User equipment and scheduling devices

JP2026143598APending Publication Date: 2026-09-08PANASONIC INTELLECTUAL PROPERTY CORP OF AMERICA
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Patent Information

Application Number
JP2026094082
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-08-14
Filing Date
2026-06-04
Publication Date
2026-09-08

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Abstract

In a communication system, the system provides a method for corresponding transmission and reception, along with user equipment (UE) and scheduling nodes. [Solution] A method performed in a UE, wherein downlink control information (DCI) signaling carries a TCI indicator specifying that two or more TCI (Transmission Configuration Indication) states are set, and a frequency domain resource allocation indicating the frequency domain resources to be allocated for the two or more TCI states. For each of the two or more TCI states, one or more regions in the frequency domain are determined, each region having an integer multiple of a precoding resource block group (PRG), the integer being 1 or greater, and regions of different TCI states do not overlap. For each TCI state, data is received or transmitted on the frequency domain resources in the determined region of the frequency domain.
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Description

[Technical Field]

[0001] The present disclosure relates to signal transmission and reception in a communication system. In particular, the present disclosure relates to methods and apparatuses for such transmission and reception. [Background Art]

[0002] The 3rd Generation Partnership Project (3GPP) is working on technical specifications for next-generation cellular technology, also referred to as the 5th generation, including New Radio (NR) radio access technology (RAT) that operates in the frequency range up to 100 GHz. NR is the successor to the technology represented by Long Term Evolution (LTE) and LTE-Advanced (LTE-A).

[0003] For systems such as LTE, LTE-A and NR, further improvements and options may facilitate efficient operation of a communication system, not just for specific devices related to the system. [Summary of Invention]

[0004] One non-limiting and exemplary embodiment facilitates efficient utilization of resources including efficient signaling of frequency domain resources for a plurality of transmission / reception points (TRPs), that is, a plurality of Transmission Configuration Indication (TCI) states.

[0005] In embodiments, the technology disclosed herein is characterized by a user device (UE) comprising: a transceiver that receives downlink control information (DCI) signaling during operation; a processor that, during operation, obtains from the DCI signaling a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set, and a frequency domain resource allocation indicating frequency domain resources to be allocated to the two or more TCI states, and determines one or more regions in the frequency domain for each of the two or more TCI states, wherein each region has an integer multiple of a precoding resource block group (PRG), the integer is 1 or greater, and regions of different TCI states do not overlap; and the transceiver, during operation, receives or transmits data on the frequency domain resources in the determined frequency domain regions for each TCI state.

[0006] It should be noted that the whole or specific embodiments may be implemented as a system, method, integrated circuit, computer program, storage medium, or a selective combination thereof.

[0007] Further benefits and advantages of the disclosed embodiments will become apparent from the specification and drawings. Benefits and / or advantages may also be obtained individually by the various embodiments and features of the specification and drawings, and these do not all need to be provided in order to obtain one or more such benefits and / or advantages. [Brief explanation of the drawing]

[0008] In the following, exemplary embodiments will be described in more detail with reference to the attached drawings. [Figure 1] This is a schematic diagram illustrating an exemplary architecture of a 3GPP NR system. [Figure 2] This block diagram shows exemplary user and control plane architectures for LTE eNB, gNB, and UE. [Figure 3]This is a schematic diagram showing the functional division between NG-RAN and 5GC. [Figure 4] This is a sequence diagram for the RRC connection setup / reconfiguration procedure. [Figure 5] This is a schematic diagram illustrating usage scenarios for eMBB (enhanced Mobile Broadband), mMTC (massive Machine Type Communications), and URLLC (Ultra Reliable and Low Latency Communications). [Figure 6] This is a block diagram illustrating an example of a 5G system architecture. [Figure 7] This is a block diagram showing user equipment (UE) and scheduling devices (base stations) communicating over a wireless channel. [Figure 8] This is a block diagram showing the functional configuration of the user equipment (UE). [Figure 9] This is the functional configuration of the network node. [Figure 10] This flowchart illustrates an exemplary method performed in UE. [Figure 11] This flowchart illustrates exemplary methods for communication performed on the UE side and the network side. [Figure 12] This is a schematic diagram showing a first exemplary mapping of regions to precoding resource groups. [Figure 13] This is a schematic diagram showing a second exemplary mapping of regions to precoding resource groups. [Figure 14] This is a schematic diagram showing a third exemplary mapping of regions to precoding resource groups. [Figure 15] This is a schematic diagram showing a fourth exemplary mapping of regions to precoding resource groups. [Figure 16] This is a schematic diagram showing a fifth exemplary mapping of regions to pre-coding resource groups. [Figure 17]This is a schematic diagram showing a sixth exemplary mapping of regions to pre-coding resource groups. [Modes for carrying out the invention]

