and MAC (e.g., 235 and 244) sublayers, as well as the PHY (e.g., 236 and 245) layer, may terminate at the wireless device (e.g., 110) and the gNB (e.g., 120) on the network side to perform the services and functions described above. In one embodiment, the RRC (e.g., 232 and 241) may terminate at the wireless device and the gNB on the network side. In one embodiment, the RRC services and functions may include broadcasting of system information regarding AS and NAS, paging initiated by 5GC or RAN, establishment, maintenance, and release of RRC connection between UE and RAN, security functions including key management, establishment, configuration, maintenance, and release of signaling radio bearers (SRBs) and data radio bearers (DRBs), mobility functions, QoS management functions, UE measurement reports and control of the reports, detection of and recovery from radio link failures, and / or NAS message transfer to / from the NAS from / to the UE. In one embodiment, the NAS control protocols (e.g., 231 and 251) may be terminated in the wireless device and the AMF (e.g., 130) on the network side, and may perform functions such as mobility management between the UE and the AMF for 3GPP access and non-3GPP access, and session management between the UE and the SMF for 3GPP access and non-3GPP access.
[0014] In one embodiment, the base station can configure multiple logical channels for the wireless device. The logical channels in the multiple logical channels can correspond to radio bearers, and the radio bearers can be associated with QoS requirements. In one embodiment, the base station can configure logical channels that are mapped to one or more TTIs / numerologies in the multiple TTIs / numerologies. The wireless device can receive downlink control information (DCI) over a physical downlink control channel (PDCCH) indicating an uplink grant. In one embodiment, the uplink grant can be for a first TTI / numerology and can indicate uplink resources for transmission of the transport block. The base station can configure each logical channel in the multiple logical channels with one or more parameters used by a logical channel prioritization procedure at the MAC layer of the wireless device. The one or more parameters can include a priority, a prioritized bit rate, etc. Each logical channel in the multiple logical channels can correspond to one or more buffers that contain data associated with that logical channel. The logical channel prioritization procedure can assign uplink resources to multiple logical channels and / or one or more first logical channels in one or more MAC Control Elements (CEs). The one or more first logical channels can be mapped to a first TTI / numerology. The MAC layer at the wireless device can multiplex one or more MAC CEs and / or one or more MAC SDUs (e.g., logical channels) in a MAC PDU (e.g., transport block). In one embodiment, the MAC PDU can include a MAC header including multiple MAC subheaders. The MAC subheaders in the multiple MAC subheaders can correspond to one or more MAC CEs and / or MAC CEs or MAC SUDs (logical channels) in one or more MAC SDUs. In one embodiment, the MAC CEs or logical channels can be configured with a logical channel identifier (LCID). In one embodiment, the LCIDs for the logical channels or MAC CEs can be fixed / pre-configured.In one embodiment, an LCID for a logical channel or MAC CE may be configured for a wireless device by a base station, and a MAC subheader corresponding to a MAC CE or MAC SDU may include the LCID associated with the MAC CE or MAC SDU.
[0015] In one embodiment, the base station may activate and / or deactivate and / or affect one or more processes in the wireless device by using one or more MAC commands (e.g., setting values of one or more parameters of one or more processes, starting and / or stopping one or more timers of one or more processes). The one or more MAC commands may include one or more MAC control elements. In one embodiment, the one or more processes may include activating and / or deactivating PDCP packet duplication for one or more radio bearers. The base station may transmit a MAC CE including one or more fields, values of the fields indicating the activation and / or deactivation of PDCP duplication for one or more radio bearers. In one embodiment, the one or more processes may include channel state information (CSI) transmission on one or more cells. The base station may transmit one or more MAC CEs indicating the activation and / or deactivation of CSI transmission on one or more cells. In one embodiment, the one or more processes may include the activation or deactivation of one or more secondary cells. In one embodiment, the base station may transmit a MAC CE indicating the activation or deactivation of one or more secondary cells. In one embodiment, a base station may transmit one or more MAC CEs indicating starting and / or stopping one or more discontinuous reception (DRX) timers in a wireless device. In one embodiment, a base station may transmit one or more MAC CEs indicating one or more timing advance values for one or more timing advance groups (TAGs).
[0016] FIG. 3 is a block diagram of base stations (base station 1, 120A and base station 2, 120B) and wireless device 110. The wireless device may be referred to as a UE. The base station may be referred to as a NB, eNB, gNB, and / or ng-eNB. In one embodiment, the wireless device and / or base station may act as a relay node. Base station 1, 120A may comprise at least one communication interface 320A (e.g., a wireless modem, an antenna, a wired modem, and / or the like), at least one processor 321A, and at least one set of program code instructions 323A stored in non-transitory memory 322A and executable by at least one processor 321A. Base station 2, 120B may comprise at least one communication interface 320B, at least one processor 321B, and at least one set of program code instructions 323B stored in non-transitory memory 322B and executable by at least one processor 321B.
[0017] A base station may include multiple sectors, e.g., 1, 2, 3, 4, or 6 sectors. A base station may include multiple cells, e.g., ranging from 1 to 50 or more. Cells may be categorized, e.g., as primary or secondary cells. In a Radio Resource Control (RRC) connection establishment / re-establishment / handover, one serving cell may provide NAS (Non-Access Stratum) mobility information (e.g., Tracking Area Identifier (TAI)). In an RRC connection re-establishment / handover, one serving cell may provide security input. This cell may be referred to as a primary cell (PCell). In the downlink, the carrier corresponding to the PCell may be a DL Primary Component Carrier (PCC), whereas in the uplink, the carrier may be a UL PCC. Depending on the wireless device capabilities, a secondary cell (SCell) may be configured to form a set of serving cells together with the PCell. In the downlink, the carrier corresponding to the SCell may be a Downlink Secondary Component Carrier (DL SCC), whereas in the uplink, the carrier may be an Uplink Secondary Component Carrier (UL SCC). A SCell may or may not have an uplink carrier.
[0018] A cell including a downlink carrier and an optional uplink carrier can be assigned a physical cell ID and a cell index. A carrier (downlink or uplink) can belong to one cell. A cell ID or cell index can also identify a downlink carrier or an uplink carrier of a cell (depending on the usage). In this disclosure, a cell ID may also be referred to as a carrier ID, and a cell index may also be referred to as a carrier index. In an implementation, a physical cell ID or cell index can be assigned to a cell. A cell ID can be determined using a synchronization signal transmitted on a downlink carrier. A cell index can be determined using an RRC message. For example, when this disclosure refers to a first physical cell ID for a first downlink carrier, this disclosure can mean that the first physical cell ID is for a cell including the first downlink carrier. The same concept can be applied to, for example, carrier activation. When this disclosure indicates that a first carrier is activated, this specification can similarly mean that a cell including the first carrier is activated.
[0019] The base station may transmit one or more messages (e.g., RRC messages) including configuration parameters for one or more cells to the wireless device. The one or more cells may include at least one primary cell and at least one secondary cell. In one embodiment, the RRC messages may be broadcast or unicast to the wireless device. In one embodiment, the configuration parameters may include common parameters and dedicated parameters.
[0020] The services and / or functions of the RRC sublayer may include at least one of broadcasting system information regarding AS and NAS, paging initiated by 5GC and / or NG-RAN, establishment, maintenance, and / or release of an RRC connection between a wireless device and an NG-RAN, which may include at least one of adding, modifying, and releasing carrier aggregation, or release of a dual connection within NR or between E-UTRA and NR. The services and / or functions of the RRC sublayer may further include at least one of security functions including key management, mobility functions that may include at least one of establishing, configuring, maintaining, and / or releasing a signaling radio bearer (SRB) and / or a data radio bearer (DRB), handover (e.g., intra-NR mobility or inter-RAT mobility) and context transfer, or wireless device cell selection and reselection, and control of cell selection and reselection. The services and / or functions of the RRC sublayer may further include at least one of QoS management functions, wireless device measurement configuration / reporting, detection of and / or recovery from radio link failure, or NAS message forwarding to / from a core network entity (e.g., AMF, Mobility Management Entity (MME)) from / to the wireless device.
[0021] The RRC sublayer can support an RRC_Idle state, an RRC_Inactive state, and / or an RRC_Connected state for the wireless device. In the RRC_Idle state, the wireless device can perform at least one of: public land mobile network (PLMN) selection, reception of broadcasted system information, cell selection / reselection, monitoring / reception of paging for 5GC initiated mobile terminated data, paging for 5GC managed mobile terminated data areas, or DRX for CN paging configured via NAS. In the RRC_Inactive state, the wireless device can perform at least one of: reception of broadcasted system information, cell selection / reselection, monitoring / reception of NG-RAN / 5GC initiated RAN / CN paging, RAN-based notification area (RNA) managed by NG-RAN, or DRX for NG-RAN / NAS configured RAN / CN paging. In the wireless device's RRC_Idle state, the base station (e.g., NG-RAN) can maintain a 5GC-NG-RAN connection (both C / U-plane) for the wireless device and / or store a UE AS context for the wireless device. In the wireless device's RRC_Connected state, the base station (e.g., NG-RAN) can perform at least one of the following: establishing a 5GC-NG-RAN connection (both C / U-plane) for the wireless device, storing a UE AS context for the wireless device, transmitting / receiving unicast data to / from the wireless device, or network controlled mobility based on measurements received from the wireless device. In the wireless device's RRC_Connected state, the NG-RAN can know the cell to which the wireless device belongs.
[0022] System information (SI) can be divided into minimum SI and other SI. Minimum SI can be broadcast periodically. Minimum SI can include basic information required for initial access and information for periodically obtaining any other SI broadcast or information prepared on request, i.e., scheduling information. Other SI can be either broadcast or configured in a dedicated manner and can be triggered either by a request from the network or the wireless device. Minimum SI can be transmitted over two different downlink channels using different messages (e.g., MasterInformationBlock and SystemInformationBlockType1). Another SI can be transmitted via SystemInformationBlockType2. For wireless devices in RRC_Connected state, dedicated RRC signaling can be used for request and delivery of other SI. For wireless devices in RRC_Idle and / or RRC_Inactive state, a request can trigger a random access procedure.
[0023] A wireless device can report its radio access capability information, which may be static. A base station can request how much capability the wireless device reports based on band information. If permitted by the network, a temporary capability restriction request can be sent by the wireless device to inform the base station that the availability of some capabilities is limited (e.g., due to hardware sharing, interference, or overheating). The base station can confirm or reject the request. Temporary capability restrictions can be transparent to 5GC (e.g., static capabilities can be preserved in 5GC).
[0024] If CA is configured, the wireless device may have an RRC connection with the network. In the RRC connection establishment / re-establishment / handover procedure, one serving cell may provide NAS mobility information, and in the RRC connection re-establishment / handover, one serving cell may provide security input. This cell may be referred to as a PCell. Depending on the capabilities of the wireless device, a secondary cell (SCell) may be configured to together form a set of serving cells with the PCell. The set of serving cells configured for the wireless device may include one PCell and one or more SCells.
[0025] Reconfiguration, addition, and removal of SCells can be performed by the RRC. In an intra-NR handover, the RRC can also add, remove, or reconfigure a SCell for use with a target PCell. When adding a new SCell, dedicated RRC signaling can be used to transmit all required system information of the SCell, i.e., while in connected mode, the wireless device may not need to obtain the broadcasted system information directly from the SCell.
[0026] The purpose of the RRC connection reconfiguration procedure may be to modify the RRC connection (e.g., establish, modify, and / or release RBs, perform handover, configure, modify, and / or release measurements, add, modify, and / or release SCells and cell groups). As part of the RRC connection reconfiguration procedure, NAS dedicated information may be transferred from the network to the wireless device. The RRCConnectionReconfiguration message may be a command to modify the RRC connection. It may convey information for measurement configuration, mobility control, radio resource configuration (e.g., RBs, MAC primary configuration, and physical channel configuration), including any associated dedicated NAS information and security configuration. If the received RRC Connection Reconfiguration message includes sCellToReleaseList, the wireless device may perform SCell release. If the received RRC Connection Reconfiguration message includes sCellToAddModList, the wireless device may perform SCell addition or modification.
[0027] The RRC connection establishment (or re-establishment, resumption) procedure may be to establish (or re-establish, re-start) an RRC connection, and the RRC connection establishment procedure may include SRB1 establishment. The RRC connection establishment procedure may be used to transfer initial NAS-specific information / messages from the wireless device to the E-UTRAN. The RRCConnectionReestablishment message may be used to re-establish the SRB1.
[0028] The measurement report procedure may be the transfer of measurement results from a wireless device to the NG-RAN. The wireless device may initiate the measurement report procedure after a successful security operation. The measurement report message may be used to transmit the measurement results.
[0029] The wireless device 110 may include at least one communication interface 310 (e.g., a wireless modem, an antenna, and / or the like), at least one processor 314, and at least one set of program code instructions 316 stored in non-transitory memory 315 and executable by the at least one processor 314. The wireless device 110 may further include at least one of at least one speaker / microphone 311, at least one keypad 312, at least one display / touchpad 313, at least one power source 317, at least one Global Positioning System (GPS) chipset 318, and other peripherals 319.
[0030] The processor 314 of the wireless device 110, the processor 321A of the base station 1, 120A, and / or the processor 321B of the base station 2, 120B may comprise at least one of a general purpose processor, a digital signal processor (DSP), a controller, a microcontroller, an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) and / or other programmable logic device, a discrete gate and / or transistor logic circuit, a discrete hardware component, and the like. The processor 314 of the wireless device 110, the processor 321A in the base station 1, 120A, and / or the processor 321B in the base station 2, 120B may perform at least one of signal coding / processing, data processing, power control, input / output processing, and / or any other functionality that enables the wireless device 110, the base station 1, 120A, and / or the base station 2, 120B to operate in a wireless environment.
[0031] The processor 314 of the wireless device 110 may be connected to a speaker / microphone 311, a keypad 312, and / or a display / touchpad 313. The processor 314 may receive user input data from and / or provide user output data to the speaker / microphone 311, the keypad 312, and / or the display / touchpad 313. The processor 314 in the wireless device 110 may receive power from a power source 317 and / or may be configured to distribute the power to other components in the wireless device 110. The power source 317 may comprise at least one of one or more dry batteries, solar cells, fuel cells, and the like. The processor 314 may be connected to a GPS chipset 318. The GPS chipset 318 may be configured to provide geographic location information of the wireless device 110.
[0032] The processor 314 of the wireless device 110 may further be connected to other peripherals 319, which may comprise one or more software and / or hardware modules that provide additional features and / or functionality. For example, the peripherals 319 may comprise at least one of an accelerometer, a satellite transceiver, a digital camera, a universal serial bus (USB) port, a hands-free headset, a frequency modulation (FM) radio unit, a media player, an Internet browser, and the like.
[0033] Communication interface 320A of base station 1, 120A and / or communication interface 320B of base station 2, 120B may be configured to communicate with communication interface 310 of wireless device 110 via wireless link 330A and / or wireless link 330B, respectively. In one embodiment, communication interface 320A of base station 1, 120A may communicate with communication interface 320B of base station 2, as well as other RAN and core network nodes.
[0034] The wireless link 330A and / or the wireless link 330B may comprise at least one of a bidirectional link and / or a directional link. The communication interface 310 of the wireless device 110 may be configured to communicate with the communication interface 320A of the base station 1, 120A and / or with the communication interface 320B of the base station 2, 120B. The base station 1, 120A and the wireless device 110, and / or the base station 2, 120B and the wireless device 110 may be configured to transmit and receive transport blocks via the wireless link 330A and / or via the wireless link 330B, respectively. The wireless link 330A and / or the wireless link 330B may use at least one frequency carrier. According to some various aspects of the embodiment, a transceiver may be used. The transceiver may be a device including both a transmitter and a receiver. The transceiver may be used in a device such as a wireless device, a base station, a relay node, and / or the like. Exemplary embodiments of wireless technologies implemented in communication interfaces 310, 320A, 320B and wireless links 330A, 330B are illustrated in Figures 4A, 4B, 4C, 4D, 6, 7A, 7B, 8, and related context.
[0035] In one embodiment, other nodes in the wireless network (e.g., AMF, UPF, SMF, etc.) may include one or more communication interfaces, one or more processors, and memory for storing instructions.
[0036] A node (e.g., a wireless device, a base station, an AMF, an SMF, an UPF, a server, a switch, an antenna, and / or the like) may include one or more processors and a memory storing instructions that, when executed by the one or more processors, cause the node to perform a particular process and / or function. Exemplary embodiments may enable single carrier and / or multi-carrier communication operations. Other exemplary embodiments may comprise a non-transitory tangible computer-readable medium including instructions executable by one or more processors to cause single carrier and / or multi-carrier communication operations. Still other exemplary embodiments may include an article of manufacture including a non-transitory tangible computer-readable machine-accessible medium having instructions encoded thereon for enabling programmable hardware to cause a node to enable single carrier and / or multi-carrier communication operations. A node may include a processor, a memory, an interface, and / or the like.
[0037] The interface may comprise at least one of a hardware interface, a firmware interface, a software interface, and / or combinations thereof. The hardware interface may comprise electronic devices such as connectors, wires, drivers, amplifiers, and / or the like. The software interface may comprise code stored in a memory device to implement a protocol, a protocol layer, a communication driver, a device driver, combinations thereof, and / or the like. The firmware interface may include a combination of embedded hardware and code stored within and / or in communication with a memory device to implement a connection, an electronic device operation, a protocol, a protocol layer, a communication driver, a device driver, a hardware operation, combinations thereof, and / or the like.
[0038] 4A, 4B, 4C, and 4D are exemplary diagrams of uplink and downlink signal transmission cases according to an aspect of an embodiment of the present disclosure. FIG. 4A illustrates an exemplary uplink transmitter of at least one physical channel. The baseband signal representing the physical uplink shared channel can perform one or more functions. The one or more functions can include at least one of the following: scrambling, modulation of scramble bits to generate complex-valued symbols, mapping of complex-valued modulation symbols onto one or several transmission layers, transform precoding to generate complex-valued symbols, precoding of the complex-valued symbols, mapping of the precoded complex-valued symbols onto resource elements, generating complex-valued time-domain single carrier frequency division multiple access (SC-FDMA) or CP-OFDM signals to antenna ports, and / or the like. In one embodiment, if transform precoding is enabled, an SC-FDMA signal for uplink transmission can be generated. In one embodiment, if transform precoding is not enabled, a CP-OFDM signal for uplink transmission can be generated according to FIG. 4A. These functions are provided as examples, and it is anticipated that other mechanisms may be implemented in various embodiments.
[0039] An example structure for modulation and up-conversion of complex-valued SC-FDMA or CP-OFDM baseband signals to antenna ports and / or complex-valued Physical Random Access Channel (PRACH) baseband signals to carrier frequencies is shown in FIG. 4B. Filtering may be used before transmission.
[0040] An exemplary structure for downlink transmission is shown in FIG. 4C. The baseband signal representing the downlink physical channel may perform one or more functions. The one or more functions may include scrambling of coded bits in a codeword to be transmitted on the physical channel, modulation of the scrambled bits to generate complex-valued modulation symbols, mapping of the complex-valued modulation symbols onto one or several transmission layers, precoding of the complex-valued modulation symbols on the layers for transmission on the antenna ports, mapping of the complex-valued modulation symbols of the antenna ports to resource elements, generation of a complex-valued time-domain OFDM signal per antenna port, and / or the like. These functions are shown as examples, and it is anticipated that other mechanisms may be implemented in various embodiments.
[0041] In one embodiment, the gNB may transmit a first symbol and a second symbol on an antenna port to a wireless device. The wireless device may infer a channel (e.g., fading gain, multipath delay, etc.) for communicating a second symbol on an antenna port from a channel for communicating the first symbol on the antenna port. In one embodiment, the first antenna port and the second antenna port may be approximately co-located if one or more large-scale characteristics of the channel through which the first symbol on the first antenna port is communicated can be inferred from the channel through which the second symbol on the second antenna port is communicated. The one or more large-scale characteristics may include at least one of delay spread, Doppler spread, Doppler shift, average gain, average delay, and / or spatial receive (Rx) parameters.
[0042] An exemplary modulation and up-conversion to a carrier frequency of the complex-valued OFDM baseband signal at the antenna port is shown in Figure 4D. Filtering may be used before transmission.
[0043] 5A is a diagram of an example uplink channel mapping and an example uplink physical signal. FIG. 5B is a diagram of an example downlink channel mapping and a downlink physical signal. In one embodiment, the physical layer can provide one or more information transfer services to the MAC and / or one or more upper layers. For example, the physical layer can provide one or more information transfer services to the MAC over one or more transport channels. The information transfer services can indicate how and with what characteristic data is transferred across the air interface.
[0044] In an exemplary embodiment, a wireless network may include one or more downlink and / or uplink transport channels. For example, the diagram of FIG. 5A illustrates exemplary uplink transport channels including an uplink shared channel (UL-SCH) 501 and a random access channel (RACH) 502. The diagram of FIG. 5B illustrates exemplary downlink transport channels including a downlink shared channel (DL-SCH) 511, a paging channel (PCH) 512, and a broadcast channel (BCH) 513. The transport channels may be mapped to one or more corresponding physical channels. For example, the UL-SCH 501 may be mapped to a physical uplink shared channel (PUSCH) 503. The RACH 502 may be mapped to a PRACH 505. The DL-SCH 511 and the PCH 512 may be mapped to a physical downlink shared channel (PDSCH) 514. The BCH 513 may be mapped to a physical broadcast channel (PBCH) 516.
[0045] There may be one or more physical channels that do not have a corresponding transport channel. The one or more physical channels may be used for uplink control information (UCI) 509 and / or downlink control information (DCI) 517. For example, the physical uplink control channel (PUCCH) 504 may carry the UCI 509 from the UE to the base station. For example, the physical downlink control channel (PDCCH) 515 may carry the DCI 517 from the base station to the UE. NR may support UCI 509 multiplexing in the PUSCH 503, where the UCI 509 and PUSCH 503 transmissions may at least partially coincide in a slot. The UCI 509 may include at least one of CSI, an acknowledgement (ACK) / negative acknowledgement (NACK), and / or a scheduling request. The DCI 517 on the PDCCH 515 may indicate at least one of the following: one or more downlink assignments, and / or one or more uplink scheduling grants.
[0046] In the uplink, the UE may transmit one or more reference signals (RS) to the base station. For example, the one or more RS may be at least one of a demodulation-RS (DM-RS) 506, a phase tracking-RS (PT-RS) 507, and / or a sounding RS (SRS) 508. In the downlink, the base station may transmit (e.g., unicast, multicast, and / or broadcast) one or more RS to the UE. For example, the one or more RS may be at least one of a primary synchronization signal (PSS) / secondary synchronization signal (SSS) 521, a CSI-RS 522, a DM-RS 523, and / or a PT-RS 524.
[0047] In one embodiment, the UE may transmit one or more uplink DM-RSs 506 to the base station for channel estimation, e.g., for coherent demodulation of one or more uplink physical channels (e.g., PUSCH 503 and / or PUCCH 504). For example, the UE may transmit at least one uplink DM-RS 506 to the base station using the PUSCH 503 and / or PUCCH 504, where the at least one uplink DM-RS 506 may span the same frequency range as the corresponding physical channel. In one embodiment, the base station may configure the UE with one or more uplink DM-RS configurations. The at least one DM-RS configuration may support a precedent DM-RS pattern. The precedent DM-RS may be mapped onto one or more OFDM symbols (e.g., one or two adjacent OFDM symbols). The one or more additional uplink DM-RSs may be configured to transmit on one or more symbols of the PUSCH and / or PUCCH. The base station may quasi-statistically configure the UE with a maximum number of preceding DM-RS symbols for PUSCH and / or PUCCH. For example, the UE may schedule a single-symbol DM-RS and / or a dual-symbol DM-RS based on the maximum number of preceding DM-RS symbols, and the base station may configure the UE with one or more additional uplink DM-RS for PUSCH and / or PUCCH. The new wireless network may support a common DM-RS structure for DL and UL, e.g., at least for CP-OFDM, where the DM-RS position, DM-RS pattern, and / or scrambling sequence may be the same or different.
[0048] In one embodiment, whether or not an uplink PT-RS 507 is present may depend on an RRC configuration. For example, the presence of the uplink PT-RS may be UE-specifically configured. For example, the presence and / or pattern of the uplink PT-RS 507 within the scheduled resources may be UE-specifically configured by a combination of RRC signaling and / or association with one or more parameters used for other purposes (e.g., modulation and coding scheme (MCS)) that may be indicated by DCI. The dynamic presence of the uplink PT-RS 507 may be associated with one or more DCI parameters including at least MCS, if configured. The wireless network may support multiple uplink PT-RS densities defined in the time / frequency domain. The frequency domain density, if present, may be associated with at least one configuration of the scheduled bandwidth. The UE may assume the same precoding for the DMRS and PT-RS ports. The number of PT-RS ports may be less than the number of DM-RS ports within the scheduled resources. For example, the uplink PT-RS 507 may be restricted within a scheduled time / frequency duration for the UE.
[0049] In one embodiment, the UE can transmit an SRS 508 to the base station for channel condition estimation to support uplink channel dependent scheduling and / or link adaptation. For example, the SRS 508 transmitted by the UE can enable the base station to estimate uplink channel conditions at one or more different frequencies. The base station scheduler can use the uplink channel conditions to allocate one or more resource blocks of good quality for uplink PUSCH transmission from the UE. The base station can quasi-statistically configure the UE with one or more SRS resource sets. For an SRS resource set, the base station can configure the UE with one or more SRS resources. The applicability of the SRS resource set can be configured by higher layer (e.g., RRC) parameters. For example, if the higher layer parameters indicate beam management, the SRS resources in each of one or more SRS resource sets can be transmitted at one time. The UE can transmit one or more SRS resources in different SRS resource sets simultaneously. The new wireless network can support aperiodic, periodic, and / or semi-persistent SRS transmission. The UE may transmit the SRS resources based on one or more trigger types, which may include higher layer signaling (e.g., RRC) and / or one or more DCI formats (e.g., at least one DCI format may be used by the UE to select at least one of the one or more configured SRS resource sets). SRS trigger type 0 may refer to an SRS triggered based on higher layer signaling. SRS trigger type 1 may refer to an SRS triggered based on one or more DCI formats. In one embodiment, if the PUSCH 503 and the SRS 508 are transmitted in the same slot, the UE may be configured to transmit the SRS 508 after the transmission of the PUSCH 503 and the corresponding uplink DM-RS 506.
[0050] In one embodiment, the base station may quasi-statistically configure the UE with one or more SRS configuration parameters indicating at least one of the following: an SRS resource configuration identifier, an SRS port number, a time domain behavior of the SRS resource configuration (e.g., an indication of periodic, semi-persistent, or aperiodic SRS), a slot (minislot, and / or subframe) level periodicity and / or offset for periodic and / or aperiodic SRS resources, a number of OFDM symbols in the SRS resource, an OFDM symbol start of the SRS resource, an SRS bandwidth, a frequency hopping bandwidth, a cyclic shift, and / or an SRS sequence ID.
[0051] In one embodiment, in the time domain, an SS / PBCH block may include one or more OFDM symbols (e.g., four OFDM symbols numbered in increasing order from 0 to 3) within the SS / PBCH block. An SS / PBCH block may include a PSS / SSS 521 and a PBCH 516. In one embodiment, in the frequency domain, an SS / PBCH block may include one or more consecutive subcarriers (e.g., 240 consecutive subcarriers with subcarriers numbered in increasing order from 0 to 239) within the SS / PBCH block. For example, a PSS / SSS 521 may occupy one OFDM symbol and 127 subcarriers. For example, a PBCH 516 may span three OFDM symbols and 240 subcarriers. A UE may assume that one or more SS / PBCH blocks transmitted with the same block index may be located at approximately the same position, e.g., with respect to Doppler spread, Doppler shift, average gain, average delay, and spatial Rx parameters. The UE may not assume approximately the same placement for other SS / PBCH block transmissions. The periodicity of the SS / PBCH blocks may be configured by the wireless network (e.g., by RRC signaling), and one or more time locations at which the SS / PBCH blocks may be transmitted may be determined by the subcarrier spacing. In one embodiment, the UE may assume band-specific subcarrier spacing for the SS / PBCH blocks, unless the wireless network configures the UE to assume a different subcarrier spacing.
[0052] In one embodiment, the downlink CSI-RS 522 can be used by the UE to obtain channel state information. The wireless network can support periodic, aperiodic, and / or semi-persistent transmission of the downlink CSI-RS 522. For example, the base station can quasi-statistically configure and / or reconfigure the UE with periodic transmission of the downlink CSI-RS 522. The configured CSI-RS resources can be activated and / or deactivated. In the case of semi-persistent transmission, activation and / or deactivation of the CSI-RS resources can be dynamically triggered. In one embodiment, the CSI-RS configuration can include one or more parameters indicating at least a number of antenna ports. For example, the base station can configure the UE with 32 ports. The base station can quasi-statistically configure the UE with one or more CSI-RS resource sets. One or more CSI-RS resources can be assigned to one or more UEs from one or more CSI-RS resource sets. For example, the base station may quasi-statistically configure one or more parameters indicative of the CSI RS resource mapping, e.g., the time domain location of one or more CSI-RS resources, the bandwidth of the CSI-RS resources, and / or the periodicity. In one embodiment, if the downlink CSI-RS 522 and the core set are approximately co-located in space, the UE may be configured to use the same OFDM symbol for the downlink CSI-RS 522 and the control resource set (core set), and the resource elements associated with the downlink CSI-RS 522 are outside of the PRBs configured for the core set. In one embodiment, if the downlink CSI-RS 522 and the SS / PBCH block are approximately co-located in space, the UE may be configured to use the same OFDM symbol for the downlink CSI-RS 522 and the SS / PBCH block, and the resource elements associated with the downlink CSI-RS 522 are outside of the PRBs configured for the SS / PBCH block.