[0009] 5G NR system architecture and protocol stack 3GPP has been working on the next release of fifth-generation cellular technology, simply called 5G, which includes the development of NR (New Radio Access Technology) that operates at frequencies up to 100 GHz. The first version of the 5G standard was completed at the end of 2017, enabling the trial and practical application of smartphones compliant with the 5G NR standard.

[0010] In particular, the overall system architecture envisions an NG-RAN (Next Generation-Radio Access Network) including gNBs, providing NG radio access user plane (SDAP / PDCP / RLC / MAC / PHY) and control plane (Radio Resource Control, RRC) protocol terminations to the UE. The gNBs are interconnected with each other via Xn interfaces. The gNBs are also connected to the NGC (Next Generation Core) via NG (Next Generation) interfaces, more specifically to the AMF (Access and Mobility Management Function) (e.g., a specific core entity that performs the AMF) via NG-C interfaces, and to the UPF (User Plane Function) (e.g., a specific core entity that performs the UPF) via NG-U interfaces. The NG-RAN architecture is shown in Figure 1 (see, for example, 3GPP TS 38.300 v15.6.0, section 4).

[0011] A variety of different deployment scenarios are supported (see, for example, 3GPP TR 38.801 v14.0.0). For example, a decentralized deployment scenario (see, for example, section 5.2 of TR 38.801; a decentralized deployment is shown in section 5.4) is presented there, where base stations supporting 5G NR can be deployed. Figure 2 shows an exemplary decentralized deployment scenario (see, for example, Figure 5.2-1 of TR 38.801), while further showing user equipment (UE) connected to both the LTE eNB and gNB. A new eNB for NR 5G may, exemplary, be called a gNB. The eLTE eNB is an evolution of the eNB that supports connectivity with the EPC (Evolved Packet Core) and NGC (Next Generation Core).

[0012] A user plane protocol stack for NR (see, for example, 3GPP TS 38.300, section 4.4.1) includes PDCP (Packet Data Convergence Protocol, see section 6.4 of TS 38.300), RLC (Radio Link Control, see section 6.3 of TS 38.300), and MAC (Medium Access Control, see section 6.2 of TS 38.300) sublayers, which are terminated at the gNB on the network side. Furthermore, a new AS (Access Stratum) sublayer (SDAP, Service Data Adaptation Protocol) is introduced above PDCP (see, for example, sub-clause 6.5 of 3GPP TS 38.300). A control plane protocol stack is also defined for NR (see, for example, TS 38.300, section 4.4.2). An overview of Layer 2 functions is given in sub-clause 6 of TS 38.300. The functions of the PDCP, RLC and MAC sublayers are listed in sections 6.4, 6.3 and 6.2 of TS 38.300, respectively. The functions of the RRC layer are listed in sub-clause 7 of TS 38.300.

[0013] For example, the MAC layer handles logical channel multiplexing, and scheduling and scheduling-related functions including handling of different numerologies.

[0014] The Physical Layer (PHY) is responsible for tasks such as coding, PHY HARQ processing, modulation, multi-antenna processing, and mapping signals to appropriate physical time-frequency resources. It also handles the mapping of transport channels to physical channels. The Physical Layer serves the MAC layer in the form of transport channels. A physical channel corresponds to a set of time-frequency resources used for transmitting a particular transport channel, and each transport channel is mapped to a corresponding physical channel. For example, one physical channel is the PRACH (Physical Random Access Channel) used for random access.

[0015] Use cases / deployment scenarios for NR can include eMBB (enhanced Mobile Broadband), URLLC (Ultra-Reliable Low-Latency Communications), and mMTC (massive Machine Type Communication), which have diverse requirements regarding data rate, latency, and coverage. For example, eMBB is expected to support peak data rates (20 Gbps downlink and 10 Gbps uplink) and user experience data rates on the order of three times that of IMT-Advanced. On the other hand, URLLC has tighter requirements, such as ultra-low latency (0.5 ms for UL and DL relative to user plane latency, respectively) and high reliability (1-10 ms within 1 ms). -5 ) is imposed on the following. Finally, mMTC is preferably high connectivity density (1,000,000 devices / km in urban environments). 2 ), high coverage in harsh environments, and extremely long-lasting batteries (15 years) for low-cost devices may be required.