[0053] In one embodiment, the UE may transmit one or more downlink DM-RSs 523 to the base station for channel estimation, e.g., for coherent demodulation of one or more downlink physical channels (e.g., PDSCH 514). For example, the wireless network may support one or more variable and / or configurable DM-RS patterns for data demodulation. At least one downlink DM-RS configuration may support a precedent DM-RS pattern. The precedent DM-RS may be mapped onto one or more OFDM symbols (e.g., one or two adjacent OFDM symbols). The base station may quasi-statistically configure the UE with a maximum number of precedent DM-RS symbols for the PDSCH 514. For example, the DM-RS configuration may support one or more DM-RS ports. For example, in the case of single-user-MIMO, the DM-RS configuration may support at least eight orthogonal downlink DM-RS ports. For example, in the case of multi-user-MIMO, the DM-RS configuration may support twelve orthogonal downlink DM-RS ports. A wireless network may support a common DM-RS structure for DL and UL, e.g., at least for CP-OFDM, where the DM-RS positions, DM-RS patterns, and / or scrambling sequences may be the same or different.
[0054] In one embodiment, the presence or absence of the downlink PT-RS 524 may depend on the RRC configuration. For example, the presence of the downlink PT-RS 524 may be UE-specifically configured. For example, the presence and / or pattern of the downlink PT-RS 524 within the scheduled resources may be UE-specifically configured by combination of RRC signaling and / or association with one or more parameters used for other purposes (e.g., MCS) that may be indicated by DCI. The dynamic presence of the downlink PT-RS 524 may be associated with one or more DCI parameters including at least MCS, if configured. The wireless network may support multiple PT-RS densities defined in the time / frequency domain. The frequency domain density, if present, may be associated with at least one configuration of the scheduled bandwidth. The UE may assume the same precoding for the DMRS and PT-RS ports. The number of PT-RS ports may be less than the number of DM-RS ports within the scheduled resources. For example, the downlink PT-RS 524 may be restricted within the scheduled time / frequency duration for the UE.
[0055] FIG. 6 is a diagram illustrating exemplary carrier transmission and reception times according to an aspect of an embodiment of the present disclosure. A multi-carrier OFDM communication system may include one or more carriers, for example, ranging from 1 to 32 carriers in case of carrier aggregation, or from 1 to 64 carriers in case of dual connectivity. Different radio frame structures may be supported (e.g., for FDD mechanism and for TDD duplex mechanism). FIG. 6 illustrates exemplary frame timing. Downlink and uplink transmissions may be organized within a radio frame 601. In this example, the radio frame duration is 10 ms. In this example, the 10 ms radio frame 601 may be divided into 10 equally sized subframes 602 having a duration of 1 ms. The subframe(s) may include one or more slots (e.g., slots 603 and 605) depending on the subcarrier spacing and / or CP length. For example, subframes with subcarrier spacing of 15 kHz, 30 kHz, 60 kHz, 120 kHz, 240 kHz, and 480 kHz can contain 1, 2, 4, 8, 16, and 32 slots, respectively. In FIG. 6, the subframe can be divided into two equally sized slots 603 with a duration of 0.5 ms. For example, 10 subframes can be available for downlink transmission and 10 subframes can be available for uplink transmission with a time interval of 10 ms. The uplink and downlink transmissions can be separated in the frequency domain. A slot can contain multiple OFDM symbols 604. The number of OFDM symbols 604 in a slot 605 can depend on the cyclic prefix length. For example, one slot can be 14 OFDM symbols with the same subcarrier spacing of up to 480 kHz with normal CP. One slot can be 12 OFDM symbols with the same subcarrier spacing of 60 kHz with extended CP. A slot may include a downlink, an uplink, or a downlink portion and / or an uplink portion, and / or the like.
[0056] FIG. 7A is a diagram illustrating an example OFDM subcarrier set according to an aspect of an embodiment of the present disclosure. In this example, a gNB can communicate with a wireless device having a carrier with an example channel bandwidth 700. The arrows in the diagram can indicate subcarriers in a multi-carrier OFDM system. The OFDM system can use technologies such as OFDM technology, SC-FDMA technology, and / or the like. In one example, the arrows 701 indicate subcarriers carrying information symbols. In one example, the subcarrier spacing 702 between two adjacent subcarriers in the carrier can be any one of 15KHz, 30KHz, 60KHz, 120KHz, 240KHz, etc. In one example, different subcarrier spacings can correspond to different transmission numerologies. In one example, the transmission numerology can include at least a numerology index, a value of subcarrier spacing, and a type of cyclic prefix (CP). In one example, the gNB can transmit to / receive from a UE on multiple subcarriers 703 in the carrier. In one embodiment, the bandwidth occupied by a number of subcarriers 703 (transmission bandwidth) may be smaller than the channel bandwidth 700 of the carrier due to guard bands 704 and 705. In one embodiment, the guard bands 704 and 705 can be used to reduce interference to and from one or more neighboring carriers. The number of subcarriers (transmission bandwidth) in a carrier can depend on the channel bandwidth of the carrier and the subcarrier spacing. For example, for a carrier with a 20 MHz channel bandwidth and 15 KHz subcarrier spacing, the transmission bandwidth can be 1024 subcarriers in number.
[0057] In one example, the gNB and wireless device, when configured with CA, can communicate with multiple CCs. In one example, different component carriers can have different bandwidths and / or subcarrier spacings when CA is supported. In one example, the gNB can transmit a first type of service to the UE on a first component carrier. The gNB can transmit a second type of service to the UE on a second component carrier. Different types of services may have different service requirements (e.g., data rate, latency, reliability), which may be suitable for transmission over different component carriers with different subcarrier spacings and / or bandwidths. FIG. 7B illustrates an example embodiment. The first component carrier can include a first number of subcarriers 706 having a first subcarrier spacing 709. The second component carrier can include a second number of subcarriers 707 having a second subcarrier spacing 710. The third component carrier can include a third number of subcarriers 708 having a third subcarrier spacing 711. The carriers in a multi-carrier OFDM communication system may be contiguous carriers, non-contiguous carriers, or a combination of both contiguous and non-contiguous carriers.
[0058] FIG. 8 is a diagram illustrating an OFDM radio resource according to an aspect of an embodiment of the present disclosure. In one example, a carrier can have a transmission bandwidth 801. In one example, a resource grid can be in a frequency domain 802 and a time domain 803 structure. In one example, the resource grid can include a first number of OFDM symbols in a subframe and a second number of resource blocks, starting from a common resource block indicated by higher layer signaling (e.g., RRC signaling) for the transmission numerology and carrier. In one example, in the resource grid, the resource unit identified by the subcarrier index and the symbol index can be a resource element 805. In one example, a subframe can include a first number of OFDM symbols 807 depending on the numerology associated with the carrier. For example, if the subcarrier spacing of the numerology of the carrier is 15 KHz, the subframe can have 14 OFDM symbols for the carrier. If the subcarrier spacing of the numerology is 30 KHz, the subframe may have 28 OFDM symbols. If the subcarrier spacing of the numerology is 60 KHz, the subframe may have 56 OFDM symbols, etc. In one embodiment, the second number of resource blocks included in the resource grid of the carrier may depend on the bandwidth and numerology of the carrier.
[0059] As shown in FIG. 8, a resource block 806 may include 12 subcarriers. In one embodiment, multiple resource blocks may be grouped into a resource block group (RBG) 804. In one embodiment, the size of the RBG may depend on at least one of an RRC message indicating an RBG size configuration, a size of the carrier bandwidth, or a bandwidth portion of the carrier. In one embodiment, a carrier may include multiple bandwidth portions. A first bandwidth portion of a carrier may have a different frequency location and / or bandwidth than a second bandwidth portion of the carrier.
[0060] In one embodiment, the gNB can transmit downlink control information including downlink or uplink resource block allocations to the wireless device. The base station can transmit or receive scheduled and transmitted data packets (e.g., transport blocks) to or from the wireless device over one or more resource blocks and one or more slots according to parameters in the downlink control information and / or the RRC message(s). In one embodiment, a start symbol for a first slot of the one or more slots can be indicated to the wireless device. In one embodiment, the gNB can transmit or receive data packets scheduled in one or more RBGs and one or more slots to or from the wireless device.
[0061] In one embodiment, the gNB can transmit downlink control information including a downlink assignment to the wireless device via one or more PDCCHs. The downlink assignment can include at least parameters indicating a modulation and coding format, a resource assignment, and / or HARQ information for the DL-SCH. In one embodiment, the resource assignment can include parameters of a resource block assignment, and / or a slot assignment. In one embodiment, the gNB can dynamically assign resources to the wireless device via a Cell Radio Network Temporary Identifier (C-RNTI) on one or more PDCCHs. The wireless device can monitor one or more PDCCHs to find possible assignments when downlink reception of the wireless device is possible. If the wireless device successfully detects one or more PDCCHs, it can receive one or more downlink data packages on one or more PDSCHs scheduled by the one or more PDCCHs.
[0062] In one embodiment, a gNB may allocate configured scheduling (CS) resources for downlink transmission to a wireless device. The gNB may transmit one or more RRC messages indicating a periodicity of the CS grant. The gNB may transmit a DCI over a PDCCH addressed to a configured scheduling-RNTI (CS-RNTI) that activates the CS resources. The DCI may include a parameter indicating that the downlink grant is a CS grant. The CS grant may be implicitly reused until stopped according to a periodicity defined by the one or more RRC messages.
[0063] In one embodiment, the gNB can transmit downlink control information including an uplink grant to the wireless device via one or more PDCCHs. The uplink grant can include at least parameters indicative of a modulation and coding format, a resource allocation, and / or HARQ information for the UL-SCH. In one embodiment, the resource allocation can include parameters of a resource block allocation, and / or a slot allocation. In one embodiment, the gNB can dynamically allocate resources to the wireless device via a C-RNTI on one or more PDCCHs. The wireless device can monitor one or more PDCCHs to find possible resource allocations. If the wireless device successfully detects one or more PDCCHs, it can transmit one or more uplink data packages via one or more PUSCHs scheduled by the one or more PDCCHs.
[0064] In one embodiment, a gNB may allocate CS resources for uplink data transmission to a wireless device. The gNB may transmit one or more RRC messages indicating a periodicity of the CS grant. The gNB may transmit a DCI over a PDCCH addressed to a CS-RNTI that activates the CS resources. The DCI may include a parameter indicating that the uplink grant is a CS grant. The CS grant may be implicitly reused until stopped according to a periodicity defined by the one or more RRC messages.
[0065] In one embodiment, the base station may transmit DCI / control signaling over the PDCCH. The DCI may take one of a number of formats. The DCI may include downlink and / or uplink scheduling information (e.g., resource allocation information, HARQ-related parameters, MCS), a request for CSI (e.g., aperiodic CQI report), a request for SRS, an uplink power control command for one or more cells, one or more timing information (e.g., TB transmission / reception timing, HARQ feedback timing, etc.), etc. In one embodiment, the DCI may indicate an uplink grant including transmission parameters for one or more transport blocks. In one embodiment, the DCI may indicate a downlink assignment indicating parameters for receiving one or more transport blocks. In one embodiment, the DCI may be used by the base station to initiate contention-free random access in the wireless device. In one embodiment, the base station may transmit a DCI including a slot format indicator (SFI) informing of the slot format. In one embodiment, the base station may transmit a DCI including a preemption indication informing the PRB and / or OFDM symbol, where the UE may assume that no transmission is intended for the UE. In one embodiment, the base station may transmit a DCI for group power control of the PUCCH or PUSCH or SRS. In one embodiment, the DCI may correspond to an RNTI. In one embodiment, the wireless device may obtain the RNTI in response to completing an initial access (e.g., C-RNTI). In one embodiment, the base station may configure an RNTI for the radio (e.g., CS-RNTI, TPC-CS-RNTI, TPC-PUCCH-RNTI, TPC-PUSCH-RNTI, TPC-SRS-RNTI). In one embodiment, the wireless device may calculate the RNTI (e.g., the wireless device may calculate the RA-RNTI based on the resources used for the transmission of the preamble).In one embodiment, the RNTI may have a preconfigured value (e.g., P-RNTI or SI-RNTI). In one embodiment, the wireless device may monitor a group-common search space that may be used by the base station to transmit DCI intended for a group of UEs. In one embodiment, the group-common DCI may correspond to a commonly configured RNTI for a group of UEs. In one embodiment, the wireless device may monitor a UE-specific search space. In one embodiment, the UE-specific DCI may correspond to an RNTI configured for the wireless device.
[0066] The NR system may support single-beam and / or multi-beam operation. In multi-beam operation, the base station may perform downlink beam sweeping to provide coverage of the common control channel and / or downlink SS block, which may include at least the PSS, SSS, and / or PBCH. The wireless device may use one or more RSs to measure the quality of the beam-pair link. One or more SS blocks, or one or more CSI-RS resources associated with a CSI-RS resource index (CRI), or one or more DM-RSs of the PBCH may be used as the RSs for measuring the quality of the beam-pair link. The quality of the beam-pair link may be defined as a reference signal received power (RSRP) value, or a reference signal received quality (RSRQ) value, and / or a CSI value measured on the RS resource. The base station may indicate whether the RS resource used to measure the quality of the beam-pair link is approximately co-located (QCLed) with the DM-RS of the control channel. The RS resources of the control channel and the DM-RS may be referred to as QCLed when the channel characteristics from the transmission on the RS to the wireless device and from the transmission on the control channel to the wireless device are similar or the same under configured criteria. In multi-beam operation, the wireless device may perform uplink beam sweeping to access a cell.
[0067] In one embodiment, the wireless device can be configured to simultaneously monitor the PDCCH on one or more beam pair links depending on the capabilities of the wireless device. This can improve robustness against blocking of the beam pair links. The base station can transmit one or more messages to configure the wireless device to monitor the PDCCH on one or more beam pair links of different PDCCH OFDM symbols. For example, the base station can transmit higher layer signaling (e.g., RRC signaling) or MAC CE including parameters related to the Rx beam configuration of the wireless device for monitoring the PDCCH on one or more beam pair links. The base station can transmit an indication of the spatial QCL assumption between the DL RS antenna port(s) (e.g., cell-specific CSI-RS, wireless device-specific CSI-RS, SS block, or PBCH with or without DM-RS of the PBCH) and the DL RS antenna port(s) for demodulation of the DL control channel. The signaling for the beam indication of the PDCCH can be MAC CE signaling, or RRC signaling, or DCI signaling, or specification transparent and / or implicit methods, as well as combinations of these signaling methods.
[0068] In the case of receiving a unicast DL data channel, the base station may indicate spatial QCL parameters between the DL RS antenna port and the DM-RS antenna port of the DL data channel. The base station may transmit a DCI (e.g., a downlink grant) including information indicating the RS antenna port(s). The information may indicate the RS antenna port(s) that may be QCLed with the DM-RS antenna port(s). Different sets of DM-RS antenna port(s) of the DL data channel may be indicated as QCLs with different sets of RS antenna ports.
[0069] FIG. 9A is an example of beam sweeping in a DL channel. In an RRC_INACTIVE or RRC_IDLE state, the wireless device may assume that the SS blocks form an SS burst 940 and an SS burst set 950. The SS burst set 950 may have a predetermined periodicity. For example, in multi-beam operation, the base station 120 may transmit SS blocks that together form the SS burst 940 on multiple beams. One or more SS blocks may be transmitted on a beam. When multiple SS bursts 940 are transmitted on multiple beams, the SS bursts together may form an SS burst set 950.
[0070] The wireless device may further use the CSI-RS in a multi-beam operation to estimate a beam quality of a link between the wireless device and the base station. A beam may be associated with the CSI-RS. For example, the wireless device may report a beam index, as indicated by the CRI of the downlink beam selection and associated with the RSRP value of the beam, based on an RSRP measurement on the CSI-RS. The CSI-RS may be transmitted on CSI-RS resources including at least one of one or more antenna ports, one or more time or frequency radio resources. The CSI-RS resources may be configured in a cell-specific manner by common RRC signaling or in a wireless device-specific manner by dedicated RRC signaling and / or L1 / L2 signaling. Multiple wireless devices covered by a cell may measure the cell-specific CSI-RS resources. A dedicated subset of wireless devices covered by a cell may measure the wireless device-specific CSI-RS resources.
[0071] The CSI-RS resources can be transmitted periodically, or using aperiodic transmission, or using multi-shot or semi-persistent transmission. For example, in the periodic transmission of FIG. 9A, the base station 120 can transmit the configured CSI-RS resources 940 periodically, using a periodicity configured in the time domain. In aperiodic transmission, the configured CSI-RS resources can be transmitted in dedicated time slots. In multi-shot or semi-persistent transmission, the configured CSI-RS resources can be transmitted within a configured period. The beam used for CSI-RS transmission can have a different beam width than the beam used for SS block transmission.
[0072] FIG. 9B is an example of a beam management procedure in an exemplary new wireless network. The base station 120 and / or the wireless device 110 can perform a downlink L1 / L2 beam management procedure. One or more of the following downlink L1 / L2 beam management procedures can be performed in one or more wireless devices 110 and one or more base stations 120. In one embodiment, the P-1 procedure 910 can be used to enable the wireless device 110 to measure one or more transmit (Tx) beams associated with the base station 120 to support selection of a first set of Tx beams associated with the base station 120 and a first set of Rx beams associated with the wireless device 110. For beamforming at the base station 120, the base station 120 can sweep a set of different TX beams. For beamforming at the wireless device 110, the wireless device 110 can sweep a set of different Rx beams. In one embodiment, the P-2 procedure 920 may be used to enable the wireless device 110 to measure one or more Tx beams associated with the base station 120 and possibly modify the first set of Tx beams associated with the base station 120. The P-2 procedure 920 may differ from that in the P-1 procedure 910 and may possibly be performed on a smaller set of beams for beam refinement. The P-2 procedure 920 may be a special case of the P-1 procedure 910. In one embodiment, the P-3 procedure 930 may be used to enable the wireless device 110 to measure at least one Tx beam associated with the base station 120 and possibly modify the first set of Rx beams associated with the wireless device 110.
[0073] The wireless device 110 may transmit one or more beam management reports to the base station 120. In the one or more beam management reports, the wireless device 110 may indicate several beam pair quality parameters including at least one or more beam identities, RSRPs, precoding matrix indicators (PMI) / channel quality indicators (CQI) / rank indicators (RI) of a subset of configured beams. Based on the one or more beam management reports, the base station 120 may transmit a signal to the wireless device 110 indicating that one or more beam pair links are one or more serving beams. The base station 120 may transmit a PDCCH and a PDSCH for the wireless device 110 using one or more serving beams.
[0074] In an exemplary embodiment, the new wireless network may support Bandwidth Adaptation (BA). In one embodiment, the reception and / or transmission bandwidth configured by a UE using BA may not be large. For example, the reception and / or transmission bandwidth may not be as large as the bandwidth of the cell. The reception and / or transmission bandwidth may be adjustable. For example, the UE may vary the reception and / or transmission bandwidth, e.g., reduce it during periods of low activity to save power. For example, the UE may vary the location of the reception and / or transmission bandwidth in the frequency domain, e.g., to increase scheduling flexibility. For example, the UE may vary the subcarrier spacing, e.g., to enable different services.
[0075] In an exemplary embodiment, a subset of a cell's total cell bandwidth may be referred to as a Bandwidth Part (BWP). A base station may configure a UE with one or more BWPs to achieve BA. For example, a base station may indicate to a UE which of one or more (configured) BWPs is an active BWP.
[0076] FIG. 10 is an exemplary schematic diagram of three BWPs consisting of BWP1 (1010 and 1050) with a width of 40 MHz and subcarrier spacing of 15 kHz, BWP2 (1020 and 1040) with a width of 10 MHz and subcarrier spacing of 15 kHz, and BWP3 1030 with a width of 20 MHz and subcarrier spacing of 60 kHz.
[0077] In one embodiment, the UE is configured to operate within one or more BWPs for a cell and may be configured by one or more higher layers (e.g., the RRC layer) per cell, a set of one or more BWPs (e.g., up to four BWPs) for reception by the UE (DL BWP set) within the DL bandwidth with at least one parameter DL-BWP per cell, and a set of one or more BWPs (e.g., up to four BWPs) for reception by the UE (UL BWP set) within the UL bandwidth with at least one parameter UL-BWP per cell.
[0078] To enable BA on the PCell, the base station may configure the UE with one or more UL and DL BWP pairs. To enable BA on the SCell (e.g., in the case of CA), the base station may configure the UE with at least one or more DL BWPs (e.g., there may be none on the UL).
[0079] In one embodiment, the initial active DL BWP may be defined by at least one of the following: a position and number of consecutive PRBs, a subcarrier spacing, or a cyclic prefix, with respect to a control resource set for at least one common search space. For operation on a PCell, the one or more higher layer parameters may indicate at least one initial UL BWP for the random access procedure. If the UE is configured with a secondary carrier on a primary cell, the UE may be configured with an initial BWP for the random access procedure on the secondary carrier.
[0080] In one embodiment, for unpaired spectrum operation, the UE may expect that the center frequency for the DL BWP may be the same as the center frequency for the UL BWP.
[0081] For example, for a DL BWP or a UL BWP in a set of one or more DL BWPs or one or more UL BWPs, respectively, the base station may quasi-statistically configure the UE for the cell with one or more parameters indicative of at least one of: subcarrier spacing, cyclic prefix, number of consecutive PRBs, index within the set of one or more DL BWPs and / or one or more UL BWPs, link between the DL BWP and the UL BWP from the set of configured DL BWPs and UL BWPs, DCI detection relative to PDSCH reception timing, PDSCH reception relative to HARQ-ACK transmission timing value, DCI detection relative to PUSCH transmission timing value, offset of the first PRB of the DL bandwidth or UL bandwidth, respectively, relative to the first PRB of the bandwidth.
[0082] In one embodiment, for a DL BWP in a set of one or more DL BWPs on a PCell, the base station may configure the UE with one or more control resource sets for at least one type of common search space and / or one UE-specific search space. For example, the base station may not configure the UE in an active DL BWP without a common search space on the PCell or on a PSCell.
[0083] If there is a UL BWP in the set of one or more UL BWPs, the base station may configure the UE with one or more resource sets for one or more PUCCH transmissions.
[0084] In one embodiment, if the DCI includes a BWP indicator field, the BWP indicator field value may indicate an active DL BWP from a DL BWP set configured for one or more DL receptions, and if the DCI includes a BWP indicator field, the BWP indicator field value may indicate an active UL BWP from a UL BWP set configured for one or more UL transmissions.
[0085] In one embodiment, for a PCell, the base station may quasi-statistically configure the UE with a default DL BWP among configured DL BWPs. If the UE is not provided with a default DL BWP, the default BWP may become the initial active DL BWP.
[0086] In one embodiment, the base station may configure the UE with a timer value for the PCell. For example, if the UE detects a DCI indicating an active DL BWP other than a default DL BWP for paired spectrum operation, or if the UE detects a DCI indicating an active DL BWP or UL BWP other than a default DL BWP or UL BWP for unpaired spectrum operation, the UE may start a timer called a BWP stop timer. If the UE does not detect a DCI during a period for paired or unpaired spectrum operation, the UE may increment the timer to a first value period (e.g., the first value may be 1 ms or 0.5 ms). In one embodiment, the timer may expire when the timer is equal to the timer value. The UE may switch from the active DL BWP to the default DL BWP when the timer expires.
[0087] In one embodiment, the base station may quasi-statistically configure the UE with one or more BWPs. The UE may switch the active BWP from a first BWP to a second BWP in response to receiving a DCI indicating the second BWP as the active BWP and / or in response to expiration of a BWP stop timer (e.g., the second BWP may become the default BWP). For example, FIG. 10 is an exemplary diagram of three configured BWPs: BWP1 (1010 and 1050), BWP2 (1020 and 1040), and BWP3 (1030). BWP2 (1020 and 1040) may be the default BWP. BWP1 (1010) may be the initial active BWP. In one embodiment, the UE may switch the active BWP from BWP1 1010 to BWP2 1020 in response to expiration of a BWP stop timer. For example, the UE may switch the active BWP from BWP2 1020 to BWP3 1030 in response to receiving a DCI indicating BWP3 1030 as the active BWP. Switching the active BWP from BWP3 1030 to BWP2 1040 and / or from BWP2 1040 to BWP1 1050 may be in response to receiving a DCI indicating an active BWP and / or in response to expiration of a BWP stop timer.
[0088] In one embodiment, if the UE is configured for a secondary cell with a default DL BWP during the configured DL BWP and timer values, the UE procedures in the secondary cell may be the same as the primary cell using the timer values of the secondary cell and the default DL BWP of the secondary cell.
[0089] In one embodiment, if the base station configures the UE with a first active DL BWP and a first active UL BWP on a secondary cell or carrier, the UE may use the indicated DL BWP on the secondary cell and the indicated UL BWP as the first active DL BWP and the first active UL BWP on the secondary cell or carrier, respectively.
[0090] 11A and 11B illustrate packet flows with multiple connections (e.g., dual connections, multiple connections, tight interworking, and / or the like). FIG. 11A is an exemplary diagram of a protocol structure of a wireless device 110 (e.g., UE) with CA and / or multiple connections according to an aspect of an embodiment. FIG. 11B is an exemplary diagram of a protocol structure of multiple base stations with CA and / or multiple connections according to an aspect of an embodiment. The multiple base stations may include a master node, MN 1130 (e.g., a master node, a master base station, a master gNB, a master eNB, and / or the like), and a secondary node, SN 1150 (e.g., a secondary node, a secondary base station, a secondary gNB, a secondary eNB, and / or the like). The master node 1130 and the secondary node 1150 may cooperate to communicate with the wireless device 110.
[0091] When multi-connectivity is configured for the wireless device 110, the wireless device 110 can support multiple receive / transmit functions in an RRC connected state and can be configured to utilize radio resources provided by multiple schedulers of multiple base stations. The multiple base stations can be interconnected via a non-ideal or ideal backhaul (e.g., an Xn interface, an X2 interface, and / or the like). A base station required for multiple connections for a particular wireless device can perform at least one of two different roles, i.e., a base station can function either as a master base station or as a secondary base station. In a multiple connection, the wireless device can connect to one master base station and one or more secondary base stations. In one embodiment, a master base station (e.g., MN 1130) can provide a master cell group (MCG) including one primary cell and / or one or more secondary cells for the wireless device (e.g., wireless device 110). A secondary base station (e.g., SN 1150) can provide a wireless device (e.g., wireless device 110) with one primary secondary cell (PSCell) and / or a secondary cell group (SCG) including one or more secondary cells.
[0092] In multi-connectivity, the radio protocol architecture that a bearer uses may depend on how the bearer is configured. In one embodiment, three different types of bearer configuration options may be supported: MCG bearer, SCG bearer, and / or split bearer. A wireless device may receive / transmit packets of an MCG bearer via one or more cells of an MCG and / or may receive / transmit packets of an SCG bearer via one or more cells of an SCG. Multi-connectivity may also be described as having at least one bearer configured to use radio resources provided by a secondary base station. Multi-connectivity may or may not be configured / implemented in some exemplary embodiments.
[0093] In one embodiment, a wireless device (e.g., wireless device 110) may transmit packets of an MCG bearer via an SDAP layer (e.g., SDAP 1110), a PDCP layer (e.g., NR PDCP 1111), an RLC layer (e.g., MN RLC 1114), and a MAC layer (e.g., MN MAC 1118); packets of a split bearer via an SDAP layer (e.g., SDAP 1110), a PDCP layer (e.g., NR PDCP 1112), one of a master or secondary RLC layer (e.g., MN RLC 1115, SN RLC 1116), and one of a master or secondary MAC layer (e.g., MN MAC 1118, SN MAC 1119); and / or packets of a split bearer via an SDAP layer (e.g., SDAP 1110), a PDCP layer (e.g., NR PDCP 1113), an RLC layer (e.g., SN RLC 1117), and a MAC layer (e.g., MN MAC 1118, SN MAC 1119). The SCG bearer packets can be transmitted and / or received via the MAC 1119.
[0094] In one embodiment, the master base station (e.g., MN 1130) and / or the secondary base station (e.g., SN 1150) transmits packets of the MCG bearer via a master or secondary node SDAP layer (e.g., SDAP 1120, SDAP 1140), a master or secondary node PDCP layer (e.g., NR PDCP 1121, NR PDCP 1142), a master node RLC layer (e.g., MN RLC 1124, MN RLC 1125), and a master node MAC layer (e.g., MN MAC 1128), and transmits packets of the MCG bearer via a master or secondary node SDAP layer (e.g., SDAP 1120, SDAP 1140), a master or secondary node PDCP layer (e.g., NR PDCP 1122, NR PDCP 1143), a secondary node RLC layer (e.g., SN RLC 1146, SN RLC 1147), and a secondary node MAC layer (e.g., SN MAC 1129). The MN can transmit / receive packets of an SCG bearer via a master or secondary node SDAP layer (e.g., SDAP 1120, SDAP 1140), a master or secondary node PDCP layer (e.g., NR PDCP 1123, NR PDCP 1141), a master or secondary node RLC layer (e.g., MN RLC 1126, SN RLC 1144, SN RLC 1145, MN RLC 1127), and a master or secondary node MAC layer (e.g., MN MAC 1128, SN MAC 1148).
[0095] In multi-connection, the wireless device may configure multiple MAC entities, one MAC entity for the master base station (e.g., MN MAC 1118) and another MAC entity for the secondary base station (e.g., SN MAC 1119). In multi-connection, the configured set of serving cells for the wireless device may include two subsets: an MCG that includes the serving cells of the master base station, and an SCG that includes the serving cells of the secondary base station. In the case of an SCG, one or more of the following configurations may be applied: at least one cell of the SCG has a configured UL CC; at least one cell of the SCG, referred to as a primary secondary cell (PSCell, PCell, or possibly PCell of the SCG), is configured with PUCCH resources; if an SCG is configured, there may be at least one SCG bearer or one split bearer; upon detection of a physical layer problem or a random access problem on the PSCell or a number of NR RLC retransmissions arrived associated with the SCG, or upon detection of an access problem for a PSCell during an SCG addition or SCG modification, an RRC connection re-establishment procedure may not be triggered, UL transmissions towards the cells of the SCG may be stopped, the master base station may be notified by the wireless device about the SCG failure type; in case of a split bearer, DL data transfer across the master base station may be maintained; The RLC affirmative mode (AM) bearer may be configured for split bearer, the PCell and / or the PSCell may not be deactivated, the PSCell may be changed using an SCG modification procedure (e.g., using security key modification and RACH procedures), and / or bearer type change between split bearer and SCG bearer, or simultaneous configuration of SCG and split bearer may or may not be supported.
[0096] For the interaction between the master base station and the secondary base station in the case of multiple connections, one or more of the following may apply: the master base station and / or the secondary base station may maintain a radio resource management (RRM) measurement configuration of the wireless device, the master base station may decide (e.g., based on received measurement reports, traffic conditions, and / or bearer types) to request the secondary base station to provide additional resources (e.g., a serving cell) for the wireless device, and upon receiving a request from the master base station, the secondary base station creates / modifies a container that may be a configuration of an additional serving cell for the wireless device (or the secondary base station may use available resources to do so). the secondary base station may determine that the secondary base station does not have an AS, for UE capability coordination, the master base station may provide (part of) the AS configuration and UE capabilities to the secondary base station, the master base station and the secondary base station may exchange information about the UE configuration by using an RRC container (inter-node message) carried via the Xn message, the secondary base station may initiate a reconfiguration of the secondary base station's existing serving cell (e.g., PUCCH towards the secondary base station), the secondary base station may determine which cell is a PSCell in the SCG, the master base station may or may not change the content of the RRC configuration provided by the secondary base station, in case of SCG addition and / or SCG SCell addition, the master base station may provide recent (or latest) measurement results for the SCG cell(s), and the master base station and the secondary base station may receive information of each other's SFN and / or subframe offset from the OAM and / or via the Xn interface (e.g., for the purpose of DRX adjustment and / or measurement gap identification). In one embodiment, when adding a new SCG SCell, dedicated RRC signaling can be used to transmit the requested system information of the cell for CA, except for the SFN obtained from the MIB of the SCG's PSCell.
[0097] 12 is an example diagram of a random access procedure. One or more events can trigger the random access procedure. For example, the one or more events can be at least one of the following: initial access from RRC_IDLE, an RRC connection re-establishment procedure, a handover, DL or UL data arrival during RRC_CONNECTED when the UL synchronization status is not synchronized, a transition from RRC_Inactive, and / or a request for other system information. For example, a PDCCH command, a MAC entity, and / or a beam failure indication can initiate the random access procedure.
[0098] In an exemplary embodiment, the random access procedure may be at least one of a contention-based random access procedure and a contention-free random access procedure. For example, the contention-based random access procedure may include one or more Msg1 1220 transmissions, one or more Msg2 1230 transmissions, one or more Msg3 1240 transmissions, and contention resolution 1250. For example, the contention-free random access procedure may include one or more Msg1 1220 transmissions and one or more Msg2 1230 transmissions.
[0099] In one embodiment, the base station may transmit (eg, unicast, multicast, or broadcast) the RACH configuration 1210 to the UEs via one or more beams. The RACH configuration 1210 may include one or more parameters indicating at least one of the following: an available set of PRACH resources for transmission of a random access preamble, an initial preamble power (e.g., random access preamble initial receive target power), a selection of SS block and an RSRP threshold for the corresponding PRACH resource, a power ramping factor (e.g., random access preamble power ramping step), a random access preamble index, a maximum number of preamble transmissions, preamble group A and group B, a threshold for determining the group of the random access preamble (e.g., message size), one or more random access preambles for a system information request and a corresponding set of PRACH resource(s), if any, one or more random access preambles for a beam failure recovery request and a corresponding set of PRACH resource(s), if any, a time window for monitoring for RA response(s), a time window for monitoring for response(s) on the beam failure recovery request, and / or a contention resolution timer.
[0100] In one embodiment, Msg1 1220 may be one or more transmissions of a random access preamble. In the case of a contention-based random access procedure, the UE may select an SS block having an RSRP above the RSRP threshold. If random access preamble group B is present, the UE may select one or more random access preambles from group A or group B depending on the possible Msg3, 1240 size. If random access preamble group B is not present, the UE may select one or more random access preambles from group A. The UE may randomly (e.g., with equal probability or normal distribution) select a random access preamble index from one or more random access preambles associated with the selected group. If the base station quasi-statistically configures the UE with an association between random access preambles and SS blocks, the UE may randomly select a random access preamble index from one or more random access preambles associated with the selected SS block and the selected group with similar probability.
[0101] For example, the UE may initiate a contention-free random access procedure based on a beam failure indication from a lower layer. For example, the base station may quasi-statistically configure the UE with one or more contention-free PRACH resources for a beam failure recovery request associated with at least one of the SS blocks and / or CSI-RS. If at least one of the SS blocks having an RSRP above a first RSRP threshold among the associated SS blocks or at least one of the CSI-RS having an RSRP above a second RSRP threshold among the associated CSI-RS is available, the UE may select a random access preamble index corresponding to the selected SS block or CSI-RS from a set of one or more random access preambles for the beam failure recovery request.
[0102] For example, the UE may receive a random access preamble index from the base station via PDCCH or RRC for a contention-free random access procedure. If the base station does not configure the UE with at least one contention-free PRACH resource associated with the SS block or CSI-RS, the UE may select a random access preamble index. If the base station configures the UE with one or more contention-free PRACH resources associated with the SS block and at least one SS block with an RSRP above a first RSRP threshold is available in the associated SS block, the UE may select at least one SS block and select a random access preamble corresponding to the at least one SS block. If the base station configures the UE with one or more contention-free PRACH resources associated with the CSI-RS and at least one CSI-RS with an RSRP above a second RSPR threshold is available in the associated CSI-RS, the UE may select at least one CSI-RS and select a random access preamble corresponding to the at least one CSI-RS.
[0103] The UE may perform one or more Msg1 1220 transmissions by transmitting the selected random access preamble. For example, if the UE selects an SS block and is configured with an association between one or more PRACH opportunities and one or more SS blocks, the UE may determine a PRACH opportunity from one or more PRACH opportunities corresponding to the selected SS block. For example, if the UE selects a CSI-RS and is configured with an association between one or more PRACH opportunities and one or more CSI-RS, the UE may determine a PRACH opportunity from one or more PRACH opportunities corresponding to the selected CSI-RS. The UE may transmit the selected random access preamble via the selected PRACH opportunity to the base station. The UE may determine a transmit power for the transmission of the selected random access preamble based on at least the initial preamble power and a power ramping factor. The UE may determine an RA-RNTI associated with the selected PRACH opportunity on which the selected random access preamble is transmitted. For example, the UE may not determine an RA-RNTI for a beam failure recovery request. The UE may determine the RA-RNTI based on at least the index of the first OFDM symbol, the index of the first slot of the selected PRACH opportunity, and / or the uplink carrier index for transmission of Msg1 1220.
[0104] In one embodiment, the UE may receive a random access response, Msg2 1230, from the base station. The UE may start a time window (e.g., ra-ResponseWindow) to monitor the random access response. In the case of a beam failure recovery request, the base station may configure the UE with a different time window (e.g., bfr-ResponseWindow) to monitor the response of the beam failure recovery request. For example, the UE may start the time window (e.g., ra-ResponseWindow or bfr-ResponseWindow) at the start of the first PDCCH opportunity after a fixed duration of one or more symbols from the end of the preamble transmission. If the UE transmits multiple preambles, the UE may start the time window at the start of the first PDCCH opportunity after a fixed duration of one or more symbols from the end of the first preamble transmission. The UE may monitor the cell's PDCCH for at least one random access response identified by the RA-RNTI or at least one response to the beam failure recovery request identified by the C-RNTI while the timer of the time window is running.
[0105] In one embodiment, if at least one random access response includes a random access preamble identifier corresponding to the random access preamble transmitted by the UE, the UE may consider the reception of the random access response as successful. If the reception of the random access response is successful, the UE may consider the contention-free random access procedure to be completed successfully. If the contention-free random access procedure is triggered due to a beam failure recovery request, the UE may consider the contention-free random access procedure to be completed successfully if the PDCCH transmission is addressed to the C-RNTI. In one embodiment, if at least one random access response includes a random access preamble identifier, the UE may consider the random access procedure to be completed successfully, indicating the reception of a positive response to the system information request to the upper layer. If the UE has sent multiple preamble transmissions, the UE may stop transmitting the remaining preambles (if any) in response to the successful reception of the corresponding random access response.
[0106] In one embodiment, the UE may perform one or more Msg3, 1240 transmissions in response to successful reception of a random access response (e.g., in the case of a contention-based random access procedure). The UE may adjust uplink transmission timing based on a timing advanced command indicated by the random access response and may transmit one or more transport blocks based on an uplink grant indicated by the random access response. Subcarrier spacing for PUSCH transmission of Msg3, 1240 may be provided by at least one higher layer (e.g., RRC) parameter. The UE may transmit the random access preamble via the PRACH and Msg3 1240 via the PUSCH on the same cell. The base station may indicate a UL BWP for the PUSCH transmission of Msg3 1240 via the system information block. The UE may use HARQ for retransmission of Msg3 1240.
[0107] In one embodiment, multiple UEs may perform Msg1 1220 by transmitting the same preamble to the base station and may receive the same random access response (e.g., TC-RNTI) from the base station, including the identity. The contention resolution 1250 may ensure that the UE does not mistakenly use the identity of another UE. For example, the contention resolution 1250 may be based on the C-RNTI on the PDCCH or the UE contention resolution identity on the DL-SCH. For example, if the base station assigns a C-RNTI to the UE, the UE may perform the contention resolution 1250 based on receiving a PDCCH transmission addressed to the C-RNTI. In response to detecting the C-RNTI on the PDCCH, the UE may consider the contention resolution 1250 to be successful and the random access procedure to have been completed successfully. If the UE does not have the correct C-RNTI, the contention resolution may be addressed by using the TC-RNTI. For example, if the MAC PDU is successfully decoded and contains a UE contention resolution identity MAC CE that matches the CCCH SDU transmitted in Msg3 1250, the UE may consider the contention resolution 1250 to be successful and the random access procedure to have been completed successfully.
[0108] FIG. 13 is an example structure for a MAC entity according to an aspect of an embodiment of the present disclosure. In one example, a wireless device can be configured to operate in a multi-connection mode. A wireless device in RRC_CONNECTED with multiple RX / TX can be configured to utilize radio resources provided by multiple schedulers located in multiple base stations. The multiple base stations can be connected via a non-ideal or ideal backhaul over an Xn interface. In one example, a base station in the multiple base stations can act as a master base station or as a secondary base station. A wireless device can connect to one master base station and one or more secondary base stations. A wireless device can be configured with multiple MAC entities, e.g., one MAC entity for the master base station and one or more other MAC entities for the secondary base station(s). In one example, a set of serving cells configured for a wireless device can include two subsets, namely, an MCG including the serving cells of the master base station, and one or more SCG including the serving cells of the secondary base station(s). FIG. 13 illustrates an example structure of a MAC entity when an MCG and an SCG are configured for a wireless device.
[0109] In one embodiment, at least one cell in the SCG may have a configured UL CC, and one of the at least one cell may be referred to as a PSCell or PCell of the SCG, or in some cases, simply as a PCell. The PSCell may be configured with PUCCH resources. In one embodiment, if an SCG is configured, there may be at least one SCG bearer, or one split bearer. In one embodiment, upon detecting a physical layer problem or a random access problem on the PSCell, or upon reaching a number of RLC retransmissions associated with the SCG, or upon detecting an access problem on the PSCell during an SCG addition or SCG modification, an RRC connection re-establishment procedure may not be triggered, UL transmissions towards the cells of the SCG may be stopped, and the master base station may be notified by the UE regarding the type of SCG failure and DL data forwarding through the master base station may be maintained.
[0110] In one embodiment, the MAC sublayer can provide services such as data transfer and radio resource allocation to higher layers (e.g., 1310 or 1320). The MAC sublayer can include multiple MAC entities (e.g., 1350 and 1360). The MAC sublayer can provide data transfer services on logical channels. Multiple types of logical channels can be defined to accommodate different kinds of data transfer services. A logical channel can support transfer of a specific type of information. A logical channel type can be defined according to which type of information (e.g., control or data) is transferred. For example, BCCH, PCCH, CCCH, and DCCH can be control channels, and DTCH can be a traffic channel. In one embodiment, a first MAC entity (e.g., 1310) can provide services on PCCH, BCCH, CCCH, DCCH, DTCH, and MAC control elements. In one embodiment, a second MAC entity (e.g., 1320) can provide services on BCCH, DCCH, DTCH, and MAC control elements.
[0111] The MAC sublayer can anticipate services such as data transfer services, signaling of HARQ feedback, signaling of scheduling requests or measurements (e.g., CQI) from the physical layer (e.g., 1330 or 1340). In one embodiment, in dual connectivity, two MAC entities can be configured for the wireless device, i.e., one for the MCG and one for the SCG. The MAC entities of the wireless device can process multiple transport channels. In one embodiment, the first MAC entity can process a first transport channel including a PCCH of the MCG, a first BCH of the MCG, one or more first DL-SCHs of the MCG, one or more first UL-SCHs of the MCG, and one or more first RACHs of the MCG. In one embodiment, the second MAC entity can process a second transport channel including a second BCH of the SCG, one or more second DL-SCHs of the SCG, one or more second UL-SCHs of the SCG, and one or more second RACHs of the SCG.
[0112] In one embodiment, if a MAC entity is configured with one or more SCells, there may be multiple DL-SCHs and multiple UL-SCHs as well as multiple RACHs per MAC entity. In one embodiment, there may be one DL-SCH and UL-SCH for an SpCell. In one embodiment, there may be one DL-SCH, zero or one UL-SCH, and zero or one RACH for an SCell. The DL-SCH may support reception using different numerologies and / or TTI durations within the MAC entity. Also, the UL-SCH may support transmission using different numerologies and / or TTI durations within the MAC entity.
[0113] In one embodiment, the MAC sublayer can support different functions and can control these functions using a control (e.g., 1355 or 1365) element. Functions performed by the MAC entity can include mapping between logical channels and transport channels (e.g., in the uplink or downlink), multiplexing of MAC SDUs from one or different logical channels into transport blocks (TBs) to be delivered to the physical layer on the transport channel (e.g., in the uplink) (e.g., 1352 or 1362), segmentation of MAC SDUs from transport blocks (TBs) delivered from the physical layer on the transport channel (e.g., in the downlink) into one or different logical channels (e.g., 1352 or 1362), scheduling information reporting (e.g., in the uplink), error correction through HARQ in the uplink or downlink (e.g., 1363), and logical channel prioritization in the uplink (e.g., 1351 or 1361). The MAC entity can handle random access processes (e.g., 1354 or 1364).
[0114] FIG. 14 is an exemplary diagram of a RAN architecture including one or more base stations. In one embodiment, a protocol stack (e.g., RRC, SDAP, PDCP, RLC, MAC, and PHY) can be supported at a node. A base station (e.g., gNB 120A or 120B) can include a base station aggregation unit (CU) (e.g., gNB-CU 1420A or 1420B) and, in case of functional division, at least one base station distribution unit (DU) (e.g., gNB-DU 1430A, 1430B, 1430C, or 1430D). The higher protocol layers of the base station can be located in the base station CU, and the lower layers of the base station can be located in the base station DU. The F1 interface (e.g., CU-DU interface) connecting the base station CU and the base station DU can be an ideal or non-ideal backhaul. The F1-C can provide a control plane connection via the F1 interface, and the F1-U can provide a user plane connection via the F1 interface. In one embodiment, an Xn interface can be configured between base stations CU.
[0115] In one embodiment, the base station CU may include an RRC function, an SDA layer, and a PDCP layer, and the base station DU may include an RLC layer, a MAC layer, and a PHY layer. In one embodiment, various functional division options between the base station CU and the base station DU may be enabled by configuring different combinations of upper protocol layers (RAN functions) in the base station CU and different combinations of lower protocol layers (RAN functions) in the base station DU. The functional division supports flexibility and allows protocol layers to be moved between the base station CU and the base station DU depending on service requirements and / or network environment.
[0116] In one embodiment, the functional partitioning options can be configured per base station, per base station CU, per base station DU, per UE, per bearer, per slice, or with other granularity. In per base station CU partitioning, the base station CU can have a fixed partitioning option and the base station DU can be configured to match the partitioning option of the base station CU. In per base station DU partitioning, the base station DU can be configured with different partitioning options and the base station CU can provide different partitioning options for different base station DUs. In UE partitioning, the base station (base station CU and at least one base station DU) can provide different partitioning options for different wireless devices. In per bearer partitioning, different partitioning options can be utilized for different bearers. In per slice splicing, different partitioning options can be applied to different slices.
[0117] 15 is an example diagram illustrating RRC state transitions of a wireless device. In one embodiment, the wireless device may be in at least one RRC state among an RRC connected state (e.g., RRC connected 1530, RRC_Connected), an RRC idle state (e.g., RRC idle 1510, RRC_Idle), and / or an RRC stopped state (e.g., RRC stopped 1520, RRC_Inactive). In one embodiment, in the RRC connected state, the wireless device may have at least one RRC connection with at least one base station (e.g., gNB and / or eNB), which may have the UE context of the wireless device. The UE context (e.g., wireless device context) may include at least one of an access stratum context, one or more radio link configuration parameters, bearer (e.g., data radio bearer (DRB), signaling radio bearer (SRB), logical channel, QoS flow, PDU session, and / or the like) configuration information, security information, PHY / MAC / RLC / PDCP / SDAP layer configuration information, and / or similar configuration information for the wireless device. In one embodiment, in an RRC idle state, the wireless device may not have an RRC connection with a base station, and the UE context of the wireless device may not be stored in the base station. In one embodiment, in an RRC stopped state, the wireless device may not have an RRC connection with a base station. The UE context of the wireless device may be stored in a base station, which may be referred to as an anchor base station (e.g., an ultimate serving base station).
[0118] In one embodiment, the wireless device can transition the UE RRC state in both directions between an RRC idle state and an RRC connected state (e.g., connection release 1540 or connection establishment 1550, or connection re-establishment) and / or between an RRC stopped state and an RRC connected state (e.g., connection stopped 1570 or connection resumed 1580). In one embodiment, the wireless device can transition its RRC state from an RRC stopped state to an RRC idle state (e.g., connection released 1560).
[0119] In one embodiment, the anchor base station may be a base station capable of retaining the UE context (radio device context) of the wireless device at least during the time period during which the wireless device remains in the RAN Notification Area (RNA) of the anchor base station and / or remains in an RRC inactive state. In one embodiment, the anchor base station may be a base station to which the wireless device in an RRC inactive state was last connected in its latest RRC connected state or in which the wireless device last performed an RNA update procedure. In one embodiment, an RNA may include one or more cells operated by one or more base stations. In one embodiment, a base station may belong to one or more RNAs. In one embodiment, a cell may belong to one or more RNAs.
[0120] In one embodiment, the wireless device can transition the UE RRC state from an RRC connected state to an RRC inactive state at the base station. The wireless device can receive RNA information from the base station. The RNA information can include at least one of the RNA identifiers, one or more cell identifiers of one or more cells of the RNA, a base station identifier, an IP address of the base station, an AS context identifier for the wireless device, a resumption identifier, and / or the like.
[0121] In one embodiment, the anchor base station can broadcast a message (e.g., a RAN paging message) to base stations of the RNA to cause wireless devices to reach an RRC stopped state, and / or a base station receiving a message from the anchor base station can broadcast and / or multicast another message (e.g., a paging message) over the air interface to wireless devices within the base station's coverage area, cell coverage area, and / or beam coverage area associated with the RNA.
[0122] In one embodiment, when a wireless device in an RRC inactive state moves into a new RNA, the wireless device may perform an RNA update (RNAU) procedure, which may perform a random access procedure by a wireless device and / or UE context search procedure. The UE context search may include retrieving a random access preamble by the base station from the wireless device, and fetching, by the base station, the UE context of the wireless device from the previous anchor base station. The fetching may include sending a search UE context request message including a resumption identifier to the previous anchor base station, and receiving a search UE context response message including the UE context of the wireless device from the previous anchor base station.
[0123] In an exemplary embodiment, a wireless device in an RRC inactive state can select a cell to camp on based on measurement results for at least one or more cells, where the wireless device can monitor RNA paging messages and / or core network paging messages from a base station. In one embodiment, a wireless device in an RRC stopped state can select a cell to perform a random access procedure and resume an RRC connection and / or transmit one or more packets to a base station (e.g., to a network). In one embodiment, if the selected cell belongs to a different RNA than the RNA for the wireless device in an RRC stopped state, the wireless device can initiate a random access procedure to perform an RNA update procedure. In one embodiment, if a wireless device in an RRC stopped state has one or more packets in a buffer to transmit to the network, the wireless device can initiate a random access procedure to transmit one or more packets to a base station of a cell that the wireless device selects. The random access procedure can be performed between the wireless device and the base station using two messages (e.g., two-stage random access) and / or four messages (e.g., four-stage random access).
[0124] In an example embodiment, a base station receiving one or more uplink packets from a wireless device in an RRC inactive state may fetch a UE context for the wireless device by transmitting a retrieve UE context request message for the wireless device to an anchor base station of the wireless device based on at least one of an AS context identifier, an RNA identifier, a base station identifier, a resumption identifier, and / or a cell identifier received from the wireless device. In response to fetching the UE context, the base station may transmit a path switch request for the wireless device to a core network entity (e.g., an AMF, an MME, and / or the like). The core network entity may update a downlink tunnel endpoint identifier for one or more bearers established for the wireless device between a user plane core network entity (e.g., an UPF, an S-GW, and / or the like) and a RAN node (e.g., a base station), e.g., change the downlink tunnel endpoint identifier from an address of the anchor base station to an address of the base station.
[0125] The gNB may communicate with wireless devices over a wireless network that employs one or more new wireless technologies. The one or more wireless technologies may include at least one of a plurality of technologies for a physical layer, a plurality of technologies for a medium access control layer, and / or a plurality of technologies for a radio resource control layer. Exemplary embodiments that extend the one or more wireless technologies may improve the performance of the wireless network. Exemplary embodiments may increase system throughput, or data transmission rates. Exemplary embodiments may reduce battery consumption of the wireless device. Exemplary embodiments may improve latency of data transmission between the gNB and the wireless device. Exemplary embodiments may improve network coverage of the wireless network. Exemplary embodiments may improve transmission efficiency of the wireless network.
[0126] The gNB may transmit one or more MAC PDUs to the wireless device. In one embodiment, the MAC PDU may be a bit string that is byte-aligned in length (e.g., a multiple of 8 bits). In one embodiment, the bit string may be represented by a table with the most significant bit being the leftmost bit of the first row of the table and the least significant bit being the rightmost bit of the last row of the table. More generally, the bit string is read from left to right and then in row reading order. In one embodiment, the bit order of the parameter field in the MAC PDU is represented with the most significant bit first in the leftmost bit and the least significant bit last in the rightmost bit.
[0127] In one embodiment, the MAC SDU may be a bit string whose length is byte-aligned (eg, a multiple of 8 bits). In one embodiment, the MAC SDU may be included in the MAC PDU after the first bit.
[0128] In one embodiment, the MAC CE may be a bit string whose length is byte-aligned (eg, a multiple of 8 bits).
[0129] In one embodiment, the MAC subheader may be a bit string whose length is byte-aligned (e.g., a multiple of 8 bits). In one embodiment, the MAC subheader may be located immediately before the corresponding MAC SDU, MAC CE, or padding.
[0130] In one embodiment, the MAC entity may ignore the value of the reserved bits in DL MAC PDUs.
[0131] In one embodiment, a MAC PDU may include one or more MAC sub-PDUs, where a MAC sub-PDU includes a MAC sub-header only (including padding), a MAC header and a MAC SDU, a MAC sub-header and a MAC CE, and / or a MAC sub-header and padding. In one embodiment, a MAC SDU may be of variable size. In one embodiment, a MAC sub-header may correspond to a MAC SDU, a MAC CE, or padding.
[0132] In one embodiment, if the MAC subheader corresponds to a MAC SDU, a variable-sized MAC CE, or padding, the MAC subheader may include a 1-bit long R field, a 1-bit long F field, a multi-bit long LCID field, and / or a multi-bit long L field.
[0133] Figure 16A shows an example of a MAC subheader with an R field, an F field, an LCID field, and an L field. In the example MAC subheader of Figure 16A, the LCID field may be 6 bits long and the L field may be 8 bits long. Figure 16B shows an example of a MAC subheader with an R field, an F field, an LCID field, and an L field. In the example MAC subheader of Figure 16B, the LCID field may be 6 bits long and the L field may be 16 bits long.
[0134] In one embodiment, if the MAC subheader corresponds to a fixed size MAC CE or padding, the MAC subheader may include a 2-bit long R field and a multi-bit long LCID field. Figure 16C shows an example of a MAC subheader comprising an R field and an LCID field. In the example MAC subheader of Figure 16C, the LCID field may be 6 bits long and the R field may be 2 bits long.
[0135] Figure 17A shows an example of a DL MAC PDU. In the example of Figure 17A, multiple MAC CEs, such as MAC CE 1 and 2, may be placed together. A MAC sub-PDU containing a MAC CE may be placed before any MAC sub-PDU containing a MAC SDU or a MAC sub-PDU containing padding.
[0136] Figure 17B shows an example of a UL MAC PDU. In the example of Figure 17B, multiple MAC CEs, such as MAC CE 1 and 2, may be placed together. The MAC sub-PDU containing the MAC CE may be placed after all MAC sub-PDUs containing MAC SDUs. In addition, the MAC sub-PDU may be placed before the MAC sub-PDU containing padding.
[0137] In one embodiment, the MAC entity of the gNB may transmit one or more MAC CEs to the MAC entity of the wireless device. Figure 18 illustrates an example of multiple LCIDs that may be associated with one or more MAC CEs. In the example of FIG. 18, the one or more MAC CEs include at least one of an SP ZP CSI-RS resource set activation / deactivation MAC CE, a PUCCH spatial relationship activation / deactivation MAC CE, an SP SRS activation / deactivation MAC CE, an SP CSI report activation / deactivation MAC CE for PUCCH, a UE specific PDCCH TCI status indication MAC CE, a UE specific PDSCH TCI status indication MAC CE, an aperiodic CSI trigger state sub-selection MAC CE, an SP CSI-RS / CSI-IM resource set activation / deactivation MAC CE, a UE contention resolution identity MAC CE, a timing advance command MAC CE, a DRX command MAC CE, a long DRX command MAC CE, an SCell activation / deactivation MAC CE (1 octet), an SCell activation / deactivation MAC CE (4 octets), and / or a duplication activation / deactivation MAC CE. In one embodiment, a MAC CE, such as a MAC CE transmitted by a MAC entity of a gNB to a MAC entity of a wireless device, may have an LCID in a MAC subheader corresponding to the MAC CE. Different MAC CEs may have different LCIDs in a MAC subheader corresponding to the MAC CE. For example, an LCID given by 111011 in a MAC subheader may indicate that the MAC CE associated with the MAC subheader is a long DRX command MAC CE.
[0138] In one embodiment, the MAC entity of the wireless device may transmit one or more MAC CEs to the MAC entity of the gNB. FIG. 19 illustrates an example of the one or more MAC CEs. The one or more MAC CEs may include at least one of a short buffer status report (BSR) MAC CE, a long BSR MAC CE, a C-RNTI MAC CE, a configured authorization confirmation MAC CE, a single-entry PHR MAC CE, a multiple-entry PHR MAC CE, a short barring BSR, and / or a long barring BSR. In one embodiment, the MAC CE may have an LCID in a MAC subheader corresponding to the MAC CE. Different MAC CEs may have different LCIDs in a MAC subheader corresponding to the MAC CE. For example, an LCID given by 111011 in a MAC subheader may indicate that the MAC CE associated with the MAC subheader is a short barring command MAC CE.
[0139] In carrier aggregation (CA), two or more component carriers (CCs) may be aggregated. Using CA techniques, a wireless device may simultaneously receive or transmit on one or more CCs depending on the capabilities of the wireless device. In one embodiment, a wireless device may support CA for adjacent and / or non-adjacent CCs. CCs may be organized into cells. For example, CCs may be organized into one primary cell (PCell) and one or more secondary cells (SCells).