[0016] Accordingly, an OFDM numerology suitable for one use case (e.g., subcarrier spacing, OFDM symbol duration, cyclic prefix (CP) duration, the number of symbols per scheduling interval, etc.) may not work well in another use case. For example, low-latency services may preferably require shorter symbol duration (and larger subcarrier spacing) and / or fewer symbols per scheduling interval (also known as TTI) than mMTC services. Furthermore, deployment scenarios with large channel delay spread may preferably require longer CP duration than scenarios with short delay spread. The subcarrier spacing should be correspondingly optimized to maintain similar CP overhead. NR may support multiple values of subcarrier spacing. Correspondingly, subcarrier spacings of 15 kHz, 30 kHz, 60 kHz, ... are currently under consideration. The symbol duration Tu and the subcarrier spacing Δf are directly related through the formula Δf = 1 / Tu. Similar to LTE systems, the term "resource element" can be used to refer to the smallest resource unit consisting of one subcarrier for the length of one OFDM / SC-FDMA symbol.

[0017] In the new radio system 5G-NR for each numerology and carrier, a resource grid of subcarriers and OFDM symbols is defined for the uplink and the downlink respectively. Each element in the resource grid is called a resource element, and is identified based on a frequency index in the frequency domain and a symbol position in the time domain (see 3GPP TS 38.211 v15.6.0).

[0018] 5G NR function split between NG-RAN and 5GC

[0019] Figure 3 shows the function split between NG-RAN and 5GC. The NG-RAN logical nodes are gNB or ng-eNB. The 5GC comprises the logical nodes AMF, UPF and SMF.

[0020] In particular, gNB and ng-eNB provide the following main functions: - Wireless resource management functions such as wireless bearer control, wireless admission control, connected mobility control, and dynamic resource allocation (scheduling) to UEs in both uplink and downlink. - Data IP header compression, encryption, and integrity protection -Selection of AMF in UE attachment when routing to AMF cannot be determined from the information provided by the UE. - Routing user plane data to UPF - Routing of control plane information to AMF - Connection setup and release - Scheduling and sending paging messages - Scheduling and transmission of system broadcast information (originating from AMF or OAM) - Measurement and measurement report settings for mobility and scheduling - Transport-level packet marking in uplink - Session management - Network slicing support - QoS flow management and mapping to data wireless bearers - Support for UEs in RRC_INACTIVE state - NAS message delivery function - Wireless access network sharing - Dual connectivity - Close cooperation between NR and E-UTRA

[0021] AMF (Access and Mobility Management Function) provides the following key functions: - NAS (Non-Access Stratum) signaling termination - NAS signaling security -AS (Access Stratum) Security Control - Core Network (CN) inter-node signaling for mobility between 3GPP access networks - Reachability of idle mode UE (including control and execution of paging retransmissions) - Registration area management - Support for intra-system and inter-system mobility - Access Authentication - Access authentication including roaming rights check - Mobility management and control (subscriptions and policies) - Network slicing support -SMF (Session Management Function) selection Furthermore, UPF (User Plane Function) provides the following key features: - Anchor points for mobility within / between RATs (when applicable) - External PDU session points for interconnection with data networks - Packet routing and forwarding - User plane portion of packet inspection and policy rule enforcement - Traffic usage report - Uplink classifier to support routing of traffic flow to data networks - Branching points to support multi-homed PDU sessions - User plane QoS handling such as packet filtering, gating, and UL / DL rate enforcement. - Uplink traffic verification (mapping from SDF to QoS flow) - Downlink packet buffering and downlink data notification triggering Finally, the Session Management Function (SMF) provides the following key features: - Session management -UE IP address allocation and management - Selection and control of UP function - Configuring traffic steering in UPF (User Plane Function) to route traffic to the correct destination. -Policy enforcement and QoS control section - Downlink data notification

[0022] RRC Connection Setup and Reconfiguration Procedure

[0023] Figure 4 shows some interactions between the UE, gNB, and AMF (5GC entities) in the context of the UE transition from RRC_IDLE to RRC_CONNECTED for the NAS part (see TS 38.300 v15.6.0).