[0140] When configured with CA, the wireless device may have one RRC connection with the network. During RRC connection establishment / re-establishment / handover, the cell providing the NAS mobility information may be the serving cell. During RRC connection re-establishment / handover procedure, the cell providing the security input may be the serving cell. In one embodiment, the serving cell may indicate a PCell. In one embodiment, the gNB may transmit one or more messages to the wireless device including configuration parameters for a plurality of one or more SCells depending on the capabilities of the wireless device.
[0141] When configured with CA, the base station and / or wireless device may use a SCell activation / deactivation mechanism to improve battery or power consumption of the wireless device. When the wireless device is configured with one or more SCells, the gNB may activate or deactivate at least one of the one or more SCells. The SCell may be deactivated unless the SCell state associated with the SCell is set to "activated" or "dormant" upon configuration of the SCell.
[0142] In one embodiment, the wireless device may activate / deactivate the SCell in response to receiving a SCell activation / deactivation MAC CE.
[0143] In one embodiment, the gNB may transmit one or more messages including a SCell timer (e.g., sCellDeactivationTimer) to the wireless device. In one embodiment, the wireless device may deactivate the SCell in response to expiration of the SCell timer.
[0144] When the wireless device receives an SCell activation / deactivation MAC CE that activates the SCell, the wireless device may activate the SCell. In response to the SCell activation, the wireless device may perform operations including SRS transmission on the SCell, CQI / PMI / RI / CRI reporting of the SCell, PDCCH monitoring on the SCell, PDCCH monitoring of the SCell, and / or PUCCH transmission on the SCell.
[0145] In one embodiment, in response to the activation of the SCell, the wireless device may start or restart a first SCell timer (e.g., sCellDeactivationTimer) associated with the SCell. The wireless device may start or restart the first SCell timer in a slot when a SCell activation / deactivation MAC CE is received that activates the SCell. In one embodiment, in response to the activation of the SCell, the wireless device may (re)initialize one or more suspended configured uplink grants of configured grant type 1 associated with the SCell according to a stored configuration. In one embodiment, in response to the activation of the SCell, the wireless device may trigger a PHR.
[0146] When the wireless device receives a SCell activation / deactivation MAC CE that deactivates the activated SCell, the wireless device may deactivate the activated SCell. In one embodiment, when a first SCell timer (e.g., sCellDeactivationTimer) associated with the activated SCell expires, the wireless device may deactivate the activated SCell. In response to the deactivation of the activated SCell, the wireless device may stop the first SCell timer associated with the activated SCell. In one embodiment, in response to the deactivation of the activated SCell, the wireless device may clear one or more configured downlink assignments and / or one or more configured uplink grants of the configured uplink grant type 2 associated with the activated SCell. In one embodiment, in response to the deactivation of the activated SCell, the wireless device may suspend one or more configured uplink grants of the configured uplink grant type 1 associated with the activated SCell and / or flush the HARQ buffer associated with the activated SCell.
[0147] In one example, when an SCell is deactivated, the wireless device may not perform operations including transmitting an SRS on the SCell, reporting CQI / PMI / RI / CRI of the SCell, transmitting on a UL-SCH on the SCell, transmitting on a RACH on the SCell, monitoring at least one first PDCCH on the SCell, monitoring at least one second PDCCH on the SCell, and / or transmitting a PUCCH on the SCell.
[0148] In one embodiment, when at least one first PDCCH on an activated SCell indicates an uplink grant or a downlink assignment, the wireless device may restart a first SCell timer (e.g., sCellDeactivationTimer) associated with the activated SCell. In one embodiment, when at least one second PDCCH on a serving cell (e.g., a PCell or a SCell configured with a PUCCH, i.e., a PUCCH SCell) scheduling the activated SCell indicates an uplink grant or a downlink assignment for the activated SCell, the wireless device may restart a first SCell timer (e.g., sCellDeactivationTimer) associated with the activated SCell.
[0149] In one embodiment, when a SCell is deactivated, if there is an ongoing random access procedure on the SCell, the wireless device may abort the ongoing random access procedure on the SCell.
[0150] Figure 20A shows an example of a one-octet SCell activation / deactivation MAC CE. A first MAC PDU subheader with a first LCID (e.g., "111010" as shown in Figure 18) may identify the one-octet SCell activation / deactivation MAC CE. The size of the one-octet SCell activation / deactivation MAC CE may be constant. The one-octet SCell activation / deactivation MAC CE may include a single octet. The single octet may include a first number C field (e.g., 7) and a second number R field (e.g., 1).
[0151] Figure 20B shows an example of a 4-octet SCell activation / deactivation MAC CE. A second MAC PDU subheader with a second LCID (e.g., "111001" as shown in Figure 18) may identify the 4-octet SCell activation / deactivation MAC CE. The size of the 4-octet SCell activation / deactivation MAC CE may be constant. The 4-octet SCell activation / deactivation MAC CE may include 4 octets. The 4 octets may include a third number C field (e.g., 31) and a fourth number R field (e.g., 1).
[0152] In FIG. 20A and / or FIG. 20B, when a SCell having SCell index i is configured, C i The field may indicate the activation / deactivation status of the SCell with SCell index i. i When the field is set to 1, the SCell with SCell index i may be activated. i When the field is set to zero, the SCell with SCell index i may be deactivated. In one embodiment, if there is no SCell configured with SCell index i, the wireless device iThe R field may be ignored. In Figures 20A and 20B, the R field may indicate reserved bits. The R field may be set to zero.
[0153] When configured with CA, the base station and / or wireless device may use a hibernation mechanism for the SCell to improve battery or power consumption of the wireless device and / or to improve latency of SCell activation / addition. When the wireless device hibernates the SCell, the SCell may transition to a dormant state. In response to the SCell transitioning to a dormant state, the wireless device may stop transmitting SRS on the SCell, may report the CQI / PMI / RI / PTI / CRI of the SCell according to a periodicity configured for the dormant SCell, may not transmit on the UL-SCH on the SCell, may not transmit on the RACH on the SCell, may not monitor the PDCCH on the SCell, may not monitor the PDCCH on the SCell, and / or may not transmit the PUCCH on the SCell. In one embodiment, reporting the CSI of the SCell and not monitoring the PDCCH on / for the SCell when the SCell is in a dormant state may provide the base station with constantly updated CSI of the SCell. With constantly updated CSI, when the SCell transitions back to the active state, the base station can use fast and / or accurate channel adaptive scheduling on the SCell, thereby speeding up the activation procedure of the SCell. In one embodiment, reporting the CSI of the SCell and not monitoring the PDCCH on / for the SCell when the SCell is in a dormant state may improve battery or power consumption of the wireless device while providing timely and / or accurate channel information feedback to the base station. In one embodiment, the PCell / PSCell and / or PUCCH secondary cells may not be configured or may not have transitioned to a dormant state.
[0154] When configured with one or more SCells, the gNB can activate, hibernate, or deactivate at least one of the one or more SCells. In one embodiment, the gNB can transmit one or more RRC messages to the wireless device that include a parameter indicating that the at least one SCell is set to an active state, a dormant state, or a suspended state.
[0155] In one embodiment, when the SCell is in an active state, the wireless device may perform SRS transmission on the SCell, CQI / PMI / RI / CRI reporting on the SCell, PDCCH monitoring on the SCell, PDCCH monitoring on the SCell, and / or PUCCH / SPUCCH transmission on the SCell.
[0156] In one embodiment, when the SCell is in a stopped state, the wireless device may not transmit SRS on the SCell, may not report CQI / PMI / RI / CRI of the SCell, may not transmit on UL-SCH on the SCell, may not transmit on RACH on the SCell, may not monitor PDCCH on the SCell, may not monitor PDCCH of the SCell, and / or may not transmit PUCCH / SPUCCH on the SCell.
[0157] In one embodiment, when the SCell is in a dormant state, the wireless device may not transmit SRS on the SCell, may report CQI / PMI / RI / CRI for the SCell, may not transmit on UL-SCH on the SCell, may not transmit on RACH on the SCell, may not monitor PDCCH on the SCell, may not monitor PDCCH on the SCell, and / or may not transmit PUCCH / SPUCCH on the SCell.
[0158] When configured with one or more SCells, the gNB may activate, hibernate, or deactivate at least one of the one or more SCells. In one embodiment, the gNB may transmit one or more MAC control elements to the wireless device that include parameters indicating the activation, deactivation, or dormancy state of the at least one SCell.
[0159] In one embodiment, the gNB may transmit a first MAC CE (e.g., an activation / deactivation MAC CE as shown in FIG. 20A or FIG. 20B) indicating activation or deactivation of at least one SCell to a wireless device. In FIG. 20A and / or FIG. 20B, when a SCell with SCell index i is configured, C i The field may indicate the activation / deactivation status of the SCell with SCell index i. i When the field is set to 1, the SCell with SCell index i may be activated. i When the field is set to zero, the SCell with SCell index i may be deactivated. In one embodiment, if there is no SCell configured with SCell index i, the wireless device i In Figures 20A and 20B, the R field may indicate reserved bits. In one embodiment, the R field may be set to zero.
[0160] In one embodiment, the gNB may transmit a second MAC CE (e.g., a hibernation MAC CE) indicating activation or hibernation of at least one SCell to the wireless device. In one embodiment, the second MAC CE may be associated with a second LCID (e.g., an activation / deactivation MAC CE) that is different from the first LCID of the first MAC CE. In one embodiment, the second MAC CE may have a fixed size. In one embodiment, the second MAC CE may consist of a single octet including 7 C fields and an R field. FIG. 21A illustrates an example of a second MAC CE comprising a single octet. In another embodiment, the second MAC CE may consist of 4 octets including 31 C fields and an R field. FIG. 21B illustrates an example of a second MAC CE having 4 octets. In one embodiment, the second MAC CE having 4 octets may be associated with a third LCID different from the second LCID of the second MAC CE having a single octet and / or the first LCID of the activation / deactivation MAC CE. In one embodiment, if there is no SCell with a serving cell index greater than 7, the second MAC CE with 1 octet may be applied, otherwise the second MAC CE with 4 octets may be applied.
[0161] In one embodiment, if the second MAC CE is received and the first MAC CE is not received, C i may indicate the dormant / activated status of the SCell with SCell index i if there is a SCell configured with SCell index i, otherwise the MAC entity may i In one embodiment, the C i If C is set to "1", the wireless device may transition the SCell associated with the SCell index i to a dormant state. i If C is set to '0', the wireless device may activate the SCell associated with SCell index i. iIf C is set to '0' and the SCell with SCell index i is in a dormant state, the wireless device may activate the SCell with SCell index i. i is set to '0' and the SCell with SCell index i is not in a dormant state, the wireless device i The field can be ignored.
[0162] In one embodiment, when both the first MAC CE (activation / deactivation MAC CE) and the second MAC CE (hibernation MAC CE) are received, the two C i The field may indicate possible state transitions of an SCell with SCell index i, if there is an SCell configured with SCell index i, and the MAC entity may i In one embodiment, the C of the two MAC CEs can be ignored. i The fields may be interpreted according to FIG. 21C.
[0163] When configured with one or more SCells, the gNB may activate, hibernate, or deactivate at least one of the one or more SCells. In one embodiment, the gNB and / or a MAC entity of the wireless device may maintain a SCell deactivation timer (e.g., sCellDeactivationTimer) for each configured SCell (excluding PUCCH / SPUCCH configured SCells, if any) and deactivate the associated SCell upon its expiration.
[0164] In one embodiment, the MAC entity of the gNB and / or wireless device may maintain a SCell hibernation timer (e.g., sCellHibernationTimer) for each configured SCell (except for PUCCH / SPUCCH configured SCells, if any), and may hibernate the associated SCell upon SCell hibernation timer expiration if the SCell is in an active state. In one embodiment, if both the SCell deactivation timer and the SCell hibernation timer are configured, the SCell hibernation timer may take precedence over the SCell deactivation timer. In one embodiment, if both the SCell deactivation timer and the SCell hibernation timer are configured, the gNB and / or wireless device may ignore the SCell deactivation timer regardless of the SCell deactivation timer expiration.
[0165] In one embodiment, the gNB and / or a MAC entity of the wireless device may maintain a dormant SCell deactivation timer (e.g., dormantSCellDeactivationTimer) for each configured SCell (excluding PUCCH / SPUCCH configured SCells, if any), and may deactivate the associated SCell upon expiration of the dormant SCell deactivation timer if the SCell is in a dormant state.
[0166] In one embodiment, if the MAC entity of the wireless device is configured with an SCell that was activated during SCell configuration, the MAC entity may activate the SCell. In one embodiment, if the MAC entity of the wireless device receives a MAC CE that activates the SCell, the MAC entity may activate the SCell. In one embodiment, the MAC entity may start or restart a SCell deactivation timer associated with the SCell in response to activating the SCell. In one embodiment, the MAC entity may start or restart a SCell hibernation timer (if configured) associated with the SCell in response to activating the SCell. In one embodiment, the MAC entity may trigger a PHR procedure in response to activating the SCell.
[0167] In one example, if a MAC entity of a wireless device receives MAC CE(s) indicating to deactivate a SCell, the MAC entity may deactivate the SCell. In one example, in response to receiving the MAC CE(s), the MAC entity may deactivate the SCell, stop a SCell deactivation timer associated with the SCell, and / or flush all HARQ buffers associated with the SCell.
[0168] In one embodiment, if a SCell deactivation timer associated with an activated SCell expires and a SCell hibernation timer is not configured, the MAC entity may stop the SCell deactivation timer associated with the SCell and / or may flush all HARQ buffers associated with the SCell.
[0169] In one embodiment, when a first PDCCH on an activated SCell indicates an uplink grant or a downlink assignment, or a second PDCCH on a serving cell scheduling the activated SCell indicates an uplink grant or a downlink assignment for the activated SCell, or a MAC PDU is transmitted with a configured uplink grant or received with a configured downlink assignment, the MAC entity may restart a SCell deactivation timer associated with the SCell and / or, if configured, may restart a SCell hibernation timer associated with the SCell. In one embodiment, when a SCell is deactivated, an ongoing random access procedure on the SCell may be aborted.
[0170] In one example, when a MAC entity is configured with an SCell associated with a SCell state that was set to dormant during SCell configuration or when the MAC entity receives MAC CE(s) indicating to transition the SCell to dormant, the MAC entity may transition the SCell to dormant, transmit one or more CSI reports for the SCell, stop a SCell deactivation timer associated with the SCell, if configured, stop a SCell hibernation timer associated with the SCell, start or restart a dormant SCell deactivation timer associated with the SCell, and / or flush all HARQ buffers associated with the SCell. In one example, in response to receiving an indication indicating to transition the SCell to dormant, the wireless device may transition the SCell to dormant, transmit one or more CSI reports for the SCell, stop a SCell deactivation timer associated with the SCell, if configured, stop a SCell hibernation timer associated with the SCell, start or restart a dormant SCell deactivation timer associated with the SCell, and / or flush all HARQ buffers associated with the SCell. In one embodiment, if a SCell hibernation timer associated with an activated SCell expires, the MAC entity may hibernate the SCell, stop a SCell deactivation timer associated with the SCell, stop a SCell hibernation timer associated with the SCell, and / or flush all HARQ buffers associated with the SCell. In one embodiment, if a dormant SCell deactivation timer associated with a dormant SCell expires, the MAC entity may deactivate the SCell and / or stop a dormant SCell deactivation timer associated with the SCell.In one embodiment, when the SCell is in a dormant state, an ongoing random access procedure on the SCell may be aborted.
[0171] FIG. 22 illustrates an example DCI format for 20 MHz FDD operation with two Tx antennas at the base station and no carrier aggregation for the LTE system. In an NR system, the DCI format may include at least one of DCI format 0_0 / 0_1 indicating scheduling of PUSCH in the cell, DCI format 1_0 / 1_1 indicating scheduling of PDSCH in the cell, DCI format 2_0 informing a group of UEs of a slot format, DCI format 2_1 informing a group of UEs of PRB(s) and OFDM symbol(s) that the UE may assume the UE does not intend to transmit, DCI format 2_2 indicating transmission of TPC commands for PUCCH and PUSCH, and / or DCI format 2_3 indicating transmission of a group of TPC commands for SRS transmission by one or more UEs. In one embodiment, the gNB may transmit DCI over the PDCCH for scheduling decisions and power control requests. More specifically, the DCI may include at least one of a downlink scheduling assignment, an uplink scheduling grant, and a power control command. The downlink scheduling assignment may include at least one of a PDSCH resource indication, a transport format, HARQ information, control information related to a multi-antenna scheme, and a command for power control of a PUCCH used for transmitting an ACK / NACK in response to the downlink scheduling assignment. The uplink scheduling grant may include at least one of a PUSCH resource indication, a transport format, HARQ related information, and a power control command for a PUSCH.
[0172] In one embodiment, different types of control information correspond to different DCI message sizes. For example, to support spatial multiplexing with non-contiguous allocation of RBs in the frequency domain, larger scheduling messages may be required compared to uplink grants, which may only allow frequency-contiguous allocation. DCI may be classified into different DCI formats when the formats correspond to specific message sizes and usages.
[0173] In one embodiment, the UE may monitor one or more PDCCH candidates to detect one or more DCIs having one or more DCI formats. The one or more PDCCHs may be transmitted in a common search space or a UE-specific search space. The UE may monitor a PDCCH having only a limited set of DCI formats to save power consumption. For example, a normal UE may not need to detect a DCI having DCI format 6, which is used for eMTC UEs. The more DCI formats to be detected, the more power is consumed at the UE.
[0174] In one embodiment, one or more PDCCH candidates that a UE monitors may be defined in terms of a PDCCH UE-specific search space. A PDCCH UE-specific search space for a CCE aggregation level L ∈ {1, 2, 4, 8} may be defined by a set of PDCCH candidates for the CCE aggregation level L. In one embodiment, for a DCI format, a UE may be configured per serving cell with one or more higher layer parameters for a number of PDCCH candidates per CCE aggregation level L.
[0175] In one embodiment, in a non-DRX mode operation, the UE may be configured with one or more higher layer parameters for a control resource set q. PDCCH,q According to the symbol periodicity, one or more PDCCH candidates of the control resource set q may be monitored.
[0176] In one embodiment, the information of the DCI format used for downlink scheduling may be organized into different groups with fields that exist differently between DCI formats, and includes at least one of the following: carrier indicator (0 or 3 bits), resource information consisting of RB allocation, HARQ process number, MCS, NDI, and RV (for the first TB), MCS, NDI, and RV (for the second TB), MIMO related information, PDSCH resource element mapping and QCI, downlink allocation index (DAI), TPC of PUCCH, SRS request (1 bit), trigger for one-shot SRS transmission, ACK / NACK offset, DCI format 0 / 1A indication used to distinguish DCI format 1A from DCI format 0, and padding as needed. The MIMO related information may include at least one of the following: PMI, precoding information, transport block swap flag, power offset between PDSCH and reference signal, reference signal scrambling sequence, number of layers, and / or antenna port for transmission.
[0177] In one embodiment, the information of the DCI format used for uplink scheduling can be organized into different groups with fields that exist differently between DCI formats, and includes at least one of the following: resource information consisting of carrier indicator, resource allocation type, RB allocation, MCS, NDI (for the first TB), MCS, NDI (for the second TB), phase rotation of the uplink DMRS, precoding information, a CSI request to request aperiodic CSI reporting, an SRS request (2 bits) used to trigger aperiodic SRS transmission using one of up to three preconfigured settings, uplink index / DAI, TPC of PUSCH, DCI format 0 / 1A indication, and padding as needed.
[0178] In one embodiment, the gNB may perform cyclic redundancy check (CRC) scrambling on the DCI before transmitting the DCI over the PDCCH. The gNB may perform the CRC by bitwise addition (or modulo 2 addition or exclusive OR (XOR) operation) of multiple bits of at least one wireless device identifier (e.g., C-RNTI, CS-RNTI, TPC-CS- RNTI, TPC-PUCCH-RNTI, TPC-PUSCH-RNTI, SP CSI C-RNTI, SRS-TPC-RNTI, INT-RNTI, SFI-RNTI, P-RNTI, SI-RNTI, RA-RNTI, and / or MCS-C-RNTI) with the CRC bits of the DCI. Upon detecting the DCI, the wireless device may check the CRC bits of the DCI. The wireless device may receive the DCI when the CRC is scrambled by a sequence of bits that is the same as the at least one wireless device identifier.
[0179] In an NR system, to support wide bandwidth operation, a gNB may transmit one or more PDCCHs on different control resource sets. The gNB may transmit one or more RRC messages including configuration parameters for one or more control resource sets. At least one of the one or more control resource sets may include at least one of an initial OFDM symbol, a number of consecutive OFDM symbols, a set of resource blocks, a CCE to REG mapping, and a REG bundle size in case of interleaved CCE to REG mapping.
[0180] A base station (gNB) may configure a wireless device (UE) with an uplink (UL) bandwidth portion (BWP) and a downlink (DL) BWP to enable bandwidth adaptation (BA) on a PCell. If carrier aggregation is configured, the gNB may further configure the UE with at least DL BWP(s) to enable BA on a SCell (i.e., there may be no UL BWP on the UL). For a PCell, the initial active BWP may be the first BWP used for initial access. For a SCell, the first active BWP may be the second BWP that the UE is configured to operate on the SCell when the SCell is activated.
[0181] In paired spectrum (e.g., FDD), the gNB and / or UE can switch between DLBWP and ULBWP individually. In unpaired spectrum (e.g., TDD), the gNB and / or UE can switch between DLBWP and ULBWP simultaneously.
[0182] In one embodiment, the gNB and / or UE can switch BWPs between configured BWPs via a DCI or a BWP stop timer. If a BWP stop timer is configured for a serving cell, the gNB and / or UE can switch the active BWP to a default BWP in response to expiration of a BWP stop timer associated with the serving cell. The default BWP can be configured by the network.
[0183] In one embodiment, for an FDD system, when configured with a BA, one UL BWP and one DL BWP for each uplink carrier may be active simultaneously in an active serving cell. In one embodiment, for a TDD system, one DL / UL BWP pair may be active simultaneously in an active serving cell. Operating with one UL BWP and one DL BWP (or one DL / UL pair) may improve the battery consumption of the UE. BWPs other than the one active ULBWP and one active DL BWP in which the UE may operate may be deactivated. In the deactivated BWPs, the UE may not monitor the PDCCH and / or may not transmit on the PUCCH, PRACH, and UL-SCH.
[0184] In one embodiment, a serving cell may be configured with up to a first number (e.g., four) of BWPs. In one embodiment, for an activated serving cell, there may be one active BWP at any point.
[0185] In one embodiment, the BWP switching of the serving cell can be used to simultaneously activate an inactive BWP and deactivate an active BWP. In one embodiment, the BWP switching can be controlled by a PDCCH indicating a downlink assignment or an uplink grant. In one embodiment, the BWP switching can be controlled by a BWP inactivity timer (e.g., bwp-InactivityTimer). In one embodiment, the BWP switching can be controlled by a MAC entity in response to initiating a random access procedure. Upon addition of a SpCell or activation of a SCell, one BWP may be initially active without receiving a PDCCH indicating a downlink assignment or an uplink grant. The active BWP of the serving cell can be indicated in the RRC and / or PDCCH. In one embodiment, for unpaired spectrum, a DL BWP can be paired with a UL BWP, and the BWP switching can be common to both UL and DL.
[0186] FIG. 23 illustrates an example of BWP switching on a SCell. In one embodiment, the UE may receive an RRC message including parameters of the SCell and one or more BWP configurations associated with the SCell. The RRC message may include an RRC connection reconfiguration message (e.g., RRCReconfiguration), an RRC connection re-establishment message (e.g., RRCRestablishment), and / or an RRC connection setup message (e.g., RRCSetup). Of the one or more BWPs, at least one BWP may be configured as a first active BWP (e.g., BWP1 in FIG. 23) and one BWP may be configured as a default BWP (e.g., BWP0 in FIG. 23). The UE may receive a MAC CE to activate the SCell at the n-th slot. The UE may start a SCell deactivation timer (e.g., sCellDeactivationTimer), initiate CSI-related actions for the SCell, and / or initiate CSI-related actions for the first active BWP of the SCell. In response to activating the SCell, the UE may start monitoring the PDCCH on BWP1.
[0187] In one embodiment, the UE may restart a BWP inactivity timer (e.g., bwp-InactivityTimer) at the mth slot in response to receiving a DCI indicating DL allocation on BWP1. The UE may switch back to a default BWP (e.g., BWP0) as the active BWP at the sth slot if the BWP inactivity timer expires. The UE may deactivate the SCell and / or stop the BWP inactivity timer if the sCellDeactivationTimer expires.
[0188] The BWP stop timer can further reduce the power consumption of the UE when the UE is configured with multiple cells and each cell has a wide bandwidth (e.g., 1 GHz). The UE can transmit on or receive from a narrow bandwidth BWP (e.g., 5 MHz) on a PCell or SCell only if there is no activity on the active BWP.
[0189] In one embodiment, the MAC entity may apply normal operations to an active BWP of an activated serving cell configured in the BWP, including transmitting on UL-SCH, transmitting on RACH, monitoring PDCCH, transmitting PUCCH, receiving DL-SCH, and / or (re)initializing a suspended configured uplink grant of configured grant type 1, if any, according to a stored configuration.
[0190] In one embodiment, on an inactive BWP of each activated serving cell configured in the BWP, the MAC entity may not transmit on the RACH, may not monitor the PDCCH, may not transmit the PUCCH, may not transmit the SRS, may not receive the DL-SCH, may clear any configured downlink assignments and configured uplink grants of configured grant type 2, and / or may suspend any configured uplink grants of configured type 1.
[0191] In one embodiment, when the MAC entity receives a PDCCH for BWP switching of a serving cell, the UE may perform BWP switching to the BWP indicated by the PDCCH while a random access procedure associated with this serving cell is not in progress.
[0192] In one embodiment, if the bandwidth fraction indicator field is configured with DCI format 1_1, the bandwidth fraction indicator field value may indicate an active DL BWP from a configured DL BWP set for DL reception. In one embodiment, if the bandwidth fraction indicator field is configured with DCI format 0_1, the bandwidth fraction indicator field value may indicate an active UL BWP from a configured UL BWP set for UL transmission.
[0193] In one embodiment, for the primary cell, the UE may be provided with a default DL BWP among the DL BWPs configured for the UE by the higher layer parameter Default-DL-BWP. In one embodiment, if the UE is not provided with a default DL BWP by the higher layer parameter Default-DL-BWP, the default DL BWP may be the initial active DL BWP.
[0194] In one embodiment, the UE may be provided with an upper layer parameter bwp-InactivityTimer, which is a timer value for the primary cell. If configured, the UE may increment the timer every 1 ms interval for frequency range 1 and every 0.5 ms for frequency range 2 if running, if the UE is unable to detect DCI format 1_1 for paired spectrum operation, or if the UE is unable to detect DCI format 1_1 or DCI format 0_1 for unpaired spectrum operation during the interval.
[0195] In one embodiment, if a UE is configured for a secondary cell with higher layer parameter Default-DL-BWP indicating a default DL BWP among the configured DL BWPs, and the UE is configured with higher layer parameter bwp-InactivityTimer indicating a timer value, the UE procedures on the secondary cell may be the same as those on a primary cell using the timer value for the secondary cell and the default DL BWP for the secondary cell.
[0196] In one example, if a UE is configured with higher layer parameters Active-BWP-DL-SCell being the first active DL BWP on a secondary cell or carrier, and with higher layer parameters Active-BWP-UL-SCell being the first active UL BWP, the UE may use the indicated DL BWP on the secondary cell and the indicated UL BWP as the first active DL BWP and the first active UL BWP on the secondary cell or carrier, respectively.
[0197] In one embodiment, the wireless device may transmit one or more uplink control information (UCI) to the base station over one or more PUCCH resources. The one or more UCI may include at least one of HARQ-ACK information, a scheduling request (SR), and / or a CSI report. In one embodiment, the PUCCH resource may be identified by a PUCCH format associated with at least a frequency location (e.g., starting PRB), and / or an initial cyclic shift of the base sequence and a time domain location (e.g., starting symbol index). In one embodiment, the PUCCH format may be PUCCH format 0, PUCCH format 1, PUCCH format 2, PUCCH format 3, or PUCCH format 4. PUCCH format 0 may have a length of 1 or 2 OFDM symbols and may be 2 bits or less. PUCCH format 1 may occupy a number of OFDM symbols between 4 and 14 and may be 2 bits or less. PUCCH format 2 may occupy 1 or 2 OFDM symbols and may be greater than 2 bits. PUCCH format 3 may occupy a number of OFDM symbols between 4 and 14 and may be larger than 2 bits. PUCCH format 4 may occupy a number of OFDM symbols between 4 and 14 and may be larger than 2 bits. PUCCH resources may be configured on a PCell or on a PUCCH secondary cell.
[0198] In one example, when configured with multiple uplink BWPs, the base station may transmit one or more RRC messages including configuration parameters for one or more PUCCH resource sets (e.g., up to four sets) to the wireless device in the uplink BWP of the multiple uplink BWPs. Each PUCCH resource set may be configured with a PUCCH resource set index, a list of PUCCH resources where each PUCCH resource is identified by a PUCCH resource identifier (e.g., pucch-Resourceid), and / or a maximum number of UCI information bits that the wireless device may transmit using one of the multiple PUCCH resources in the PUCCH resource set.