[0024] RRC is a higher-layer signaling protocol used for configuring UEs and gNBs. Specifically, this transition involves the AMF preparing UE context data (including, for example, PDU session context, security key, UE radio capability, UE security capability, etc.) and sending it to the gNB via an INITIAL CONTEXT SETUP REQUEST. The gNB then activates AS security with the UE, which is done by the gNB sending a SecurityModeCommand message to the UE, and the UE responding to the gNB with a SecurityModeComplete message. Subsequently, the gNB performs a reconfiguration to set up the signaling radio bearer 2 (SRB2) and data radio bearer (DRB) by sending an RRCReconfiguration message to the UE, and the gNB receiving an RRCReconfigurationComplete from the UE in response. For signaling-only connections, the steps related to RRCReconfiguration are omitted because SRB2 and DRB are not configured. Finally, the gNB notifies the AMF that the configuration procedure is complete via the INITIAL CONTEXT SETUP RESPONSE.

[0025] Accordingly, this disclosure provides a fifth-generation core (5GC) entity (e.g., AMF, SMF, etc.) which includes a control circuit that establishes a Next Generation (NG) connection with a gNodeB (or gNB) during operation, and a transmitter that sends an initial context setup message to the gNodeB via the NG connection that causes a signaling radio bearer configuration between the gNodeB and the user equipment (UE) during operation. In particular, the gNodeB transmits a Radio Resource Control (RRC) signal to the UE via the signaling radio bearer, which includes resource allocation configuration information elements. The UE then performs uplink transmission or downlink reception based on the resource allocation configuration.

[0026] IMT usage scenarios from 2020 onwards

[0027] Figure 5 shows some use cases for 5G NR. 3GPP NR (3rd Generation Partnership Project New Radio) is considering three use cases where IMT-2020 is expected to support a wide range of services and applications. Phase 1 specifications for eMBB have been finalized. In addition to further expanding eMBB support, current and future work will involve the standardization of URLLC and mMTC. Figure 5 shows some specific examples of envisioned ideal scenarios for IMT beyond 2020.

[0028] URLLC use cases have stringent requirements for capabilities such as throughput, latency, and availability, and are envisioned as one means of enabling future vertical applications such as wireless control of industrial manufacturing and production processes, remote medical surgery, power distribution automation in smart grids, and transportation safety. The ultra-high reliability of URLLC is supported by identifying the technology to meet the requirements set out by TR 38.913. For NR URLLC in Release 15, the key requirements include target user plane delays of 0.5 ms for UL (uplink) and 0.5 ms for DL ​​(downlink). The overall URLLC requirement for a single packet transmission is a Block Error Rate (BLER) of 1E-5 for a 32-byte packet size with a user plane delay of 1 ms.

[0029] From a RAN1 perspective, reliability can be improved in several possible ways. Current scope for improving reliability concerns specifying separate CQI tables for URLLC, a more compact DCI format, and PDCCH repetition. However, this scope may expand to achieve ultra-reliability as NR becomes more stable and developed (for key requirements of NR URLLC). Specific use cases for NR URLLC in Rel. 15 include AR / VR (Augmented Reality / Virtual Reality), e-health, e-safety, and mission-critical applications.

[0030] Furthermore, the technical enhancements targeted by NR URLLC aim to improve latency and reliability. Technical enhancements for latency improvement include configurable numerology, non-slot-based scheduling with flexible mapping, grant-free (configured grant) uplinks, slot-level iteration of data channels, and downlink preemption. Preemption means that a transmission for which resources have already been allocated is aborted, and the already allocated resources are used for another transmission that is subsequently requested but has a lower latency / higher priority request. Thus, a transmission that has already been permitted is preempted by a subsequent transmission. Preemption is applicable regardless of the specific service type. For example, a transmission of service type A (URLLC) may be preempted by a transmission of service type B (e.g., eMBB). Technical enhancements for reliability improvement include a dedicated CQI / MCS (Channel Quality Information / Modulation and Coding Scheme) table for the 1E-5 target BLER.