[0199] In one embodiment, when configured with one or more PUCCH resource sets, the wireless device may select one of the one or more PUCCH resource sets based on a total bit length of UCI information bits (e.g., HARQ-ARQ bits, SR, and / or CSI) that the wireless device may transmit. In one embodiment, when the total bit length of the UCI information bits is less than or equal to 2, the wireless device may select a first PUCCH resource set having a PUCCH resource set index equal to "0". In one embodiment, when the total bit length of the UCI information bits is greater than 2 and less than or equal to a first configuration value, the wireless device may select a second PUCCH resource set having a PUCCH resource set index equal to "1". In one embodiment, when the total bit length of the UCI information bits is greater than a first configuration value and less than or equal to a second configuration value, the wireless device may select a third PUCCH resource set having a PUCCH resource set index equal to "2". In one embodiment, when the total bit length of the UCI information bits is greater than the second configuration value and less than or equal to a third value (e.g., 1706), the wireless device may select a fourth PUCCH resource set whose PUCCH resource set is equal to "3".
[0200] In one embodiment, the wireless device may determine a PUCCH format from a plurality of PUCCH formats including PUCCH format 0, PUCCH format 1, PUCCH format 2, PUCCH format 3, and / or PUCCH format 4 based on the number of uplink symbols and the number of UCI bits of the UCI transmission. In one embodiment, if the transmission is more than one symbol or two symbols and the number of HARQ-ACK information bits with positive or negative SR (HARQ-ACK / SR bits) is one or two, the wireless device may transmit UCI on a PUCCH using PUCCH format 0. In one embodiment, if the transmission is more than four symbols or more and the number of HARQ-ACK / SR bits is one or two, the wireless device may transmit UCI on a PUCCH using PUCCH format 1. In one embodiment, if the transmission is more than one symbol or two symbols and the number of UCI bits is more than two, the wireless device may transmit UCI on a PUCCH using PUCCH format 2. In one embodiment, if the transmission is more than four symbols, and the number of UCI bits is greater than two, and the PUCCH resource does not include an orthogonal cover code, the wireless device may transmit UCI on a PUCCH using PUCCH format 3. In one embodiment, if the transmission is more than four symbols, and the number of UCI bits is greater than two, and the PUCCH resource includes an orthogonal cover code, the wireless device may transmit UCI on a PUCCH using PUCCH format 4.
[0201] In one embodiment, to transmit the HARQ-ACK information on the PUCCH resource, the wireless device may determine a PUCCH resource from a PUCCH resource set. The PUCCH resource set may be determined as described above. The wireless device may determine the PUCCH resource based on a PUCCH resource indicator field in a DCI (e.g., having a DCI for DCI format 1_0 or 1_1) received on a PDCCH. The 3-bit PUCCH resource indicator field in the DCI may indicate one of the eight PUCCH resources in the PUCCH resource set. The wireless device may transmit the HARQ-ACK information on the PUCCH resource indicated by the 3-bit PUCCH resource indicator field of the DCI.
[0202] In one embodiment, the wireless device may transmit one or more UCI bits over a PUCCH resource of an active uplink BWP of a PCell or a PUCCH secondary cell. Since at most one active uplink BWP in a cell is supported for a wireless device, the PUCCH resource indicated in the DCI is naturally a PUCCH resource on the active uplink BWP of the cell.
[0203] In one embodiment, DRX operation may be used by a wireless device (UE) to improve the battery life of the UE. In one embodiment, in DRX, the UE may discontinuously monitor a downlink control channel, e.g., PDCCH or EPDCCH. In one embodiment, the base station may configure the DRX operation with a set of DRX parameters, e.g., using an RRC configuration. The set of DRX parameters may be selected based on an application type so that the wireless device can reduce power and resource consumption. In one embodiment, in response to DRX being configured / activated, the UE may be in a DRX sleep / off state upon data arrival at the UE, and the base station may wait until the UE transitions to a DRX ON state, so that data packets may be received with an extended delay.
[0204] In one embodiment, during DRX mode, if no packets are received, the UE may power down most of its circuits. The UE may monitor the PDCCH discontinuously in DRX mode. If DRX operation is not configured, the UE may monitor the PDCCH continuously. During this time, the UE listens to the downlink (DL) (or monitors the PDCCH), which is called the DRX active state. In DRX mode, the time when the UE is not listening / monitoring the PDCCH is called the DRX sleep state.
[0205] FIG. 24 illustrates an example of an embodiment. The gNB may transmit an RRC message including one or more DRX parameters of a DRX cycle. The one or more parameters may include a first parameter and / or a second parameter. The first parameter may indicate a first time value (e.g., DRX on duration) of a DRX active state of the DRX cycle. The second parameter may indicate a second time value (e.g., DRX off duration) of a DRX sleep state of the DRX cycle. The one or more parameters may further include a duration of the DRX cycle. During the DRX active state, the UE may monitor a PDCCH to detect one or more DCIs on the serving cell. During the DRX sleep state, the UE may stop monitoring a PDCCH on the serving cell. If multiple cells are in the active state, the UE may monitor all PDCCHs on (or for) the multiple cells during the DRX active state. During the DRX off duration, the UE may stop monitoring all PDCCHs on (or for) the multiple cells. The UE may repeat the DRX operation according to one or more DRX parameters.
[0206] In one embodiment, DRX may be beneficial to a base station. In one embodiment, if DRX is not configured, a wireless device may be transmitting periodic CSI and / or SRS frequently (e.g., based on a configuration). With DRX, during DRX off periods, the UE may not transmit periodic CSI and / or SRS. The base station may allocate these resources to other UEs to improve resource utilization efficiency.
[0207] In one embodiment, the MAC entity may be configured by the RRC with a DRX function to control the UE's downlink control channel (e.g., PDCCH) monitoring activity of multiple RNTIs of the MAC entity. The multiple RNTIs may include at least one of a C-RNTI, a CS-RNTI, an INT-RNTI, a SP-CSI-RNTI, an SFI-RNTI, a TPC-PUCCH-RNTI, a TPC-PUSCH-RNTI, a semi-persistent scheduling C-RNTI, an eIMTA-RNTI, a SL-RNTI, a SL-V-RNTI, a CC-RNTI, or an SRS-TPC-RNTI. In one embodiment, in response to being in RRC_CONNECTED, if DRX is configured, the MAC entity may discontinuously monitor the PDCCH using the DRX operation, otherwise the MAC entity may monitor the PDCCH continuously.
[0208] In one embodiment, the RRC can control the DRX operation by configuring multiple timers. The multiple timers can include a DRX on duration timer (e.g., drx-onDurationTimer), a DRX inactivity timer (e.g., drx-InactivityTimer), a downlink DRX HARQ RTT timer (e.g., drx-HARQ-RTT-TimerDL), an uplink DRX HARQ RTT timer (e.g., drx-HARQ-RTT-TimerUL), a downlink retransmission timer (e.g., drx-RetransmissionTimerDL), an uplink retransmission timer (e.g., drx-RetransmissionTimerUL), one or more parameters of a short DRX configuration (e.g., drx-ShortCycle and / or drx-ShortCycleTimer), and one or more parameters of a long DRX configuration (e.g., drx-LongCycle). In one embodiment, the time granularity of the DRX timers can be in terms of PDCCH subframes (e.g., denoted as psf in the DRX configuration) or in milliseconds.
[0209] In one embodiment, in response to the DRX cycle being configured, the active time may include a time during which at least one timer is running, which may include a drx-onDurationTimer, a drx-InactivityTimer, a drx-RetransmissionTimerDL, a drx-RetransmissionTimerUL, or a mac-ContentionResolutionTimer.
[0210] In one embodiment, the drx-Inactivity-Timer may specify the duration that the UE may be active after successfully decoding a PDCCH indicating a new transmission (UL or DL or SL). In one embodiment, this timer may be restarted upon receiving a PDCCH for a new transmission (UL or DL or SL). In one embodiment, the UE may transition to a DRX mode (e.g., using a short DRX cycle or a long DRX cycle) in response to expiration of this timer.
[0211] In one embodiment, the drx-ShortCycle may be the first type of DRX cycle (e.g., if configured) that the UE must follow when entering DRX mode. In one embodiment, the DRX-Config IE indicates the length of the short cycle.
[0212] In one embodiment, drx-ShortCycleTimer may be expressed as a multiple of shortDRX-Cycle. The timer may indicate the number of initial DRX cycles to follow a short DRX cycle before entering a long DRX cycle.
[0213] In one embodiment, the drx-onDurationTimer may specify the duration at the start of a DRX cycle (e.g., DRX ON). In one embodiment, the drx-onDurationTimer may indicate the duration before entering a sleep mode (DRX OFF).
[0214] In one embodiment, the drx-HARQ-RTT-TimerDL may specify the minimum duration from when a new transmission is received until the UE can expect a retransmission of the same packet. In one embodiment, this timer may be fixed and may not be configured by RRC.
[0215] In one embodiment, the drx-RetransmissionTimerDL may indicate the maximum duration that the UE may monitor the PDCCH if a retransmission from the eNodeB is expected by the UE.
[0216] In one embodiment, in response to a DRX cycle being configured, the active time may include the time during which a scheduling request is transmitted on the PUCCH and is pending.
[0217] In one embodiment, in response to a DRX cycle being configured, the active time may include the time during which an uplink grant for a pending HARQ retransmission may occur and there is data in the corresponding HARQ buffer for the synchronous HARQ process.
[0218] In one embodiment, in response to a DRX cycle being configured, the active time may include the time during which a PDCCH indicating a new transmission addressed to the C-RNTI of the MAC entity was not received after successful reception of a random access response for a preamble not selected by the MAC entity.
[0219] In one embodiment, DRX may be configured for a wireless device. A DL HARQ RTT timer may expire in a subframe and data for a corresponding HARQ process may not be successfully decoded. The MAC entity may start a drx-RetransmissionTimerDL for the corresponding HARQ process.
[0220] In one embodiment, DRX may be configured for the wireless device, a UL HARQRTT timer may expire in the subframe, and the MAC entity may start a drx-RetransmissionTimerUL for the corresponding HARQ process.
[0221] In one embodiment, DRX may be configured for the wireless device. A DRX Command MAC Control element or a Long DRX Command MAC Control element may be received. The MAC entity may stop the drx-onDurationTimer and stop the drx-InactivityTimer.
[0222] In one embodiment, DRX may be configured for the wireless device. In one embodiment, the drx-InactivityTimer may expire or a DRX command MAC control element may be received in the subframe. In one embodiment, in response to a short DRX cycle being configured, the MAC entity may start or restart the drx-ShortCycleTimer and may use a short DRX cycle. Otherwise, the MAC entity may use a long DRX cycle.
[0223] In one embodiment, DRX may be configured for the wireless device. In one embodiment, the drx-ShortCycleTimer may expire in the subframe. The MAC entity may use a LongDRX cycle.
[0224] In one embodiment, DRX may be configured for the wireless device. In one embodiment, a LongDRX Command MAC Control element may be received. The MAC entity may stop the drx-ShortCycleTimer and use a long DRX cycle.
[0225] In one embodiment, DRX may be configured for the wireless device. In one embodiment, if a short DRX cycle is used and [(SFN*10)+subframe number] modulo (drx-ShortCycle)=(drxStartOffset) modulo (drx-ShortCycle), the wireless device may start a drx-onDurationTimer.
[0226] In one embodiment, DRX may be configured for the wireless device. For example, if a long DRX Cycle is used and [(SFN*10)+subframe number] modulo (drx-longCycle)=drxStartOffset, the wireless device may start a drx-onDurationTimer.
[0227] FIG. 25 shows an example of DRX operation in a legacy system. The base station may transmit an RRC message including configuration parameters of the DRX operation. The base station may transmit a DCI for downlink resource allocation to the UE via the PDCCH. The UE may start a drx-InactivityTimer, during which the UE may monitor the PDCCH. If the drx-InactivityTimer is running, after receiving a transmission block (TB), the UE may start a HARQ RTT timer (e.g., drx-HARQ-RTT-TimerDL), during which the UE may stop monitoring the PDCCH. If the UE fails to receive the TB, it may transmit a NACK to the base station. If the HARQ RTT timer expires, the UE may monitor the PDCCH and start a HARQ retransmission timer (e.g., drx-RetransmissionTimerDL). If the HARQ retransmission timer is running, the UE may receive a second DCI indicating DL permission for retransmission of the TB. If the UE does not receive the second DCI before the HARQ retransmission timer expires, the UE may stop monitoring the PDCCH.
[0228] In a wireless communication system, when configured with DRX operation, a UE may monitor a PDCCH to detect one or more DCIs during a DRX active time of a DRX cycle. The UE may stop monitoring a PDCCH during a DRX sleep / off time of a DRX cycle to save power consumption. In some cases, the UE may not be able to detect one or more DCIs during a DRX active time because the one or more DCIs are not addressed to the UE. For example, the UE may be a URLLC UE, a NB-IoT UE, or an MTC UE. The UE may not always have data to receive from a gNB, in which case waking up to monitor a PDCCH during a DRX active time may result in wasteful power consumption. A wake-up mechanism combined with a DRX operation may be used to further reduce power consumption, especially during a DRX active time. Figures 26A and 26B show examples of wake-up mechanisms.
[0229] In FIG. 26A, the gNB may transmit one or more messages including a wake-up duration (or power saving duration) parameter to the UE. The wake-up duration may be located a number of slots (or symbols) before the DRX on duration of the DRX cycle. The number of slots (or symbols), or what is called the gap between the wake-up duration and the DRX on duration, may be configured in one or more RRC messages or predefined as a constant value. The gap may be used for at least one of synchronizing with the gNB, measuring a reference signal, and / or retuning RF parameters. The gap may be determined based on the capabilities of the UE and / or the gNB. In one embodiment, the wake-up mechanism may be based on a wake-up signal. The wake-up duration parameter may include at least one of a wake-up signal format (e.g., numerology, sequence length, sequence code, etc.), a periodicity of the wake-up signal, a duration value of the wake-up duration, and a frequency location of the wake-up signal. In the LTE Re15 specification, a wake-up signal for paging may include a signal sequence (eg, a Zadoff-Chu sequence) generated based on a cell identification (eg, a cell ID) as follows:
number
[0230] In one embodiment,
number
number
number
number
number
[0231] In one embodiment, the wake-up duration parameter may be predefined without RRC configuration. In one embodiment, the wake-up mechanism may be based on a wake-up channel (e.g., PDCCH or DCI). The wake-up duration parameter may include at least one of a wake-up channel format (e.g., numerology, DCI format, PDCCH format), a wake-up channel periodicity, a control resource set, and / or a search space of the wake-up channel. When configured with the wake-up duration parameter, the UE may monitor a wake-up signal or a wake-up channel during the wake-up duration. In response to receiving the wake-up signal / channel, the UE may wake up to monitor the PDCCH as expected according to the DRX configuration. In one embodiment, in response to receiving the wake-up signal / channel, the UE may monitor the PDCCH during the DRX active time (e.g., when the drx-onDurationTimer is running). If the UE does not receive the PDCCH during the DRX active time, the UE may return to a sleep state. The UE may remain in a sleep state during the DRX off duration of a DRX cycle. In one embodiment, if the UE does not receive a wake-up signal / channel during the wake-up duration, the UE may skip monitoring the PDCCH during the DRX active time. This mechanism may reduce the power consumption of PDCCH monitoring during the DRX active time. In this example, during the wake-up duration, the UE may only monitor the wake-up signal / channel. During the DRX off duration, the UE may stop monitoring the PDCCH and the wake-up signal / channel. During the DRX active duration, the UE may monitor the PDCCH except for the wake-up signal / channel if it receives a wake-up signal / channel during the wake-up duration.In one embodiment, the gNB and / or the UE may apply the wake-up mechanism in a paging operation when the UE is in an RRC_idle or RRC_inactive state, or in a connected DRX operation when the UE is in an RRC_CONNECTED state.
[0232] In one embodiment, the wake-up mechanism may be based on a sleep signal / channel. Figure 26B shows an example. The gNB may transmit one or more messages including a parameter of the wake-up duration (or power saving duration) to the UE. The one or more messages may include at least one RRC message. The at least one RRC message may include one or more cell-specific or cell-common RRC messages (e.g., ServingCellConfig IE, ServingCellConfigCommon IE, MAC-CellGroupConfig IE). The wake-up duration may be located a number of slots (or symbols) before the DRX on duration of the DRX cycle. The number of slots (or symbols) may be configured in one or more RRC messages or predefined as a constant value. In one embodiment, the wake-up mechanism may be based on a sleep signal. The parameter of the wake-up duration may include at least one of the following: a sleep signal format (e.g., numerology, sequence length, sequence code, etc.), a periodicity of the sleep signal, a duration value of the wake-up duration, and a frequency location of the sleep signal. In one embodiment, the wake-up mechanism may be based on a sleep channel (e.g., PDCCH or DCI). The wake-up duration parameter may include at least one of a sleep channel format (e.g., numerology, DCI format, PDCCH format), a periodicity of the sleep channel, a control resource set, and / or a search space of the sleep channel. When configured with the wake-up duration parameter, the UE may monitor a sleep signal or a sleep channel during the wake-up duration. In response to receiving a sleep signal / channel, the UE may return to sleep and skip monitoring the PDCCH during the DRX active time. In one embodiment, if the UE does not receive a sleep signal / channel during the wake-up duration, the UE may monitor the PDCCH during the DRX active time. This mechanism may reduce the power consumption of PDCCH monitoring during the DRX active time.In one embodiment, compared to a wake-up signal-based wake-up mechanism, a sleep signal-based mechanism may be more robust against detection errors. If the UE fails to detect the sleep signal, the UE may erroneously start monitoring the PDCCH, which may result in extra power consumption. If the UE fails to detect the wake-up signal, the UE may miss a DCI that may be addressed to the UE. In this case, missing the DCI may result in a communication interruption. In some cases (e.g., URLLC service or V2X service), the UE and / or gNB may not allow a communication interruption compared to the extra power consumption.
[0233] In a Long Term Evolution Advanced (LTE-A) system, when a base station and / or a wireless device implements machine type communication (e.g., MTC) and / or narrowband Internet of Things (e.g., NB-IOT) communication technologies, the base station and / or the wireless device may perform an LTE-A wake-up operation for power saving purposes. In one embodiment, the LTE-A wake-up operation may include transmitting a wake-up signal (WUS) from the base station at a configured / predefined time and frequency resource, monitoring the WUS by the wireless device, and monitoring the PDCCH in response to receiving the WUS or skipping monitoring the PDCCH in response to not receiving the WUS. The WUS may include a signal sequence (e.g., Zadoff-Chu sequence, or M-sequence) generated based on the cell ID of the serving cell (or the only serving cell if carrier aggregation is not supported in MTC or NB-IOT). If a single CRS port is configured by the base station, the base station may transmit the WUS on the same antenna port as the CRS (cell-specific reference signal) port.
[0234] In one embodiment, the wireless device may perform power saving operations to reduce power consumption, the power saving operations including at least one of a SCell hibernation transition mechanism (e.g., FIG. 21A, FIG. 21B, and / or FIG. 21C), a mechanism based on wake-up / sleep indications (e.g., FIG. 26A and / or FIG. 26B), and the like.
[0235] In an NR system, a base station may transmit and / or receive data packets of multiple data services (e.g., web browsing, video streaming, industrial IoT, and / or communication services for automation in various vertical areas) to and / or from a wireless device. The multiple data services may have different data traffic patterns (e.g., periodic, aperiodic, data arrival pattern, event trigger, small data size, or burst type). In one embodiment, a first data service (e.g., having a predictable / periodic traffic pattern) may be suitable for the wireless device to enable a power saving mode for communicating with the base station, especially when the wireless device operates at a high frequency.
[0236] In one embodiment, an NR radio device, when configured with multiple cells, may consume more power than an LTE-A radio device communicating with a base station. An NR radio device may communicate with an NR base station on a cell operating at a high frequency (e.g., 6 GH, 30 GH, or 70 GH) with more power consumption than an LTE-A radio device operating at a low frequency (e.g., <= 6 GHz). In an NR system, a base station may transmit and / or receive data packets of multiple data services (e.g., communication services for web browsing, video streaming, industrial IoT, and / or automation in various vertical areas) to and / or from the radio device. The multiple data services may have different data traffic patterns (e.g., periodic, aperiodic, data arrival patterns, event triggers, small data size, or burst type). In one embodiment, a first data service (e.g., having a predictable / periodic traffic pattern) may be suitable for the radio device to enable a power saving mode for communicating with the base station, especially when the radio device operates at a high frequency.
[0237] In one embodiment, the base station may transmit downlink control signaling to semi-statically or dynamically disable (or transition to a non-power saving mode) or enable a power saving mode for delivering data packets with low latency requirements. In one embodiment, the base station may transmit a group-common DCI to one or more wireless devices to indicate a wake-up or sleep transition. Monitoring the PDCCH for group-common DCI by the wireless devices (e.g., whenever configured) may increase UE battery power consumption. Monitoring the PDCCH to receive group-common DCI may increase processing requirements by the wireless devices. In an exemplary embodiment, the base station may transmit a UE-specific DCI (e.g., existing DCI formats 0-0 / 0-1 / 0-2 / 1-0 / 1-1 / 1-2 in the 3GPP specifications, or a new UE-specific DCI format) indicating a power saving operation, e.g., indicating sleep during DRX active time, and / or indicating a transition to a dormant state. Implementation of the UE-specific DCI may reduce the UE battery power consumption required for downlink control channel monitoring.
[0238] In existing techniques, a wireless device cannot determine whether a UE-specific DCI with an existing DCI format indicates a power saving operation of the wireless device or indicates a normal permission to receive downlink data packets or transmit uplink data packets. Implementing existing techniques using additional DCI fields or DCI formats for power saving operation may increase downlink signaling overhead and / or UE processing requirements. Implementing a new DCI format may increase the blind decoding complexity of the wireless device. Exemplary embodiments may provide an enhanced method for semi-statically or dynamically indicating a power saving mode based on a UE-specific DCI (e.g., DCI via PDCCH). The DCI may be transmitted in one of the existing DCI formats 0-0 / 0-1, 1-0 / 1-1, or 2-0 / 2-1 / 2-2 / 2-3 defined in the 3GPP NR specifications. Exemplary embodiments may reduce the blind decoding complexity of a wireless device for monitoring a PDCCH when a power saving mode (or operation) is supported by the wireless device. Example embodiments may include transmitting, by a base station and / or receiving, by a wireless device, a DCI (e.g., one or more DCI formats 0-0 / 0-1, 1-0 / 1-1, or 2-0 / 2-1 / 2-2 / 2-3 defined in the 3GPP NR specifications), where the DCI indicates a power saving operation in response to one or more fields of the DCI being set to a predefined value. In one example, the one or more fields may include a frequency domain resource allocation field. The predefined value may be all ones for the bits of the one or more fields. The predefined value may be all zeros for the bits of the one or more fields.
[0239] In one example embodiment, a wireless device may receive a DCI from a base station. The DCI may indicate a dormant state transition and / or a wake-up (or sleep) indication in response to the frequency domain resource allocation field being set as all ones for the bits of the frequency domain resource allocation field or all zeros for the bits of the frequency domain resource. In one example, the wireless device may verify a power save transition DCI based on the frequency domain resource allocation field of the DCI being set to a predefined value (all zeros or all ones). The wireless device may perform a power save operation in response to a successful verification. In one example, the wireless device may perform at least one of transitioning to a sleep mode during which the wireless device skips monitoring the PDCCH during the DRX active time and / or transitioning the SCell to a dormant state in which the wireless device stops monitoring the PDCCH on the SCell and transmits a CSI report for the SCell in response to the power save operation. The example embodiment reduces downlink signaling overhead by not requiring a new DCI format for group DCI or UE-specific DCI. The exemplary embodiments further reduce downlink signaling overhead by not requiring new DCI fields for power-saving operation. The exemplary embodiments reduce battery power consumption and UE processing requirements by using existing DCI formats and defining extended DCI processing rules to determine whether a DCI indicates a power state transition.
[0240] In one embodiment, the term power saving operation may be referred to using other terminology such as a power saving mode, a power saving procedure, a power saving state, a SCell hibernation state, and the like.
[0241] FIG. 27 illustrates an example embodiment of a mechanism for enabling / disabling (e.g., activating / deactivating, indicating, or signaling) a power saving mode based on DCI. A base station (e.g., gNB in FIG. 27) may transmit one or more RRC messages including configuration parameters for the power saving mode, also referred to as power saving (PS) parameters, to a wireless device (e.g., UE in FIG. 27). The one or more RRC messages may include one or more cell-specific or cell-common RRC messages (e.g., ServingCellConfig IE, ServingCellConfigCommon IE, MAC-CellGroupConfig IE). In one example, the cell may be a primary cell (e.g., PCell), a PUCCH secondary cell if a secondary PUCCH group is configured, or a primary secondary cell (e.g., PSCell) if dual connectivity is configured. The cell may be identified (or associated) by a cell-specific identity (e.g., cell ID).
[0242] In one embodiment, the configuration parameters may include a first Radio Network Temporary Identifier (RNTI) dedicated to the power save mode. The first RNTI may be the same as one or more second RNTIs. The first RNTI may be different from one or more second RNTIs. The one or more second RNTIs may include at least one of a C-RNTI for dynamic PDSCH / PUSCH scheduling, a P-RNTI dedicated to paging, a SI-RNTI dedicated to system information broadcast, a CS-RNTI dedicated to configured scheduled transmissions, a RA-RNTI dedicated to random access procedure, a TC-RNTI dedicated to message 3 transmissions, an MCS-C-RNTI dedicated to dynamically scheduled unicast transmissions, a TPC-PUCCH-RNTI dedicated to PUCCH power control, a TPC-PUSCH-RNTI dedicated to PUSCH power control, a TPC-SRS-RNTI dedicated to SRS triggering and power control, an INT-RNTI dedicated to indication preemption in DL, an SFI-RNTI dedicated to slot format indication on a given cell, and / or an SP-CSI-RNTI dedicated to activation of semi-persistent CSI reporting on PUSCH.
[0243] In one embodiment, the wireless device may transmit information to the base station indicating a current mode of operation of the wireless device (e.g., power saving mode or normal access mode) or a switch of the mode of operation of the radio. The wireless device may transmit information to the base station indicating whether the power saving mode is supported by the wireless device. The information indicating whether the power saving mode is supported may be included in a UE capability or UE assistant message (e.g., a UE-NR-Capability IE, or a UE-MRDC-Capability IE, and / or a Phy-Parameters IE). The information indicating whether the power saving mode is supported may include at least one of whether the radio supports the power saving mode in an RRC idle state, an RRC stopped state, and / or an RRC connected state. In one embodiment, the information indicating whether the power saving mode is supported may be included in an RRC message, a MAC CE, or a UCI.
[0244] In one embodiment, the wireless device may transmit information to the base station indicating whether a power save mode is triggered (or activated / enabled). For example, the information may include at least one of an indication as to which of a plurality of power save mode configurations is triggered (or activated / enabled), one or more parameters of the service of the wireless device (e.g., QoS, or traffic type). In response to receiving the information, the base station may assign a first RNTI dedicated to the power save mode to the wireless device. In response to receiving the information, the base station may transmit one or more RRC messages to the wireless device including configuration parameters of the power save mode.
[0245] In one embodiment, the configuration parameters may include parameters of at least one power save mode configuration on the cell. Each of the at least one power save mode configuration may be identified by a power save configuration identifier (e.g., an index, an indicator, or an ID). The power save mode of the power save mode configuration may be based on a power save signal (e.g., a wake-up signal as shown in FIG. 26A and / or a sleep as shown in FIG. 26B). The parameters of the power save signal-based power save mode configuration may include at least one of a signal format (e.g., numerology) of the power save signal, a sequence generation parameter (e.g., a cell ID, a virtual cell ID, an SS block index, or an orthogonal code index) for generating the power save signal, a window size of a time window indicating a duration during which the power save signal may be transmitted, a periodicity value of the transmission of the power save signal, a time resource during which the power save signal may be transmitted, a frequency resource during which the power save signal may be transmitted, a BWP during which the wireless device may monitor the power save signal, and / or a cell during which the wireless device may monitor the power save signal. In one embodiment, the power saving signal may include at least one of a CSI-RS, a DMRS, and / or a signal sequence (eg, a Zadoff-Chu, an M sequence, or a Gold sequence).
[0246] In one embodiment, the power save mode may be based on a power save channel (e.g., a wake-up channel (WUCH)). The power save channel may include a downlink control channel (e.g., a PDCCH) dedicated to the power save mode. Parameters of the power save channel-based power save mode configuration may include at least one of a time window indicating a duration during which the base station may transmit power save information (e.g., wake-up information or sleep information) over the power save channel, a parameter of a control resource set (e.g., a time resource, a frequency resource, and / or a TCI status indication of the power save channel), a periodicity of transmission of the power save channel, a DCI format of the power save information, a BWP over which the wireless device may monitor the power save channel, and / or a cell over which the wireless device may monitor the power save channel. In one embodiment, in response to receiving a power save indication over the WUCH, the wireless device may stop monitoring the PDCCH (e.g., within a DRX active time of a DRX cycle).
[0247] In one example, the power saving mode may include transitioning the SCell to a dormant state based on an indication (e.g., FIG. 21A, FIG. 21B, and / or FIG. 21C). In response to receiving an indication of a dormant state transition for the SCell, the wireless device may perform at least one of: stopping transmitting SRS on the SCell, reporting CQI / PMI / RI / PTI / CRI for the SCell according to a periodicity configured for the dormant SCell, not transmitting on a UL-SCH on the SCell, not transmitting on a RACH on the SCell, not monitoring a PDCCH on the SCell, not monitoring a PDCCH for the SCell, and / or not transmitting a PUCCH on the SCell.
[0248] In one embodiment, a wireless device in an RRC connected state can communicate with a base station in a normal access mode / state (e.g., full functionality mode, non-dormant state). In the normal access mode / state (or in the full functionality mode), if the wireless device is not configured for DRX operation, the wireless device can continuously monitor the PDCCH. In the normal access mode / state, if the wireless device is configured for DRX operation (e.g., as shown in FIG. 24 or FIG. 25), the wireless device can discontinuously monitor the PDCCH by applying one or more DRX parameters of the DRX operation. In the normal access mode / state, the UE can monitor the PDCCH, transmit an SRS, transmit on a RACH, transmit on a UL-SCH, and / or receive a DL-SCH.
[0249] As shown in FIG. 27, a wireless device (UE) may communicate with a base station in a normal access mode / state (or a full-functionality mode). The base station may transmit a first DCI (e.g., the first DCI in FIG. 27) indicating a power saving (PS) mode to the wireless device, for example, if a data service is suitable for the PS mode or if the wireless device may function in the PS mode due to reduced processing power available to the wireless device. The first DCI may be transmitted in a first DCI format (e.g., one of DCI formats 0-0 / 0-1, 1-0 / 1-1, or 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP NR specifications) or a second DCI format (e.g., a new DCI format defined in the future). The wireless device may receive the first DCI via a first PDCCH. The wireless device may verify (or determine) the first DCI for enabling (or indicating) the PS mode based on at least one of the first RNTI dedicated to the PS mode, the one or more fields of the first DCI. In one embodiment, the verification (or determination) of the first DCI for enabling the PS mode (e.g., successful verification of the first DCI for enabling PS, as shown in FIG. 27) may be achieved in response to at least one of the CRC bits of the first DCI being scrambled by the first RNTI, and the one or more fields of the first DCI being set to one or more values (e.g., as shown in FIG. 28). In response to the successful verification of the first DCI for enabling the PS mode, the UE may enable (activate or transition to) the PS mode and / or switch from the normal access mode to the PS mode.
[0250] In one example, in PS mode, the wireless device may monitor the PS signal / channel, may not transmit a PUCCH / PUSCH / SRS / PRACH (e.g., before detecting / receiving a PS signal / channel), may not receive a PDSCH (e.g., before detecting / receiving a PS signal / channel), may not monitor a PDCCH (e.g., before detecting / receiving a PS signal / channel), and / or may start monitoring a PDCCH in response to detecting / receiving a PS signal / channel. In one example, in PS mode (shown in FIG. 26A ), the wireless device may skip monitoring a PDCCH in the DRX active time of a DRX cycle.
[0251] In one embodiment, in response to switching to the PS mode, the wireless device may monitor a PS signal / channel in a wake-up window. The PS signal / channel may be configured with one or more RRC messages. The wake-up window may be configured with one or more RRC messages. In one embodiment, the wireless device may receive a PS signal / channel during the wake-up window. In response to receiving the PS signal / channel, the wireless device may monitor a PDCCH as configured (e.g., in an RRC message or MAC CE) and transmit or receive a data packet based on one or more DCIs via the PDCCH. In one embodiment, the wireless device may not receive a PS signal / channel during the wake-up window. In response to not receiving a PS signal / channel, the wireless device may skip monitoring the PDCCH. In the PS mode, the wireless device may repeat monitoring a PS signal / channel in one or more wake-up windows, which may occur periodically according to one or more configured parameters of the PS operation.
[0252] As shown in FIG. 27, the base station may transmit a second DCI (e.g., the second DCI of FIG. 27) indicating disabling (or deactivation) of the PS mode to the wireless device. The base station may transmit the second DCI in a wake-up window (e.g., this may occur periodically in the time domain according to one or more configuration parameters of the PS mode). The wireless device may receive the second DCI if the wireless device monitors a PS signal / channel during the wake-up window. The wireless device may verify the second DCI for disabling / deactivating the PS mode based on at least one of the first RNTI dedicated to the PS mode, the one or more fields of the second DCI. In one example, verification of disabling / deactivating the PS mode (e.g., successful verification of the second DCI for disabling the PS mode as shown in FIG. 27) may be accomplished in response to at least one of: CRC bits of the second DCI being scrambled by the first RNTI, one or more fields of the second DCI being set to one or more values (e.g., as shown in FIG. 29). In response to successful verification of the second DCI for disabling / deactivating the PS mode, the wireless device may disable (or deactivate) the PS mode and / or switch from the PS mode to a normal access mode. In response to switching to the normal access mode (e.g., full functionality mode as shown in FIG. 27), the wireless device may monitor the PDCCH as configured. In response to switching to the normal access mode, the wireless device may monitor the PDCCH to detect DCI having CRC bits scrambled by at least one of the C-RNTI, P-RNTI, SI-RNTI, CS-RNTI, RA-RNTI, TC-RNTI, MCS-C-RNTI, TPC-PUCCH-RNTI, TPC-PUSCH-RNTI, TPC-SRS-RNTI, INT-RNTI, SFI-RNTI, and / or SP-CSI-RNTI.In response to switching to the normal access mode, the wireless device may transmit an SRS, transmit on a RACH, transmit on a UL-SCH, and / or receive a DL-SCH.
[0253] As shown in FIG. 27, the base station may transmit a third DCI (e.g., the third DCI of FIG. 27) indicating enabling / activating the PS mode to the wireless device. The wireless device may verify the third DCI for enabling / activating the PS mode based on at least one of the first C-RNTI dedicated to the PS mode, the one or more fields of the third DCI. In one embodiment, the verification of enabling the PS mode (e.g., successful verification of the third DCI for enabling PS as shown in FIG. 27) may be achieved in response to at least one of the CRC bits of the third DCI being scrambled by the first RNTI, the one or more fields of the third DCI being set to one or more values (e.g., as shown in FIG. 28). In response to the successful verification of the third DCI for enabling the PS mode, the wireless device may enable (or activate) the PS mode and / or switch from the normal access mode to the PS mode.
[0254] As shown in FIG. 27, the base station may dynamically or semi-statically activate / deactivate the power saving mode of the wireless device by at least one of scrambling the CRC bits of the DCI with an RNTI dedicated to the power saving mode and / or setting one or more fields of the DCI to one or more predefined values. The wireless device may determine that the DCI indicates activation / deactivation of the power saving mode by checking at least one of whether the CRC bits of the DCI are scrambled by an RNTI dedicated to the power saving mode and whether one or more fields of the DCI are set to one or more predefined values. Exemplary embodiments may reduce the complexity of blind decoding of the wireless device when monitoring the PDCCH if the power saving mode is supported by the wireless device. Exemplary embodiments may improve the probability of receiving the DCI at the wireless device if the power saving mode is supported by the wireless device, and the DCI indicates activation / deactivation of the power saving mode.
[0255] FIG. 28 illustrates an example embodiment of DCI content (or fields) for a mechanism for enabling (or activating) power saving. In one example, as shown in FIG. 27, the wireless device may verify the first DCI for enabling the PS mode based on at least one of the first RNTI dedicated to the PS mode, the one or more fields of the first DCI. The first DCI may be received in a first DCI format (e.g., one of DCI formats 0-0 / 0-1, 1-0 / 1-1, or 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP NR specification) or a second DCI format (e.g., a new DCI format to be defined in the future). As shown in FIG. 28, the one or more fields of the first DCI may include at least one of a HARQ process number, a redundancy version, and / or a new data indicator. The wireless device may consider verification to be achieved in response to at least one of: the CRC bits of the first DCI being scrambled by a first RNTI dedicated to the PS mode; the HARQ process number of the first DCI being set to a first value (e.g., all “0’s”, or all “1’s”, or any predefined value); the redundancy version of the first DCI being set to a second value (e.g., “00”, “11”, or any predefined value); and / or the new data indicator of the first DCI being set to a third value (e.g., “0”, “1”).
[0256] In one embodiment, the wireless device may verify or determine the first DCI to indicate a PS mode based on the frequency domain allocation field of the first DCI being set to a predefined value. The wireless device may consider the verification to be achieved in response to the frequency domain allocation field of the first DCI being set to a constant value (e.g., all "0"s or all "1"s, or any predefined value). In response to the verification being achieved, the wireless device may activate / enable the PS mode. In one embodiment, the PS mode may include a transition to a dormant state of the SCell. In response to enabling / activating the PS mode, the wireless device may transition the SCell to a dormant state. During the dormant state of the SCell, the wireless device may stop monitoring the PDCCH on / for the SCell and / or transmit CSI reports for the SCell. In one embodiment, the PS mode may include a transition to a sleep state. In response to activating / enabling the PS mode, the wireless device may stop or skip monitoring the PDCCH (e.g., on the PCell and multiple SCells) during the DRX active time of the DRX cycle by implementing the examples of Figures 26A and / or 26B.
[0257] In one embodiment, in a multiple PS configuration, the first DCI may further include a PS configuration indicator indicating that one of the multiple PS configurations is activated / enabled. In response to the verification being achieved, the wireless device may activate / enable the PS mode based on one of the multiple PS configurations. The wireless device may consider the verification not to be achieved in response to at least one of: the CRC bits of the first DCI are not scrambled by a first RNTI dedicated to PS operation, the HARQ process number of the first DCI is not set to a first value (e.g., all "0", or all "1", or any predefined value), the redundancy version of the first DCI is not set to a second value (e.g., "00", "11", or any predefined value), the new data indicator of the first DCI is not set to a third value (e.g., "0", "1"), and / or one or more fields of the first DCI are not set to one or more fourth values. In response to verification not being achieved, the wireless device may assume that the first DCI has been detected with a non-matching CRC. In response to verification not being achieved, the wireless device may assume that information included in the first DCI is subject to an uncorrectable transmission error or is intended for another wireless device. In response to verification not being achieved, the wireless device may ignore the first DCI.
[0258] FIG. 29 illustrates an example embodiment of DCI content (or fields) for power saving disabling (or deactivation) mechanism. In one example, as shown in FIG. 27, the wireless device can verify the second DCI for disabling the PS mode based on at least one of the first RNTI, the one or more fields of the second DCI dedicated to the PS mode. The second DCI can be received in a first DCI format (e.g., one of DCI formats 0-0 / 0-1, 1-0 / 1-1, or 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP NR specification) or a second DCI format (e.g., a new DCI format to be defined in the future). The second DCI for deactivating / disabling the PS mode can have the same DCI format as the first DCI for activating / enabling the PS mode. The second DCI for deactivating / disabling the PS mode can have a different DCI format than the first DCI for activating / enabling the PS mode. As shown in FIG. 29, the one or more fields of the second DCI may include at least one of a HARQ process number, a redundancy version, a new data indicator, a time domain resource allocation, and / or a frequency domain resource allocation. The wireless device may consider the verification to be accomplished in response to at least one of: the CRC bits of the second DCI being scrambled by a first RNTI dedicated to the PS mode; the HARQ process number of the second DCI being set to a first value (e.g., all “0’s”, or all “1’s”, or any predefined value); the redundancy version of the second DCI being set to a second value (e.g., “00”, “11”, or any predefined value); the new data indicator of the second DCI being set to a third value (e.g., “0”, “1”); the time domain resource allocation of the second DCI being set to a fourth value (e.g., all “0’s”, or all “1’s”, or any predefined value); and / or the frequency domain resource allocation of the second DCI being set to a fifth value (e.g., all “0’s”, or all “1’s”, or any predefined value).
[0259] In one embodiment, the wireless device may verify or determine the second DCI for disabling / deactivating the PS mode based on the frequency domain resource allocation of the second DCI being set to a constant value (e.g., all "0's", all "1's", or a predefined value). In response to the verification for disabling / deactivating the PS mode being achieved, the wireless device may disable / deactivate the PS mode. In one embodiment, the PS mode may include a transition to a dormant state of the SCell. In response to disabling / deactivating the PS mode, the wireless device may transition the SCell to a non-dormant state. During the non-dormant state of the SCell, the wireless device may monitor the PDCCH on / for the SCell and / or transmit a CSI report for the SCell. In one embodiment, the PS mode may include a transition to a sleep state. In response to disabling / deactivating the PS mode, the wireless device may start monitoring the PDCCH on one or more cells (e.g., the PCell and / or multiple SCells) during a DRX active time of a DRX cycle.
[0260] In one embodiment, in response to verification not being achieved, the wireless device may determine that the first DCI is detected with a mismatched CRC. In one embodiment, the wireless device may determine that the CRC bits of the second DCI are not scrambled by the first RNTI dedicated to the PS mode, that the HARQ process number of the second DCI is not set to a first value (e.g., all "0", or all "1", or any predefined value), that the redundancy version of the second DCI is not set to a second value (e.g., "00", "11", or any predefined value), that the new data indicator of the second DCI is not set to a third value (e.g., "0", "1"), and that the second DCI is not set to a third value (e.g., "0", "1"). In response to at least one of the time domain resource allocation of the second DCI not being set to a fourth value (e.g., all "0's", or all "1's", or any predefined value), the frequency domain resource allocation of the second DCI not being set to a fifth value (e.g., all "0's", or all "1's", or any predefined value), and / or one or more fields of the second DCI not being set to one or more sixth values, the wireless device may consider that a verification to disable / deactivate the PS mode is not achieved. In response to the verification not being achieved, the wireless device may consider that the second DCI is detected with a non-matching CRC. In response to the verification not being achieved, the wireless device may consider that the information included in the second DCI is either subject to an uncorrectable transmission error or is intended for another wireless device. In response to the verification not being achieved to disable / deactivate the PS mode, the wireless device may ignore the second DCI.
[0261] As shown in FIG. 28 and / or FIG. 29, the base station may dynamically or semi-statically activate / deactivate the power saving mode of the wireless device by at least one of scrambling the CRC bits of the DCI with an RNTI dedicated to the power saving mode and / or setting one or more fields of the DCI to one or more predefined values. The wireless device may determine that the DCI indicates the activation / deactivation of the power saving mode by checking at least one of whether the CRC bits of the DCI are scrambled by an RNTI dedicated to the power saving operation and whether one or more fields of the DCI are set to one or more predefined values. The embodiments of FIG. 28 and FIG. 29 may reduce the complexity of the blind decoding of the wireless device when monitoring the PDCCH if the power saving mode is supported by the wireless device. The embodiments may further improve the probability of receiving the DCI at the wireless device if the power saving mode is supported by the wireless device, and the DCI indicates the activation / deactivation of the power saving mode.
[0262] FIG. 30 illustrates an example flow chart of power save mode enablement (or activation) based on DCI validation. In one embodiment, the wireless device may receive one or more RRC messages including first configuration parameters for the power save mode. The first configuration parameters may include at least one of a first RNTI and one or more PS parameters. The first RNTI may be dedicated to the PS mode. The one or more PS parameters may include at least one of one or more first search spaces, one or more first control resource sets, and / or one or more PS signal parameters (e.g., PS signal format, periodicity, time / frequency location). The one or more RRC messages may further include second configuration parameters indicating at least a second RNTI, one or more second search spaces, one or more second control resource sets. The at least second RNTI may include at least one of a C-RNTI, a P-RNTI, a SI-RNTI, a CS-RNTI, a RA-RNTI, a TC-RNTI, an MCS-C-RNTI, a TPC-PUCCH-RNTI, a TPC-PUSCH-RNTI, a TPC-SRS-RNTI, an INT-RNTI, an SFI-RNTI, and / or an SP-CSI-RNTI. The wireless device may receive the first DCI via the PDCCH. The wireless device may determine whether the CRC bits of the first DCI are scrambled with the first RNTI or the second RNTI.
[0263] As shown in FIG. 30, in response to the CRC bits of the first DCI being scrambled with the first RNTI, the wireless device may verify the first DCI for enabling / activating the PS mode based on one or more fields of the first DCI. For example, the wireless device may verify the first DCI for enabling / activating the PS mode based on one or more fields of the first DCI according to the example embodiment of FIG. 28 above. In response to the verification being achieved, the wireless device may enable / activate the PS mode. In response to enabling / activating the PS mode, the wireless device may monitor one or more first PDCCHs for wake-up or sleep signals / commands in one or more first search spaces of one or more first control resource sets. In response to enabling / activating the PS mode, the wireless device may monitor one or more PS signals according to one or more PS signal parameters. In one embodiment, the wireless device may monitor one or more second PDCCHs on one or more second search spaces of one or more second control resource sets for one or more DCIs having a CRC scrambled by at least one second RNTI in response to receiving a wake-up signal / command while monitoring the one or more first PDCCHs. In one embodiment, the wireless device may monitor one or more second PDCCHs on one or more second search spaces of one or more second control resource sets for one or more DCIs having a CRC scrambled by at least one second RNTI in response to detecting one or more PS signals according to the one or more PS signal parameters. In one embodiment, the wireless device may skip monitoring one or more second PDCCHs on one or more second search spaces of one or more second control resource sets for one or more DCIs having a CRC scrambled by at least one second RNTI in response to not receiving a wake-up signal / command while monitoring the one or more first PDCCHs.In one example, in response to not detecting one or more PS signals according to the one or more PS signal parameters, the wireless device may skip monitoring one or more second PDCCHs on one or more second search spaces of one or more second control resource sets for one or more DCIs having a CRC scrambled by at least one second RNTI.
[0264] As shown in Figure 30, in response to the CRC bits of the first DCI being scrambled with at least the second RNTI, the wireless device may monitor one or more second PDCCHs on one or more second search spaces of the one or more second control resource sets for one or more DCIs having CRCs scrambled by the at least one second RNTI. The wireless device may transmit or receive a data packet based on the one or more DCIs received via the one or more second PDCCHs.
[0265] FIG. 31 illustrates an example flow chart of power saving mode disabling (or deactivation) based on DCI validation. In one embodiment, the wireless device may receive one or more RRC messages including first configuration parameters for the power saving mode. The first configuration parameters may include at least one of a first RNTI and one or more PS parameters. The first RNTI may be dedicated to the PS mode. The one or more PS parameters may include at least one of one or more first search spaces, one or more first control resource sets, and / or one or more PS signal parameters (e.g., PS signal format, periodicity, time / frequency location). The one or more RRC messages may further include second configuration parameters indicating at least a second RNTI, one or more second search spaces, one or more second control resource sets. The at least second RNTI may include at least one of a C-RNTI, a P-RNTI, a SI-RNTI, a CS-RNTI, a RA-RNTI, a TC-RNTI, an MCS-C-RNTI, a TPC-PUCCH-RNTI, a TPC-PUSCH-RNTI, a TPC-SRS-RNTI, an INT-RNTI, an SFI-RNTI, and / or an SP-CSI-RNTI. The wireless device may receive the first DCI via the PDCCH. The wireless device may determine whether the CRC bits of the first DCI are scrambled with the first RNTI or the second RNTI.
[0266] As shown in FIG. 31, in response to the CRC bits of the first DCI being scrambled with the first RNTI, the wireless device may verify the first DCI for disabling / deactivating the PS mode based on one or more fields of the first DCI. The wireless device may verify the first DCI for disabling / deactivating the PS mode based on one or more fields of the first DCI according to the example embodiment of FIG. 29 above. In response to the verification being achieved, the wireless device may disable / deactivate the PS mode. In response to disabling / deactivating the PS mode, the wireless device may skip monitoring one or more first PDCCHs for wake-up or sleep signals / commands in one or more first search spaces of one or more first control resource sets. In response to disabling / deactivating the PS mode, the wireless device may skip monitoring one or more PS signals according to one or more PS signal parameters. In one example, in response to disabling / deactivating the PS mode, the wireless device may monitor one or more second PDCCHs on one or more second search spaces of one or more second control resource sets for one or more DCIs having a CRC scrambled by the at least one second RNTI. The wireless device may transmit or receive a data packet based on the one or more DCIs received via the one or more second PDCCHs.
[0267] As shown in Figure 31, in response to the CRC bits of the first DCI being scrambled with at least the second RNTI, the wireless device may monitor one or more second PDCCHs on one or more second search spaces of the one or more second control resource sets for one or more DCIs having CRCs scrambled by the at least one second RNTI. The wireless device may transmit or receive a data packet based on the one or more DCIs received via the one or more second PDCCHs.
[0268] 32 illustrates an example embodiment of a mechanism for enabling / disabling (or activating / deactivating) a power saving mode based on DCI. A base station (e.g., gNB in FIG. 32) can transmit one or more RRC messages including a first configuration parameter for the power saving mode to a wireless device (e.g., UE in FIG. 32).
[0269] In one embodiment, the first configuration parameter may indicate a first Radio Network Temporary Identifier (RNTI) dedicated to the power saving mode and one or more PS parameters. The first RNTI may be dedicated to the PS mode. The one or more PS parameters may indicate at least one of one or more first search spaces (e.g., a common search space or a UE-specific search space), one or more first control resource sets, one or more first DCI formats (e.g., DCI format 0-0, 1-0, or any other DCI format), and / or one or more PS signal parameters (e.g., PS signal format, periodicity, time / frequency location).
[0270] In one embodiment, the one or more RRC messages may further include second configuration parameters indicating at least a second RNTI, one or more second search spaces, one or more second DCI formats, and one or more second control resource sets. The at least second RNTI may include at least one of a C-RNTI, a P-RNTI, a SI-RNTI, a CS-RNTI, a RA-RNTI, a TC-RNTI, an MCS-C-RNTI, a TPC-PUCCH-RNTI, a TPC-PUSCH-RNTI, a TPC-SRS-RNTI, an INT-RNTI, an SFI-RNTI, and / or an SP-CSI-RNTI. The wireless device may receive the first DCI via a PDCCH. In one embodiment, the first RNTI dedicated to the PS mode may be different from the at least second RNTI.
[0271] In one embodiment, a wireless device in an RRC connected state may communicate with a base station in a normal access mode / state (e.g., full functionality mode). In the normal access mode / state, the wireless device may monitor the PDCCH for one or more second DCI formats on one or more second search spaces of one or more second control resource sets. In the normal access mode / state, the wireless device may discontinuously monitor the PDCCH by applying one or more DRX parameters of a DRX operation if a DRX operation is configured (e.g., as shown in FIG. 24 and / or FIG. 25). In the normal access mode / state, the wireless device may monitor the PDCCH, transmit an SRS, transmit on a RACH, transmit on a UL-SCH, and / or receive a DL-SCH.
[0272] As shown in FIG. 32, the wireless device may communicate with the base station in a normal access mode / state (or a full functionality mode). The base station may transmit a first DCI (e.g., the first DCI of FIG. 32) indicating to enable a power saving (e.g., PS as shown in FIG. 32) mode to the wireless device, for example, if the data service is suitable for the PS mode. The first DCI may be transmitted in a first DCI format (e.g., one of DCI formats 0-0 / 0-1, 1-0 / 1-1, or 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP NR specification) or a second DCI format (e.g., a new DCI format to be defined in the future). The wireless device may receive the first DCI via a first PDCCH. The wireless device may verify or determine the first DCI for enabling / indicating the PS mode based on at least one of the first RNTI dedicated to the PS mode, the one or more fields of the first DCI. The UE may verify or determine the first DCI to enable / indicate the PS mode, for example, by implementing the example embodiment of FIG. 28 above.
[0273] In one example, verification of enabling the PS mode (e.g., successful verification of the first DCI for enabling PS as shown in FIG. 32) may be accomplished in response to at least one of the CRC bits of the first DCI being scrambled by the first RNTI and one or more fields of the first DCI being set to one or more predefined values, e.g., by implementing the examples of FIG. 27, FIG. 28, and / or FIG. 29. In response to the successful verification of the first DCI for enabling the PS mode, the wireless device may enable (or activate) the PS mode and / or switch from a normal access mode to the PS mode.
[0274] In one example, as shown in FIG. 32, in the PS mode, the wireless device may monitor a first PDCCH for at least one DCI having one or more first DCI formats on one or more first search spaces of one or more first control resource sets (e.g., SS1 / CORESET1 as shown in FIG. 32). The at least one DCI may indicate a wake-up indication or a sleep indication. In the PS mode, the wireless device may monitor the PS signal according to one or more PS signal parameters. In the PS mode, the wireless device may not transmit a PUCCH / PUSCH / SRS / PRACH before detecting / receiving the PS signal or the at least one DCI. In the PS mode, the wireless device may not receive a PDSCH before detecting / receiving the PS signal or the at least one DCI. In the PS mode, the wireless device may not monitor a PDCCH on one or more second search spaces of one or more second control resource sets before detecting / receiving the PS signal or the at least one DCI. In the PS mode, the wireless device may monitor the PDCCH on one or more second search spaces of one or more second control resource sets in response to detecting / receiving a PS signal or at least one DCI.
[0275] As shown in FIG. 32, the base station may transmit a second DCI (e.g., the second DCI of FIG. 32) indicating disabling (or deactivating) the PS mode to the wireless device. The base station may transmit the second DCI in a wake-up window (e.g., this may occur periodically in the time domain according to one or more configuration parameters of the PS mode). When the UE monitors the PS signal / channel during the wake-up window, the wireless device may receive the second DCI. The wireless device may verify the second DCI for disabling / deactivating the PS mode based on at least one of the first RNTI dedicated to the PS mode, one or more fields of the second DCI. The wireless device may verify the second DCI for disabling / deactivating the PS mode by implementing the example embodiment of FIG. 29. In one example, verification of disabling / deactivating the PS mode (e.g., successful verification of the second DCI for disabling PS as shown in FIG. 32) may be achieved, for example, by implementing the examples of FIG. 27, FIG. 28, and / or FIG. 29 in response to at least one of the CRC bits of the second DCI being scrambled by the first RNTI and one or more fields of the second DCI being set to one or more predefined values.
[0276] In response to a successful verification of the second DCI for disabling / deactivating the PS mode, the wireless device may disable (or deactivate) the PS mode and / or switch from the PS mode to a normal access mode. In response to switching to the normal access mode (e.g., a full-functionality mode as shown in FIG. 32), the wireless device may monitor the PDCCH as configured. In response to switching to the normal access mode, the wireless device may monitor the PDCCH for DCI having one or more second DCI formats on one or more second search spaces of one or more second control resource sets (e.g., SS1 / CORESET1, SS2 / CORESET2, ..., SSn / CORESETn (as shown in FIG. 32). The wireless device may transmit or receive a data packet based on the DCI received via the PDCCH. In response to switching to the normal access mode, the wireless device may transmit an SRS, transmit on a RACH, transmit on a UL-SCH, and / or receive a DL-SCH.
[0277] As shown in FIG. 32, the base station may transmit a third DCI (e.g., the third DCI in FIG. 32) indicating enabling / activating the PS mode to the wireless device. The wireless device may verify the third DCI for enabling / activating the PS mode based on at least one of the first C-RNTI dedicated to the PS mode, the one or more fields of the third DCI. The wireless device may verify the third DCI for enabling / activating the PS mode by implementing the example embodiment of FIG. 28 above. In one example, the verification of enabling the PS mode (e.g., successful verification of the third DCI for enabling the PS as shown in FIG. 32) may be achieved in response to at least one of the CRC bits of the third DCI being scrambled by the first RNTI, the one or more fields of the third DCI being set to one or more predefined values. In response to the successful verification of the third DCI for enabling the PS mode, the wireless device may enable (or activate) the PS mode and / or switch from the normal access mode to the PS mode.
[0278] As shown in FIG. 32, the base station may dynamically or semi-statically activate / deactivate the power saving mode of the wireless device by at least one of scrambling the CRC bits of the DCI with the RNTI dedicated to the power saving mode and / or setting one or more fields of the DCI to one or more predefined values. The wireless device may determine that the DCI indicates activation / deactivation of the power saving mode by checking at least one of whether the CRC bits of the DCI are scrambled by the RNTI dedicated to the power saving mode and whether one or more fields of the DCI are set to one or more predefined values. The wireless device may activate the power saving mode in response to the DCI indicating activation of the power saving mode. In the power saving mode, the wireless device may decrease / reduce PDCCH monitoring (e.g., monitoring the first set of PDCCH candidates) before receiving a wake-up indication or signal during the power saving mode. The wireless device may deactivate the power saving mode in response to the DCI indicating deactivation of the power saving mode. In response to deactivating the power saving mode, the wireless device may increase PDCCH monitoring (e.g., monitoring a second set of PDCCH candidates, the second set being greater than the first set). The above embodiment may reduce the blind decoding complexity of the wireless device when monitoring the PDCCH if the power saving mode is supported by the wireless device. The above exemplary embodiment may further improve the DCI reception probability at the wireless device if the power saving mode is supported by the wireless device, the DCI indicating the activation / deactivation of the power saving mode. The exemplary embodiment may improve the power consumption of the wireless device when communicating with a base station.
[0279] 33 illustrates an example embodiment of a DCI-based power saving enablement / disablement (or activation / deactivation) mechanism when DRX operation is configured. A base station (e.g., gNB in FIG. 33) may transmit one or more RRC messages to a wireless device (e.g., UE in FIG. 33) that include a first configuration parameter for a power saving (e.g., PS in FIG. 33) operation (procedure, mode, or state).
[0280] In one embodiment, the first configuration parameter may indicate a first Radio Network Temporary Identifier (RNTI) dedicated to the power saving mode and one or more PS parameters. The first RNTI may be dedicated to the PS mode. The one or more PS parameters may indicate at least one of one or more first search spaces (e.g., a common search space or a UE-specific search space), one or more first control resource sets, one or more first DCI formats (e.g., DCI format 0-0, 1-0, or any other DCI format), and / or one or more PS signal parameters (e.g., PS signal format, periodicity, time / frequency location).
[0281] In one embodiment, the one or more RRC messages may further include second configuration parameters indicating at least a second RNTI, one or more second search spaces, one or more second DCI formats, and one or more second control resource sets. The at least second RNTI may include at least one of a C-RNTI, a P-RNTI, a SI-RNTI, a CS-RNTI, a RA-RNTI, a TC-RNTI, an MCS-C-RNTI, a TPC-PUCCH-RNTI, a TPC-PUSCH-RNTI, a TPC-SRS-RNTI, an INT-RNTI, an SFI-RNTI, and / or an SP-CSI-RNTI. The wireless device may receive the first DCI via a PDCCH. In one embodiment, the first RNTI dedicated to the PS mode may be different from the at least second RNTI.
[0282] In one embodiment, the one or more RRC messages may further include one or more DRX parameters of the DRX operation, as shown in Figure 33. The one or more DRX parameters may include at least one of a short DRX cycle parameter, a long DRX cycle parameter, one or more DRX timer values of one or more DRX timers (e.g., drx-onDurationTimer, drx-InactivityTimer, drxRetransmissionTimerDL, drxRetransmissionTimerUL, drx-HARQ-RTT-TimerDL, and / or drx-HARQ-RTT-TimerUL).
[0283] As shown in FIG. 33, a wireless device (or UE) may communicate with a base station in a normal access mode / state (or full functionality mode). The base station may transmit a first DCI (e.g., the first DCI of FIG. 33) indicating to enable a power saving (e.g., PS as shown in FIG. 33) mode to the wireless device, for example, if a data service is suitable for the PS mode or if the wireless device may function in the PS mode. The wireless device may receive the first DCI via a first PDCCH. The wireless device may verify the first DCI for enabling the PS mode based on at least one of the first RNTI dedicated to the PS mode, one or more fields of the first DCI. The wireless device may verify the first DCI for enabling the PS mode, for example, by implementing the example embodiment of FIG. 28.
[0284] In one example, verification of enabling the PS mode (e.g., successful verification of the first DCI for enabling PS as shown in FIG. 33) may be accomplished in response to at least one of: CRC bits of the first DCI being scrambled by the first RNTI, one or more fields of the first DCI being set to one or more predefined values. In response to the successful verification of the first DCI for enabling the PS mode, the wireless device may enable (or activate) the PS mode and / or switch from a normal access mode to the PS mode.
[0285] In one example, as shown in FIG. 33, in the PS mode, the wireless device may monitor a first PDCCH for at least one DCI having one or more first DCI formats on one or more first search spaces of one or more first control resource sets in a wake-up window. The at least one DCI may indicate a wake-up indication or a sleep indication. In the PS mode, the wireless device may monitor a PS signal according to one or more PS signal parameters in a wake-up window. In the PS mode, the wireless device may not transmit a PUCCH / PUSCH / SRS / PRACH before detecting / receiving a PS signal or at least one DCI. In the PS mode, the wireless device may not receive a PDSCH before detecting / receiving a PS signal or at least one DCI. In the PS mode, the wireless device may not monitor a PDCCH on one or more second search spaces of one or more second control resource sets before detecting / receiving a PS signal or at least one DCI. In the PS mode, in response to detecting / receiving a PS signal or at least one DCI, with a DRX operation configured, the wireless device may monitor the PDCCH discontinuously in accordance with one or more DRX parameters of the DRX operation over one or more second search spaces of one or more second control resource sets. In response to detecting / receiving a PS signal or at least one DCI, the wireless device may monitor the PDCCH in a DRX active time (e.g., a DRX on cycle).
[0286] In one embodiment, in the PS mode, the wireless device may monitor a first PDCCH for at least one DCI having one or more first DCI formats on one or more first search spaces of one or more first control resource sets in a wake-up window. The at least one DCI may indicate a wake-up indication or a sleep indication. In the PS mode, the wireless device may monitor a PS signal according to one or more PS signal parameters in the wake-up window. In the PS mode, the wireless device may not detect / receive a PS signal or the at least one DCI during the wake-up window. In response to not detecting / receiving a PS signal or the at least one DCI, the wireless device may skip monitoring the PDCCH even in a DRX active time (e.g., a DRX on cycle).
[0287] As shown in FIG. 33, the base station may transmit a second DCI (e.g., the second DCI of FIG. 33) indicating disabling (or deactivating) the PS mode to the wireless device. The base station may transmit the second DCI in a wake-up window (e.g., this may occur periodically in the time domain according to one or more configuration parameters of the PS mode). The wireless device may receive the second DCI if the wireless device monitors a PS signal / channel during the wake-up window. The wireless device may verify the second DCI for disabling / deactivating the PS mode based on at least one of the first RNTI dedicated to the PS mode, one or more fields of the second DCI. The wireless device may verify the second DCI for disabling / deactivating the PS mode by implementing the example embodiment of FIG. 29.
[0288] In one example, verification of disabling / deactivating the PS mode (e.g., successful verification of the second DCI for disabling the PS mode as shown in FIG. 33) may be accomplished in response to at least one of: CRC bits of the second DCI being scrambled by the first RNTI; one or more fields of the second DCI being set to one or more values (e.g., predefined or preconfigured).
[0289] In response to a successful verification of the second DCI for disabling / deactivating the PS mode, the wireless device may disable (or deactivate) the PS mode and / or switch from the PS mode to a normal access mode. In response to switching to the normal access mode (e.g., a full functionality mode as shown in FIG. 33), the wireless device may monitor the PDCCH as configured. In response to switching to the normal access mode, the wireless device may monitor the PDCCH discontinuously according to one or more DRX parameters of the DRX operation on one or more second search spaces of one or more second control resource sets. The wireless device may monitor the PDCCH at a DRX active time (e.g., a DRX on cycle). In response to switching to the normal access mode, the wireless device may transmit an SRS, transmit on a RACH, transmit on a UL-SCH, and / or receive a DL-SCH.
[0290] FIG. 34 illustrates a diagram of an example embodiment of power save mode enabling / disabling based on DCI verification. In one example, the base station may transmit a first DCI (e.g., the first DCI of FIG. 34) indicating enabling a power save (e.g., PS as shown in FIG. 34) mode to the wireless device, e.g., if a data service is suitable for the PS mode or if the wireless device can function in the PS mode. The wireless device may receive the first DCI via a first PDCCH. The wireless device may verify the first DCI for enabling the PS mode based on at least one of the first RNTI, the one or more fields of the first DCI, which are dedicated to the PS mode. The wireless device may verify the first DCI for enabling the PS mode, e.g., by implementing the example embodiment of FIG. 28. In response to the verification being achieved, the wireless device may perform one or more actions of the PS mode, e.g., by implementing the example embodiment of FIG. 27 (e.g., if DRX is configured) or FIG. 33 (e.g., if DRX is configured).
[0291] As shown in FIG. 34, the base station may transmit a second DCI (e.g., the second DCI of FIG. 34) indicating disabling (or deactivating) the PS mode to the wireless device. The wireless device may verify the second DCI, for example, by implementing the exemplary embodiment of FIG. 29. The wireless device may consider that the verification is not achieved (e.g., failed verification as shown in FIG. 34) according to the exemplary embodiment of FIG. 29. In response to the verification not being achieved, the wireless device may remain in the PS mode. In response to remaining in the PS mode, the wireless device may perform one or more actions of the PS mode, for example, by implementing the exemplary embodiment of FIG. 27 (e.g., when DRX is not configured) or FIG. 33 (e.g., when DRX is configured).
[0292] FIG. 35 illustrates a diagram of an example embodiment of power save mode enable / disable based on DCI verification. In one example, a wireless device (e.g., the UE of FIG. 35) may communicate with a base station in a normal access mode / state (or a full functionality mode). The base station may transmit a DCI to the wireless device indicating to enable a power save (e.g., PS as shown in FIG. 35) mode, for example, if a data service is suitable for the PS mode or if the wireless device can function in the PS mode. The wireless device may receive the DCI via a PDCCH. The wireless device may verify the DCI for enabling the PS mode based on at least one of the first RNTI, the one or more fields of the DCI, which are dedicated to the PS mode. The wireless device may verify the DCI for enabling the PS mode, for example, by implementing the example embodiment of FIG. 28. The wireless device may consider that verification has not been achieved (e.g., failed verification as shown in FIG. 35) according to the example embodiment of FIG. 28. In response to verification not being achieved, the wireless device may remain in the full functionality mode. In response to maintaining in the full functionality mode, the wireless device may continuously monitor the PDCCH if DRX is not configured and may discontinuously monitor the PDCCH if DRX is configured.
[0293] In one example, if the wireless device successfully verifies the DCI for enabling / disabling the PS mode, the wireless device may transmit a MAC CE to the base station as a confirmation of receipt of the DCI for enabling / disabling the PS mode. In one example, the MAC CE for the PS confirmation may be identified by an LCID in the MAC subheader, where the LCID is different from other LCIDs (e.g., the LCID values of FIG. 18 or FIG. 19). In one example, the MAC CE for the PS confirmation may have a constant size of zero bits. In one example, the MAC subheader of the MAC CE for the PS configuration may not have a length field, for example, as shown in FIG. 16C. By implementing the example embodiment (e.g., by transmitting a MAC CE to the base station as a confirmation of receipt of the DCI for enabling / disabling the PS mode), the base station and the wireless device may align on the status of the PS mode of the wireless device.
[0294] In existing technologies, a base station may transmit a DCI signal for power saving operation (e.g., based on a wake-up / sleep indication or a dormant transition) to semi-statically or dynamically indicate a power saving mode of an NR wireless device. The existing power saving operation (e.g., based on a wake-up / sleep indication, dormant transition, etc.) may increase the signaling overhead for indicating a power saving operation to a wireless device, for example, when a large number of wireless devices are supported by a base station. Exemplary embodiments implement enhanced RRC signaling, control channel monitoring, and DCI format to reduce downlink control overhead for signaling a power saving mode to a wireless device. In one example of an embodiment, a base station may transmit at least one RRC message including a power saving radio network temporary identifier (PS-RNTI) to a group of one or more wireless devices for monitoring a common search space for receiving a group-common DCI, where the group-common DCI indicates power saving information for the group of one or more wireless devices. An embodiment enables a base station to configure a common search space of a cell (e.g., a primary cell) to transmit power saving information in the group-common DCI. The embodiment can reduce downlink control signaling overhead. In one example of the embodiment, the base station can transmit a group-common DCI having an extended DCI format including multiple blocks based on the PS-RNTI, each block being associated with a respective wireless device of a group of wireless devices, and the group-common DCI indicating power saving information of the respective wireless device. The extended DCI format reduces downlink signaling overhead by implementing multiple power saving information for different wireless devices in the same group-common DCI. The at least one RRC message can further include a location indicator of the block of the wireless device. The location indicator in the at least one RRC message identifies a block of the multiple blocks in the group-common DCI for power saving indication of the wireless device.The location indicator (in the RRC) and the enhanced DCI processing allow the base station to transmit and / or the wireless device to receive a particular block in a common DCI that includes multiple blocks for multiple wireless devices. In one example, in response to a block corresponding to the wireless device and including a wake-up indication, the wireless device may wake up (e.g., monitor the PDCCH in a DRX active time of a DRX cycle). In one example, in response to a block corresponding to the wireless device and including a sleep indication, the wireless device may go to sleep (e.g., skip or stop monitoring the PDCCH in a DRX active time of a DRX cycle). Exemplary embodiments reduce downlink signaling overhead.
[0295] In existing technologies, a base station may transmit a DCI signal for power saving operation (e.g., based on a wake-up / sleep indication or a dormant transition) to indicate a power saving mode of an NR wireless device. The existing power saving operation (e.g., based on a wake-up / sleep indication, a dormant transition, etc.) may increase the signaling overhead for indicating the power saving operation to a wireless device, for example, when a wireless device is configured with multiple cells and different cells of the multiple cells may have different power saving operations and / or when there are a large number of wireless devices served by a base station. An exemplary embodiment implements enhanced RRC signaling, control channel monitoring, and DCI format to reduce the downlink control overhead for signaling a power saving mode to a wireless device. The base station may transmit at least one RRC message including a PS-RNTI to a group of one or more wireless devices for monitoring a common search space for receiving a group-common DCI, the group-common DCI indicating power saving information for the group of one or more wireless devices. The embodiment enables the base station to configure a common search space of cells (e.g., primary cells) to transmit power saving information in a group-common DCI. The embodiment can reduce downlink control signaling overhead. In one example of the embodiment, the base station can transmit a group-common DCI having an extended DCI format including multiple blocks based on the PS-RNTI, each block being associated with a respective wireless device of a group of wireless devices, and the group-common DCI indicating power saving information of the respective wireless device. The extended DCI format reduces downlink signaling overhead by implementing multiple power saving information for different wireless devices in the same group-common DCI. The at least one RRC message may further include a location indicator of the block of the wireless device. The location indicator in the at least one RRC message identifies a block of the multiple blocks in the group-common DCI for power saving indication of the wireless device.The location indicator (in the RRC) and enhanced DCI processing allows the base station to transmit and / or the wireless device to receive a particular block in a common DCI that includes multiple blocks for multiple wireless devices. In one example, in response to a block corresponding to the wireless device including an dormancy indication indicating a dormant state of one or more secondary cells of the wireless device, the wireless device may transition the one or more secondary cells to a dormant state. In response to the one or more secondary cells being in a dormant state, the wireless device may stop monitoring PDCCHs on / for the one or more secondary cells and transmit CSI reports for the one or more secondary cells. In one example, in response to a block corresponding to the wireless device including an dormancy indication indicating a non-dormant state of one or more secondary cells of the wireless device, the wireless device may transition the one or more secondary cells to a non-dormant state. In response to the one or more secondary cells being in a non-dormant state, the wireless device may monitor PDCCHs on / for the one or more secondary cells and transmit CSI reports for the one or more secondary cells. Exemplary embodiments reduce downlink signaling overhead. The example embodiments enable a base station and / or a wireless device to transition one or more particular cells of a wireless device to a dormant or non-dormant state.
[0296] In existing technologies, a base station may transmit a DCI signal for power saving operation (e.g., based on a wake-up / sleep indication or a dormant transition) to indicate a power saving mode of an NR wireless device. The existing power saving operation (e.g., based on a wake-up / sleep indication, a dormant transition, etc.) may increase the signaling overhead for indicating the power saving operation to a wireless device, for example, when a wireless device is configured with multiple cells and different cells of the multiple cells may have different power saving operations and / or when there are a large number of wireless devices served by a base station. An exemplary embodiment implements enhanced RRC signaling, control channel monitoring, and DCI format to reduce the downlink control overhead for signaling a power saving mode to a wireless device. The base station may transmit at least one RRC message including a PS-RNTI to a group of one or more wireless devices for monitoring a common search space for receiving a group-common DCI, the group-common DCI indicating power saving information for the group of one or more wireless devices. The embodiment enables a base station to configure a common search space of cells (e.g., primary cells) to transmit power saving information in a group-common DCI. The embodiment can reduce downlink control signaling overhead. In one example of the embodiment, the base station can transmit a group-common DCI having an extended DCI format including multiple blocks based on the PS-RNTI, each block being associated with a respective wireless device of a group of wireless devices, and the group-common DCI indicating power saving information of the respective wireless device. In one example, each block corresponding to a wireless device can include a wake-up indication indicating wake-up or sleep, and one or more dormant indications indicating one or more SCell dormant / non-dormant states. Each dormant indication of the one or more dormant indications can indicate a dormant / non-dormant state of one or more secondary cells associated with the dormant indication of the one or more dormant indications.The extended DCI format reduces downlink signaling overhead by implementing multiple power saving information including wake-up / sleep indication and dormancy indication of one or more SCells of different wireless devices in the same group-common DCI. The at least one RRC message may further include a location indicator of the block of the wireless device. The location indicator in the at least one RRC message identifies a block of the multiple blocks in the group-common DCI for the power saving indication of the wireless device. In one embodiment, the at least one RRC message may further include a second location indicator that identifies an SCell dormancy indication of one or more SCells of the multiple SCells of the wireless device. The one or more location indicators (in the RRC) and the extended DCI processing enable the base station to transmit and / or the wireless device to receive a specific block in a common DCI including multiple blocks of multiple wireless devices, the specific block including a wake-up / sleep indication of the wireless device and a dormancy indication of the SCell of the wireless device. The exemplary embodiment enables a base station to wake up one or more specific wireless devices among a plurality of wireless devices and transition one or more SCells among a plurality of SCells of the one or more specific wireless devices to a dormant / non-dormant state via a single group common DCI. The exemplary embodiment reduces signaling overhead and power consumption of the wireless devices.
[0297] In one example, in response to a block corresponding to the wireless device and including a wake-up indication, the wireless device may wake up (e.g., monitor a PDCCH at a DRX active time of a DRX cycle). In one example, in response to a block corresponding to the wireless device and including a sleep indication, the wireless device may go to a sleep state (e.g., skip or stop monitoring a PDCCH at a DRX active time of a DRX cycle). Exemplary embodiments reduce downlink signaling overhead. In one example, in response to a block corresponding to the wireless device including a dormancy indication indicating a dormant state of one or more secondary cells of the wireless device, the wireless device may transition one or more secondary cells to a dormant state. In response to the one or more secondary cells being dormant, the wireless device may stop monitoring a PDCCH on / for the one or more secondary cells and transmit a CSI report for the one or more secondary cells. In one example, in response to a block corresponding to the wireless device including a dormancy indication indicating a non-dormant state of one or more secondary cells of the wireless device, the wireless device may transition one or more secondary cells to a non-dormant state. In response to one or more secondary cells being in a non-dormant state, the wireless device may monitor a PDCCH on / for the one or more secondary cells and transmit a CSI report of the one or more secondary cells. The exemplary embodiments enable the wireless device to wake up (or sleep) on multiple cells and transition one or more SCells of the multiple cells to a dormant or non-dormant state. The exemplary embodiments reduce downlink signaling overhead for indicating the wake-up / sleep and dormant states of the SCells. The exemplary embodiments may reduce the complexity of blind decoding of the wireless device when monitoring the PDCCH if a power saving mode (or operation) is supported by the wireless device.The example embodiments can reduce signaling overhead for delivering various power saving information within a single DCI and to multiple wireless devices.
[0298] In one embodiment, the term power saving mode may be referred to using other terminology such as power saving operation, power saving procedure, power saving state, SCell hibernation state, and the like.
[0299] FIG. 36 illustrates an example embodiment of enabling / disabling a power saving mode based on a group command DCI for multiple wireless devices. In one embodiment, a base station can transmit a group command DCI to multiple wireless devices, where the group command DCI indicates activation / deactivation of the PS mode of the multiple wireless devices. The group command DCI can be transmitted in a first DCI format (e.g., DCI format 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP specifications) or a second DCI format (e.g., a new DCI format to be defined in the future). In one embodiment, the group command DCI can be CRC-scrambled by a first RNTI dedicated to the PS mode, indicating that the group command DCI is for PS mode activation / deactivation. The first RNTI may be different from the second RNTI (e.g., C-RNTI, P-RNTI, SI-RNTI, CS-RNTI, RA-RNTI, TC-RNTI, MCS-C-RNTI, TPC-PUCCH-RNTI, TPC-PUSCH-RNTI, TPC-SRS-RNTI, INT-RNTI, SFI-RNTI, and / or SP-CSI-RNTI).
[0300] As shown in FIG. 36, the group-common DCI may include multiple blocks. Each block of the multiple blocks may include one or more bits. The one or more bits may indicate activation or deactivation of a PS mode of a UE. In one embodiment, a first wireless device (e.g., the first UE in FIG. 36) may be associated with a first block of the group-common DCI (e.g., block 1 in FIG. 36), a second wireless device (e.g., the second UE in FIG. 36) may be associated with a second block of the group-common DCI (e.g., block 2 in FIG. 36), and so on. The association between the wireless device and the block of the group-common DCI may be indicated by a bit mapping manner of an RRC message. In one embodiment, with the bit mapping manner, a PS enable / disable command of the wireless device may be a block of the multiple blocks, and the position of the block within the multiple blocks is indicated by the RRC message.
[0301] In one embodiment, when a group of wireless devices receives a group command DCI for PS enable / disable. The wireless devices of the group of wireless devices can enable or disable the PS mode according to the PS enable / disable command of the UE. As shown in FIG. 36, the first wireless device can determine the PS enable / disable command of the first wireless device based on a first block of the plurality of blocks in the group common DCI, and the second wireless device can determine the PS enable / disable command of the second wireless device based on a second block of the plurality of blocks in the group common DCI, and so on. In response to the PS enable / disable command of the first block indicating to enable the PS mode, the first wireless device can activate the PS mode. In the PS mode, the first wireless device can perform at least one of monitoring a wake-up signal / channel, not monitoring a PDCCH other than the wake-up signal / channel before receiving a wake-up signal or a wake-up indication via the wake-up channel, and monitoring a PDCCH other than the wake-up signal / channel in response to or after receiving a wake-up signal or a wake-up indication via the wake-up channel. In response to the PS enable / disable command of the first block indicating to disable the PS mode, the first wireless device may disable / deactivate the PS mode. In response to disabling / deactivating the PS mode, the first wireless device may perform at least one of skipping monitoring a wake-up signal / channel, monitoring a PDCCH, and transmitting or receiving a data packet based on a DCI received on the PDCCH. Similarly, the second wireless device may enable or disable the PS mode based on the PS enable / disable command of a second block of the blocks in the group command DCI, and so on.
[0302] According to the exemplary embodiment of FIG. 36, a base station can enable / disable PS mode for multiple UEs by transmitting a group-common DCI. The group-common DCI can be transmitted by reusing an existing DCI format (e.g., DCI format 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP specifications) or a new DCI format defined in the future. The group-common DCI for PS enable / disable can be differentiated from other group-common DCI (e.g., slot format indication, preemption indication, and / or power control command) by assigning a different RNTI from other group-common DCIs. The exemplary embodiment can reduce the complexity of blind decoding of wireless devices for enabling / disabling PS mode. The exemplary embodiment can improve the downlink spectrum efficiency of the base station.
[0303] FIG. 37 illustrates an example embodiment of enabling / disabling power saving mode on multiple cells (and / or BWP) based on DCI. In one example, a base station can transmit a DCI to a wireless device, where the DCI indicates activation / deactivation of PS mode on multiple cells (and / or BWP). The DCI can be transmitted in a first DCI format (e.g., DCI format 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP specifications) or a second DCI format (e.g., a new DCI format to be defined in the future). In one example, the DCI can be CRC-scrambled by a first RNTI dedicated to PS mode, indicating that the DCI is for PS mode activation / deactivation on multiple cells / BWP. The first RNTI may be different from the second RNTI (e.g., C-RNTI, P-RNTI, SI-RNTI, CS-RNTI, RA-RNTI, TC-RNTI, MCS-C-RNTI, TPC-PUCCH-RNTI, TPC-PUSCH-RNTI, TPC-SRS-RNTI, INT-RNTI, SFI-RNTI, and / or SP-CSI-RNTI).
[0304] As shown in FIG. 37, the DCI may include multiple blocks. Each block of the multiple blocks may include one or more bits. The one or more bits may indicate activation or deactivation of a PS mode on a cell / BWP of the multiple cells / BWPs. In one embodiment, a first cell / BWP (e.g., the first cell / BWP of FIG. 37) may be associated with a first block of the DCI (e.g., block 1 of FIG. 37), a second cell / BWP (e.g., the second cell / BWP of FIG. 37) may be associated with a second block of the DCI (e.g., block 2 of FIG. 37), and so on. The association between a cell / BWP and a block of the multiple blocks in the DCI may be indicated by a bit mapping manner of an RRC message. In one embodiment, with the bit mapping manner, a PS enable / disable command for a cell / BWP may be a block of the multiple blocks, and the location of the block in the multiple blocks is indicated by an RRC message.
[0305] In one embodiment, when a wireless device receives a DCI for PS enable / disable on multiple cells / BWPs. The wireless device can enable or disable PS mode on cells / BWPs of the multiple cells / BWPs according to the PS enable / disable command of the cell / BWP. As shown in FIG. 37, the wireless device can determine the PS enable / disable command of the first cell / BWP based on a first block of the multiple blocks in the DCI, and can determine the PS enable / disable command of the second cell / BWP based on a second block of the multiple blocks in the DCI, and so on.
[0306] FIG. 38 illustrates an example embodiment of enabling / disabling power saving modes on multiple cells / BWPs based on DCI. A base station (e.g., gNB in FIG. 38) may transmit to a wireless device (e.g., UE in FIG. 38) one or more RRC messages including configuration parameters for power saving (e.g., PS in FIG. 38) operation (procedure, mode, or state) on multiple cells (and / or BWPs). The one or more RRC messages may include one or more cell-specific or cell-common RRC messages (e.g., ServingCellConfig IE, ServingCellConfigCommon IE, MAC-CellGroupConfig IE). In one example, a cell of the multiple cells may be a primary cell (e.g., PCell), a PUCCH secondary cell if a secondary PUCCH group is configured, a primary secondary cell (e.g., PSCell) if dual connectivity is configured, or a secondary cell. Each cell of the multiple cells may be identified (or associated) by a cell-specific identity (e.g., cell ID). In one example, a BWP of the multiple BWPs may be identified by a BWP index.
[0307] As shown in FIG. 38, a base station may transmit a DCI indicating PS mode activation / disabling on one or more cells / BWPs of a plurality of cells / BWPs to a wireless device. In one example, the DCI may be implemented according to the exemplary embodiment of FIG. 37. The wireless device may receive the DCI via a PDCCH. The wireless device may activate or deactivate (or enable or disable) the PS mode on one or more cells / BWPs according to the plurality of blocks of the DCI. In response to a PS enable / disable command of a first block of the DCI indicating to enable the PS mode, the wireless device may activate the PS mode on the first cell / BWP. In response to enabling the PS mode on the first cell / BWP, the first wireless device may perform at least one of monitoring a wake-up signal / channel on (and / or for) the first cell / BWP, not monitoring a PDCCH on (and / or for) the first cell / BWP before receiving a wake-up signal or wake-up indication via the wake-up channel, and monitoring a PDCCH on the first cell / BWP in response to or after receiving a wake-up signal or wake-up indication via the wake-up channel. In response to a PS enable / disable command of the first block indicating disabling the PS mode, the wireless device may disable / deactivate the PS mode on the first cell / BWP. In response to disabling / deactivating the PS mode on the first cell / BWP, the wireless device may perform at least one of skipping monitoring a wake-up signal / channel, monitoring a PDCCH on (and / or for) the first cell / BWP, and transmitting or receiving a data packet based on the DCI received on the PDCCH. Similarly, the wireless device may enable or disable the PS mode on the secondary cell / BWP based on a PS enable / disable command of a second block of the blocks in the DCI, and so on.
[0308] According to the exemplary embodiment of FIG. 37 and / or FIG. 38, a base station can enable / disable PS mode for multiple cells / BWPs by transmitting a DCI. The DCI can be transmitted by reusing an existing DCI format (e.g., DCI format 2-0 / 2-1 / 2-2 / 2-3 already defined in the 3GPP specifications) or a new DCI format defined in the future. The DCI for PS enable / disable can be distinguished from other DCIs (e.g., slot format indication, preemption indication, and / or power control command) by assigning a different RNTI from other DCIs. The exemplary embodiment can reduce the complexity of blind decoding of a wireless device for enabling / disabling PS mode. The exemplary embodiment can enable a base station (and / or a wireless device) to flexibly control power saving modes on multiple cells / BWPs. The exemplary embodiment can improve the downlink spectrum efficiency of a base station.
[0309] In one example, the wireless device may monitor a downlink control channel on a cell. The wireless device may receive a DCI via the downlink control channel. The wireless device may verify the DCI for activation of a power save mode based on at least one of a CRC bit of the DCI, one or more fields of the DCI. The wireless device may determine that the verification is achieved in response to the CRC bit of the DCI being scrambled with an RNTI dedicated to the power save mode and the one or more fields of the DCI being set to one or more predefined values. The one or more fields may include at least one of a new data indicator, a frequency domain resource allocation, a time domain resource allocation, and / or a HARQ process number. In response to the verification being achieved, the wireless device may activate a power save mode. The wireless device may stop monitoring the downlink control channel when the power save mode is activated.
[0310] In an example, the example embodiments of FIG. 27-FIG. 38 may be combined or selected to further improve the power consumption and / or signaling overhead of a wireless device. For example, the combined embodiment of FIG. 27 and FIG. 38 may provide a method for indicating a power saving operation of one or more SCells of a plurality of SCells via a DCI (e.g., one or more of existing DCI formats 0-0 / 0-1 / 1-0 / 1-1) based on a frequency domain resource allocation of the DCI being set to a predefined value. FIG. 39 illustrates an example of an embodiment. In an example, a wireless device may receive, from a base station, one or more RRC messages including a location parameter of a power saving indication of a plurality of power saving indications of at least one SCell of a plurality of SCells. The location parameter may identify a power saving indication of a plurality of power saving indications of the at least one SCell. It may be referred to as the power saving indication being associated with the at least one SCell based on the power saving indication indicating the power saving information of the at least one SCell. In an example, the power saving indication may include a dormant indication. The dormancy indication may indicate a dormant or non-dormant state of the at least one SCell. The wireless device may receive a DCI including a frequency domain resource allocation field. The wireless device may determine that the DCI includes multiple dormancy indications in response to the frequency domain resource allocation field of the DCI being set to a predefined value (e.g., all zeros or all ones). In response to determining the DCI including the multiple dormancy indications, the wireless device may transition the at least one SCell to a dormant state based on a dormant indication of the multiple dormant indications associated with the at least one SCell indicating a dormant state. In one embodiment, in response to determining the DCI including the multiple dormant indications, the wireless device may transition the at least one SCell to a non-dormant state based on a dormant indication of the multiple dormant indications associated with the at least one SCell indicating a non-dormant state.
[0311] FIG. 40 illustrates an example of an embodiment of a power saving operation. In one example, the wireless device may receive from a base station one or more RRC messages including a location parameter of a power saving indication among a plurality of power saving indications of at least one SCell among a plurality of SCells. The location parameter may identify a power saving indication among a plurality of power saving indications of the at least one SCell. In one example, the power saving indication may include a dormant indication. The dormant indication may indicate a dormant or non-dormant state of the at least one SCell. The wireless device may receive a DCI including a frequency domain resource allocation field. The wireless device may determine whether the frequency domain resource allocation field is set to a predefined value (e.g., all zeros or all ones).
[0312] In response to the frequency domain resource allocation field being set to a predefined value, the wireless device may determine that the DCI includes multiple dormancy indications. In response to determining the DCI including the multiple dormancy indications, the wireless device may transition the at least one SCell to a dormant state based on a dormant indication among the multiple dormancy indications associated with the at least one SCell indicating a dormant state. In response to determining the DCI including the multiple dormancy indications, the wireless device may transition the at least one SCell to a non-dormant state based on a dormant indication among the multiple dormant indications associated with the at least one SCell indicating a non-dormant state.
[0313] In one example, in response to the frequency domain resource allocation field not being set to a predefined value, the wireless device may determine a DCI indicating a normal grant (e.g., a downlink assignment or an uplink grant). In response to the DCI indicating a downlink assignment, the wireless device may receive a data packet via the downlink resources indicated by the frequency domain resource allocation field. In response to the DCI indicating an uplink grant, the wireless device may transmit a data packet via the uplink resources indicated by the frequency domain resource allocation field.
[0314] In one example, the embodiments of Figures 36 and 37 may be combined to further improve signaling overhead. Figure 41 illustrates one example of an embodiment. A base station may transmit one or more RRC messages to a wireless device, including a PS-RNTI for receiving a group common DCI for power saving operation. In one example, a base station may transmit a group common DCI including a plurality of blocks to a wireless device, where the group common DCI is scrambled with the PS-RNTI. Each of the plurality of blocks may indicate power saving information of a respective wireless device of the plurality of wireless devices. The one or more RRC messages may include a first location parameter indicating a location of a block of the plurality of blocks of the wireless device. In the example of Figure 41, block 1 associated with a first UE indicates first power saving information of the first UE, block 2 associated with a second UE indicates second power saving information of the second UE, and so on. In one example, each block of the plurality of blocks may include a plurality of sub-blocks. The multiple sub-blocks in the block may include at least one of a first sub-block (e.g., sub-block 0) that includes a wake-up indication (or sleep indication) and / or one or more second sub-blocks (e.g., sub-block 1, sub-block 2, etc.), each including a dormancy indication for at least a SCell. The one or more RRC messages may further include a second location parameter indicating a location of a sub-block among the multiple sub-blocks in the block for a dormancy indication for at least a SCell of a wireless device associated with the block. In the example of FIG. 41, sub-block 0 of block 1 includes a wake-up indication (or sleep indication) for the first UE, sub-block 1 of block 1 includes a first dormancy indication for at least a first SCell of the first UE, sub-block 2 of block 1 includes a second dormancy indication for at least a second SCell of the first UE, and so on.
[0315] 41, in response to a block (e.g., in subblock 0 of block 1) corresponding to the wireless device and including a wake-up indication, the wireless device may wake up (e.g., monitor the PDCCH in a DRX active time of a DRX cycle). In one embodiment, in response to a block (e.g., in subblock 0 of block 1) corresponding to the wireless device and including a sleep indication, the wireless device may go to sleep (e.g., skip or stop monitoring the PDCCH in the DRX active time of a DRX cycle).
[0316] In one embodiment, in response to a first subblock (e.g., subblock 1 of FIG. 41 ) of a plurality of subblocks in the block corresponding to at least a first SCell of the plurality of SCells and including a dormancy indication indicating a dormancy state of the at least first SCell of the wireless device, the wireless device may transition the at least first SCell to a dormant state. In response to the at least first SCell being dormant, the wireless device may stop monitoring a PDCCH on / for the at least first SCell and transmit a CSI report for the at least first SCell. In one embodiment, in response to a second subblock (e.g., subblock 2 of FIG. 41 ) of a plurality of subblocks in the block corresponding to at least a second SCell of the plurality of SCells and including a dormancy indication indicating a dormancy state of the at least second SCell of the wireless device, the wireless device may transition the at least second SCell to a dormant state. In response to the at least second SCell being in a dormant state, the wireless device may stop monitoring a PDCCH on / for the at least second SCell and transmit a CSI report for the at least second SCell. Similarly, the wireless device may determine a state transition of the at least third SCell of the wireless device based on a third subblock of the block, and so on.
[0317] In one embodiment, in response to a first subblock (e.g., subblock 1 of FIG. 41 ) of a plurality of subblocks in the block corresponding to at least a first SCell of the plurality of SCells and including a dormancy indication indicating a non-dormant state of the at least first SCell of the wireless device, the wireless device may transition the at least first SCell to a non-dormant state. In response to the at least first SCell being in a non-dormant state, the wireless device may monitor a PDCCH on / for the at least first SCell and transmit a CSI report for the at least first SCell. In one embodiment, in response to a second subblock (e.g., subblock 2 of FIG. 41 ) of a plurality of subblocks in the block corresponding to at least a second SCell of the plurality of SCells and including a dormant indication indicating a non-dormant state of the at least second SCell of the wireless device, the wireless device may transition the at least second SCell to a non-dormant state. In response to at least the second SCell being in a non-dormant state, the wireless device may monitor a PDCCH on / for the at least the second SCell and transmit a CSI report for the at least the second SCell. Similarly, the wireless device may determine a state transition of at least a third SCell of the wireless device based on a third subblock of the block, and so on. Exemplary embodiments enable a wireless device to transition one or more SCells of multiple cells to a dormant state or a non-dormant state based on waking up (or going to sleep) on multiple cells and receiving a single DCI. Exemplary embodiments reduce downlink signaling overhead for indicating the wake-up / sleep and dormant states of SCells. Exemplary embodiments may reduce the complexity of blind decoding of a wireless device when monitoring a PDCCH if a power saving mode (or operation) is supported by the wireless device. Exemplary embodiments may reduce signaling overhead for delivering various power saving information within a single DCI and to multiple wireless devices.
[0318] In one example, the wireless device may monitor a downlink control channel on a first search space of the cell when in the power saving mode. The wireless device may receive a DCI via the downlink control channel on the first search space. The wireless device may verify the DCI for deactivation of the power saving mode based on at least one of a CRC bit of the DCI, one or more fields of the DCI. The wireless device may determine that the verification is achieved in response to at least one of the CRC bits of the DCI being scrambled by an RNTI dedicated to the power saving mode, and one or more fields of the DCI being set to one or more predefined values. In response to the verification being achieved, the wireless device may deactivate the power saving mode. In response to deactivating the power saving mode, the wireless device may monitor the downlink control channel on the first search space and at least a second search space.
[0319] In one example, the wireless device may monitor a downlink control channel. The wireless device may receive a DCI via the downlink control channel. The DCI may include one or more power save activation / deactivation commands. The one or more power save activation / deactivation commands may be associated with a plurality of cells / BWPs. The wireless device may activate a power save mode on a first cell of the plurality of cells / BWPs in response to a power save activation / deactivation command of the one or more power save activation / deactivation commands indicating activation of the power save mode, the power save activation / deactivation command being associated with the first cell.
[0320] In one example, the wireless device may monitor a downlink control channel. The wireless device may receive a DCI via the downlink control channel. The DCI may include one or more power save activation / deactivation commands. The one or more power save activation / deactivation commands may be associated with a plurality of cells / BWPs. The wireless device may deactivate a power save mode on a first cell of the plurality of cells / BWPs in response to a power save activation / deactivation command of the one or more power save activation / deactivation commands indicating deactivation of the power save mode, the power save activation / deactivation command being associated with the first cell.
[0321] FIG. 42 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. At 4210, a wireless device (first UE) may receive an RRC message including a (received) PS-RNTI for a DCI informing of power saving information, a location parameter for receiving the power saving information for the wireless device. At 4220, the wireless device may receive a first DCI including a plurality of blocks (e.g., each block having a bit string of a fixed length) based on the PS-RNTI. In one embodiment, the location parameter indicates a location of the block among the plurality of blocks. The block includes a wake-up indication of the wireless device and a dormancy indication of at least one SCell. At 4230, the wireless device transitions to a wake-up state in response to the wake-up indication. At 4240, the wireless device transitions at least one SCell to a dormancy state in response to the dormancy indication.
[0322] According to an example embodiment, the wireless device receives the first DCI based on cyclic redundancy check bits of the first DCI being scrambled with the PS-RNTI.
[0323] According to an example embodiment, the RRC message indicates a DCI format of the DCI indicating the power saving information. The wireless device receives the first DCI based on the format of the first DCI being the DCI format.
[0324] According to an example embodiment, the transition to the wake-up state includes monitoring one or more downlink control channels (e.g., PDCCH) on the one or more cells to receive a second DCI, the second DCI including a downlink assignment on at least one of the one or more cells and / or an uplink grant for at least one of the one or more cells. The one or more cells include a PCell and / or at least one of the one or more SCells. The one or more SCells include at least one SCell and one or more second SCells.
[0325] According to an example embodiment, during the wake-up state, the wireless device performs at least one of monitoring a PDCCH on one or more cells, receiving downlink data packets via the one or more cells, and / or transmitting uplink signals on the one or more cells, where monitoring the PDCCH on the one or more cells includes monitoring the PDCCH on the one or more cells during a DRX active time of a DRX cycle of the DRX operation.
[0326] According to an example embodiment, the wireless device transitions at least one SCell to a dormant state in response to a dormant indication of the at least one SCell indicating a transition to a dormant state. Transitioning the at least one SCell to a dormant state includes at least one of stopping monitoring a PDCCH on the at least one SCell, stopping receiving downlink data packets via the at least one SCell, stopping transmitting uplink signals on the at least one SCell, and transmitting a CSI report for the at least one SCell.
[0327] According to an example embodiment, a wake-up indication corresponding to a wireless device includes a bit that indicates a transition to a wake-up state in response to the bit being set to a first value, and that indicates a transition to a sleep state in response to the bit being set to a second value.
[0328] According to an example embodiment, the wireless device transitions to a sleep state in response to a wake-up indication corresponding to the wireless device and indicating a transition to the sleep state. The sleep state includes a waiting time during which the wireless device at least one of: ceasing to monitor a PDCCH on one or more cells, ceasing to receive downlink data packets via the one or more cells, and / or ceasing to transmit uplink signals on the one or more cells. Ceasing to monitor a PDCCH on one or more cells includes skipping monitoring a PDCCH on one or more cells during a DRX active time of a DRX cycle.
[0329] According to an example embodiment, each of a plurality of blocks in a first DCI corresponding to a respective wireless device of a plurality of wireless devices signals power saving information for the respective wireless device, the blocks of the wireless device including a plurality of dormancy indications, each of the plurality of dormancy indications corresponding to one or more SCells indicating dormancy transitions of one or more SCells.
[0330] According to an example embodiment, the RRC message includes a configuration parameter indicating, for one or more SCells, a position of a dormancy indication among a number of dormancy indications within a block.
[0331] According to an example embodiment, in response to a dormancy indication indicating a non-dormant state transition for the at least one SCell, the wireless device transitions the at least one SCell to a non-dormant state. In response to the at least one SCell being in a non-dormant state, the wireless device performs at least one of monitoring a downlink control channel on the at least one SCell, receiving downlink data packets via the at least one SCell, and / or transmitting an uplink signal on the at least one SCell.
[0332] FIG. 43 is a flow diagram according to an aspect of an example embodiment of the present disclosure. At 4310, the wireless device may receive an RRC message including a PS-RNTI for (receiving) a DCI informing of power saving information, a location parameter for receiving the power saving information for the wireless device. At 4320, the wireless device may receive a first DCI including a plurality of blocks (e.g., each block having a bit string of a fixed length) based on the PS-RNTI. In one embodiment, the location parameter indicates a location of the block among the plurality of blocks. The block includes a wake-up indication of the wireless device. At 4330, the wireless device transitions to a sleep state in response to the wake-up indication indicating a sleep state, the sleep state including ceasing to monitor the PDCCH at a DRX active time of the DRX cycle.
[0333] According to an example embodiment, the wireless device transitions to a wake-up state based on a wake-up indication indicating a wake-up state, and the wake-up state includes a period during which the wireless device monitors a downlink control channel during a discontinuous reception (DRX) active time of DRX operation.
[0334] FIG. 44 is a flow diagram according to an aspect of an exemplary embodiment of the present disclosure. At 4410, a wireless device (e.g., a first UE) receives a received RRC message including a (received) PS-RNTI for a DCI of a first DCI format including a plurality of blocks and informing of power saving information of a plurality of wireless devices including the wireless device, and a location parameter for receiving the power saving information of the wireless device. At 4420, the wireless device can receive a first DCI having a first DCI format and including a first plurality of blocks (e.g., each block having a fixed length bit string) based on the PS-RNTI. In one example, the location parameter indicates a first location of a first block of the first plurality of blocks of the wireless device. The first block includes a wake-up indication of the wireless device. At 4430, the wireless device transitions to a wake-up state in response to the wake-up indication indicating a wake-up state, the wake-up state including monitoring a PDCCH during a DRX active time of a DRX cycle.
[0335] FIG. 45 is a flow diagram according to an aspect of an example embodiment of the present disclosure. At 4510, a wireless device (e.g., a UE) may receive an RRC message including a PS-RNTI for (receiving) a DCI including a plurality of blocks informing power saving information, a location parameter for receiving the power saving information for the wireless device, and / or a configuration parameter for one or more SCells. At 4520, the wireless device may receive a first DCI including a plurality of first blocks (e.g., each block having a fixed length bit string) based on the PS-RNTI. In one example, the location parameter indicates a first location of a first block of the first plurality of blocks of the wireless device. The first block includes a dormancy indication of at least one SCell of the one or more SCells of the wireless device. At 4530, the wireless device transitions the at least one SCell to a dormant state in response to the dormancy indication indicating a dormant state.
[0336] 46 is a flow diagram according to an aspect of an example embodiment of the present disclosure. At 4610, a wireless device (e.g., a first UE) may receive an RRC message including a PS-RNTI for receiving a DCI including multiple power saving indications for multiple UEs including the first UE, a DCI format of the DCI, and a position of the power saving indication among the multiple power saving indications corresponding to each UE of the multiple UEs. At 4620, the wireless device may receive a first DCI including a first plurality of power saving indications based on the PS-RNTI and the DCI format. At 4530, the wireless device transitions to a power saving state in response to a first power saving indication at a first position among the first plurality of power saving indications corresponding to the wireless device and indicating a transition to a power saving state.
[0337] FIG. 47 is a flow diagram according to an aspect of an example embodiment of the present disclosure. At 4710, a wireless device (e.g., UE) may receive a DCI via a first PDCCH of a first cell (e.g., PCell), where the DCI includes a frequency domain resource allocation field. At 4720, the wireless device may determine whether the DCI indicates a dormant state of the SCell based on the frequency domain resource allocation field being set to a predefined value. At 4730, the wireless device transitions the SCell to a dormant state based on the determining, and during the dormant state, the wireless device stops monitoring the second PDCCH on the SCell. In one example, during the dormant state, the wireless device transmits a CSI report for the SCell via the PCell or the PUCCH SCell.
[0338] According to an example embodiment, the predefined value may be a bit string of all zeros. In one example, the predefined value may be a bit string of all ones.
[0339] According to an example embodiment, the wireless device transitions the SCell to a dormant state further based on the DCI including one or more fields indicating a dormant state transition of the SCell.
[0340] According to an example embodiment, the wireless device transmits to the base station one or more assistant parameters of the wireless device, the assistant parameters indicating whether the wireless device supports a dormant state transition, and receives from the base station dormant state configuration parameters of the SCell based on the one or more assistant parameters.
[0341] According to an example embodiment, in response to receiving a DCI indicating a dormancy transition of the SCell, the wireless device transmits a medium access control control element indicating confirmation of receipt of the DCI. The medium access control control element has a constant size of zero bits.
[0342] According to an example embodiment, the wireless device may monitor a downlink control channel on the SCell before receiving a DCI indicating a dormant state transition of the SCell.
[0343] According to an example embodiment, the DCI includes a plurality of dormancy indications, each of the plurality of dormancy indications corresponding to one or more cells of the plurality of cells, each of the plurality of dormancy indications corresponding to one or more cells of the plurality of cells indicating a dormancy state transition of the one or more cells, the plurality of cells including one or more SCells.
[0344] According to an example embodiment, a wireless device receives one or more RRC messages from a base station that include a configuration parameter indicating a location of a dormancy indication among a plurality of dormancy indications for one or more cells.
[0345] According to an example embodiment, the wireless device determines whether the DCI indicates a dormant state of the SCell based further on one or more second fields of the DCI, the one or more second fields including a modulation and coding scheme field, a new data indicator field, a redundancy version field, and / or a hybrid acknowledgement repeat request field.
[0346] The embodiments may be configured to operate as needed. The disclosed mechanisms may be executed when certain criteria are met, for example, in a wireless device, a base station, a wireless environment, a network, a combination of the above, etc. Exemplary criteria may be based at least in part, for example, on wireless device or network node configuration, traffic load, initial system settings, packet size, traffic characteristics, a combination of the above, etc. Once one or more criteria are met, various exemplary embodiments may be applied. Thus, it may be possible to implement exemplary embodiments that selectively implement the disclosed protocols.
[0347] A base station may communicate with various wireless devices. A wireless device and / or a base station may support multiple technologies and / or multiple releases of the same technology. A wireless device may have some specific capabilities depending on the category and / or capabilities of the wireless device. A base station may include multiple sectors. When the present disclosure refers to a base station communicating with multiple wireless devices, the present disclosure may refer to a subset of all wireless devices in the coverage area. The present disclosure may refer to multiple wireless devices of a given LTE or 5G release with a given capability and in a given sector of the base station. Multiple wireless devices in the present disclosure may refer to selected multiple wireless devices and / or a subset of all wireless devices in the coverage area that perform according to the disclosed methods, etc. For example, there may be multiple base stations or multiple wireless devices in a coverage area that may not comply with the disclosed methods because those wireless devices or base stations perform based on older releases of LTE or 5G technology.
[0348] In this disclosure, "a" and "an" and similar phrases should be interpreted as "at least one" and "one or more." Similarly, any term ending with the suffix "(s)" should be interpreted as "at least one" and "one or more." In this disclosure, the term "may" should be interpreted as "may, for example." In other words, the term "may" implies that the phrase following the term "may" is an example of one of many suitable possibilities that may or may not be used in one or more of the various embodiments.
[0349] If A and B are sets and every element of A is also an element of B, then A is called a subset of B. Only non-empty sets and subsets are considered herein. For example, possible subsets of B={cell1, cell2} are {cell1}, {cell2}, and {cell1, cell2}. The phrase "based on" (or equivalently "based at least on") indicates that the phrase following the term "based on" is one example of many suitable possibilities that may or may not be used in one or more of the various embodiments. The phrase "in response to" (or equivalently "at least in response to") indicates that the phrase following the phrase "in response to" is one example of many suitable possibilities that may or may not be used in one or more of the various embodiments. The phrase "in response to" (or equivalently "at least in response to") indicates that the phrase following the phrase "in response to" is one example of many suitable possibilities that may or may not be used in one or more of the various embodiments. The phrase "adopted / used" (or, equivalently, "adopted / used at least") indicates that the phrase following the phrase "adopted / used" is one example of many suitable possibilities that may or may not be used in one or more of various embodiments.
[0350] The term "configured" may relate to the capacity of a device, whether the device is in an operational or non-operational state. "Configured" may also refer to a particular setting of a device that affects the operational characteristics of the device, whether the device is in an operational or non-operational state. In other words, hardware, software, firmware, registers, memory values, etc. may be "configured" within a device, whether the device is in an operational or non-operational state, to provide the device with a particular characteristic. A term such as "a control message that causes in a device" may mean that a control message has parameters that may be used to configure a particular characteristic or to implement a particular action in a device, whether the device is in an operational or non-operational state.
[0351] Various embodiments are disclosed in this disclosure. Limitations, features, and / or elements from the disclosed exemplary embodiments can be combined to create additional embodiments within the scope of the present disclosure.
[0352] In this disclosure, a parameter (or equivalently referred to as a field, or information element: IE) can contain one or more information objects, which can contain one or more other objects. For example, parameter (IE) N contains parameter (IE) M, which contains parameter (IE) K, which contains parameter (IE) J. For example, N contains K, and N contains J. In an exemplary embodiment, when one or more messages contain multiple parameters, it means that a parameter of the multiple parameters is included in at least one of the one or more messages, but need not be included in each of the one or more messages.
[0353] Furthermore, many features presented above are described as optional by the use of "may" or by the use of parentheses. For the sake of brevity and readability, this disclosure does not explicitly describe each and every variation that may be obtained by selecting from a set of optional features. However, this disclosure should be construed as explicitly disclosing all such variations. For example, a system described as having three optional features can be embodied in seven different ways, i.e., with only one of the three possible features, any two of the three features, or all three of the three features.
[0354] Many of the elements described in the disclosed embodiments may be implemented as modules, where a module is defined as an element that performs a defined function and has a defined interface to other elements. The modules described in this disclosure may be implemented in hardware, software in combination with hardware, firmware, wetware (i.e., hardware with biological elements), or a combination thereof, all of which may be behaviorally equivalent. For example, a module may be implemented in software routines written in a computer language configured to run on a hardware machine (C, C++, Fortran, Java, Basic, Matlab, etc.) or Simulink, Stateflow, GNU Octave, or LabVIEW MathScript. Additionally, it may be possible to implement modules using physical hardware that incorporates discrete or programmable analog, digital, and / or quantum hardware. Examples of programmable hardware include computers, microcontrollers, microprocessors, application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs), and complex programmable logic devices (CPLDs). Computers, microcontrollers, and microprocessors are programmed using languages such as assembly, C, C++, etc. FPGAs, ASICs, and CPLDs are often programmed using Hardware Description Languages (HDLs) such as Verilog or VHSIC Hardware Description Language (VHDL), which configure the connections between the internal hardware modules with less functionality in the programmable device. To achieve a functional modular result, the above techniques are often used in combination.
[0355] This patent document disclosure incorporates material that is subject to copyright protection. The copyright owner has no objection to the facsimile reproduction by anyone of the patent document or the patent disclosure, as it appears in the Patent and Trademark Office patent files or records, for the limited purposes required by law, but otherwise reserves all and any copyright rights whatsoever.
[0356] While various embodiments have been described above, it should be understood that they are presented by way of example and not limitation. It will be apparent to those skilled in the art that various changes in form and details can be made without departing from the scope. Indeed, after reading the above ...
Claims
1. A method comprising: transitioning, by a wireless device, a secondary cell to a dormant state in response to receiving downlink control information including a frequency domain resource allocation field set to a predefined value.
2. The method of claim 1 , further comprising: in response to transitioning the secondary cell to the dormant state, transmitting a channel state information report for the secondary cell.
3. The method of claim 1 , wherein the predefined value comprises a bit string of zeros.
4. The method of claim 1 , wherein the predefined value comprises a bit string of ones.
5. 2. The method of claim 1, wherein the wireless device transitions the secondary cell to the dormant state based on the downlink control information further comprising one or more fields indicating transition of the secondary cell to the dormant state.
6. transmitting one or more assistant parameters of the wireless device to a base station, the assistant parameters indicating whether the wireless device supports a dormant state transition; The method of claim 1 , further comprising: receiving, from the base station, configuration parameters for the dormant state of the secondary cell based on the one or more assistant parameters.
7. 2. The method of claim 1, further comprising: in response to receiving the downlink control information indicating a dormant state transition of the secondary cell, transmitting a medium access control control element indicating a confirmation of the reception of the downlink control information.
8. The method of claim 7 , wherein the media access control control elements have a constant size of zero bits.
9. In response to the secondary cell being in the dormant state, the wireless device: ceasing to monitor a downlink control channel on the secondary cell; stopping receiving downlink packets via the secondary cell; and The method of claim 1 , further comprising: ceasing to transmit uplink signals on the secondary cell.
10. 10. The method of claim 9, further comprising: monitoring the downlink control channel on the secondary cell prior to receiving the downlink control information indicating a transition of the secondary cell to the dormant state.
11. 10. The method of claim 9, wherein the wireless device stops monitoring the downlink control channel to receive downlink assignments on the secondary cell.
12. 10. The method of claim 9, wherein the wireless device stops monitoring the downlink control channel to receive an uplink grant on the secondary cell.
13. The method of claim 1 , wherein the downlink control information includes a plurality of dormancy indications, each of the plurality of dormancy indications corresponding to one or more cells of a plurality of cells.
14. The method of claim 13 , wherein each of the plurality of dormancy indications corresponding to the one or more cells of the plurality of cells indicates a dormancy state transition of the one or more cells.
15. 14. The method of claim 13, further comprising receiving, from a base station, one or more radio resource control messages including a configuration parameter indicating a location of a dormancy indication among the plurality of dormancy indications for the one or more cells.
16. The method of claim 13 , wherein the plurality of cells includes one or more secondary cells.
17. 2. The method of claim 1, wherein the wireless device determines whether the downlink control information indicates the dormant state of the secondary cell further based on one or more second fields of the downlink control information.
18. 20. The method of claim 17, wherein the one or more second fields include a modulation and coding scheme field.
19. The method of claim 17 , wherein the one or more second fields include a new data indicator field.
20. The method of claim 17 , wherein the one or more second fields include a redundancy version field.
21. 20. The method of claim 17, wherein the one or more second fields include a hybrid acknowledgment repeat request field.
22. 1. A method comprising: receiving, by a wireless device, downlink control information including a frequency domain resource allocation field; and in response to the frequency domain resource allocation field being set to a predefined value, transitioning a cell to a dormant state.
23. 1. A method comprising: receiving, by a wireless device, downlink control information via a first downlink control channel of a first cell, the downlink control information including a frequency domain resource allocation field; determining whether the downlink control information indicates an idle state of a second cell based on the frequency domain resource allocation field being set to a predefined value; and transitioning the second cell to the dormant state based on the determining, wherein during the dormant state the wireless device stops monitoring a second downlink control channel on the second cell.
24. 24. The method of claim 23, wherein the first cell comprises a primary cell of a plurality of cells.
25. The method of claim 23 , wherein the second cell comprises a secondary cell of a plurality of cells.
26. 24. The method of claim 23, wherein the predefined value comprises a bit string of zeros.
27. 24. The method of claim 23, wherein the predefined value comprises a bit string of ones.
28. 24. The method of claim 23, further comprising: monitoring the second downlink control channel on the second cell prior to receiving the downlink control information indicating a transition of the second cell to the dormant state.
29. 24. The method of claim 23, wherein the wireless device stops monitoring the second downlink control channel to receive downlink assignments on the second cell.
30. 24. The method of claim 23, wherein the wireless device stops monitoring the second downlink control channel to receive an uplink grant on the second cell.
31. transmitting one or more assistant parameters of the wireless device to a base station, the assistant parameters indicating whether the wireless device supports a power saving operation; The method of claim 23, further comprising: receiving a configuration parameter for a power saving state of the second cell based on the one or more assistant parameters.
32. 24. The method of claim 23, further comprising, in response to receiving the downlink control information indicating a transition of the second cell to the dormant state, transmitting a medium access control control element indicating confirmation of the reception of the downlink control information.
33. 33. The method of claim 32, wherein the media access control control elements have a constant size of zero bits.
34. 24. The method of claim 23, wherein the downlink control information includes a plurality of power saving indications, each of the plurality of power saving indications corresponding to one or more of a plurality of cells.
35. 35. The method of claim 34, wherein each of the plurality of power saving indications corresponding to the one or more of the plurality of cells indicates a dormant state of the one or more of the plurality of cells.
36. 35. The method of claim 34, wherein the plurality of cells includes one or more secondary cells.
37. 24. The method of claim 23, wherein the wireless device determines whether the downlink control information indicates a transition to the dormant state of the second cell further based on one or more second fields of the downlink control information.
38. 40. The method of claim 37, wherein the one or more second fields include a modulation and coding scheme field.
39. 40. The method of claim 37, wherein the one or more second fields include a new data indicator field.
40. 40. The method of claim 37, wherein the one or more second fields include a redundancy version field.
41. 40. The method of claim 37, wherein the one or more second fields include a hybrid acknowledgment repeat request field.
42. 42. A wireless device comprising: one or more processors; and a memory storing instructions that, when executed by the one or more processors, cause the wireless device to perform a method according to any one of claims 1 to 41.
43. 1. A system comprising: A wireless device configured to carry out the method according to any one of claims 1 to 41; a base station configured to transmit one or more radio resource control messages and one or more DCIs.
44. A non-transitory computer-readable storage medium comprising instructions that, when executed by a processor, cause the processor to perform a method according to any of claims 1 to 41.
Citation Information
Patent Citations
Wireless communication method, wireless communication system, wireless base station and user terminal
JP2014033314A
User device and base station
JP2015222972A
Cell on / off procedure for dual connectivity
JP2017509227A
Method and apparatus for configuring cellular internet-of-things in wireless communication system
US20180295612A1
Communication system
WO2018124259A1