[0031] The use case for mMTC is characterized by a very large number of connected devices transmitting relatively small amounts of data, typically with minimal latency impact. The devices need to be low-cost and have extremely long battery life. From a noise reduction (NR) perspective, utilizing a very narrow bandwidth segment is one possible solution to achieve power savings and long battery life from a UE perspective.

[0032] As mentioned above, a broader range of reliability is expected in NR. One key requirement for all cases, particularly URLLC and mMTC, is high reliability or very high reliability. Several mechanisms can be considered to improve reliability from both a radio and network perspective. In general, there are several key areas that can help improve reliability. These areas include compact control channel information, data channel / control channel repetition, and diversity in the frequency, time, and / or spatial domains. These areas are generally applicable to reliability regardless of the specific communication scenario.

[0033] For NR URLLC, further use cases with more stringent requirements have been identified, including factory automation, the transportation industry, and power distribution, including power distribution. These stringent requirements necessitate higher reliability (10 -6 This includes higher availability (up to level 1), packet size up to 256 bytes, and time synchronization down to the order of a few microseconds, with values ​​on the order of 0.5 to 1 ms, depending on the frequency range and short delay, and especially depending on the use case, with a target user plane delay of 0.5 ms, it can be on the order of 1 or a few microseconds.

[0034] Furthermore, several technical enhancements for NR URLLC from a RAN1 perspective have been identified. These include PDCCH (Physical Downlink Control Channel) enhancements related to compact DCI, PDCCH repeat, and increased PDCCH monitoring. UCI (Uplink Control Information) enhancements are related to enhanced HARQ (Hybrid Automatic Repeat Request) and CSI feedback enhancements. Additionally, PUSCH enhancements related to minislot level hopping and retransmission / repeat enhancements are identified. The term "minislot" refers to a transmit time interval (TTI) containing fewer symbols than a slot (a slot consisting of 14 or 12 symbols).

[0035] In slot-based scheduling or allocation, a slot corresponds to the timing granularity (TTI: Transmit Time Interval) for scheduling and allocation. Generally, the TTI determines the timing granularity for scheduling and allocation. A single TTI is the time interval at which a given signal is mapped to the physical layer. For example, conventionally, the TTI length is variable from 14 symbols (slot-based scheduling) to 2 symbols (non-slot-based scheduling). Downlink (DL) and uplink (UL) transmissions are specified to be organized into frames (10 ms duration) consisting of 10 subframes (1 ms duration). In slot-based transmission, subframes are further divided into slots, and the number of slots is defined by the neurology / subcarrier interval. The specified range of values ​​is between 10 slots per frame (1 slot per subframe) for a 15 kHz subcarrier interval and 80 slots per frame (8 slots per subframe) for a 120 kHz subcarrier interval. The number of OFDM symbols per slot is 14 for normal cyclic prefixes and 12 for extended cyclic prefixes (see sections 4.1 (general frame structure), 4.2 (Numerologies), 4.3.1 (frames and subframes), and 4.3.2 (slots) of 3GPP TS 38.211 V15.3.0, Physical channels and modulation, 2018-09). However, the allocation of time resources for transmission may also be non-slot-based. In particular, TTI in non-slot-based allocation may correspond to minislots rather than slots; that is, one or more minislots may be allocated to the requested transmission of data / control signaling. In non-slot-based allocation, the shortest length of TTI may be, for example, 1 or 2 OFDM symbols.

[0036] [QoS control] The 5G QoS (Quality of Service) model supports both QoS flows that require a guaranteed flow bitrate (GBR QoS flows) and QoS flows that do not require a guaranteed flow bitrate (non-GBR QoS flows), based on QoS flows. Therefore, at the NAS level, QoS flows are the finest granularity of QoS differentiation within a PDU session. Within a PDU session, QoS flows are identified by a QoS flow ID (QFI) carried in the encapsulation header via the NG-U interface.

[0037] For each UE, the 5GC establishes one or more PDU sessions. For each UE, the NG-RAN establishes at least one data radio bearer (DRB) with the PDU session, and additional DRBs for the QoS flow of that PDU session may be configured thereafter, for example, as described above with reference to Figure 4 (when and how they are configured is at the discretion of the NG-RAN). The NG-RAN maps packets belonging to different PDU sessions to different DRBs. NAS-level packet filters in the UE and 5GC associate UL and DL packets with QoS flows, and AS-level mapping rules in the UE and NG-RAN associate UL and DL QoS flows with DRBs.

[0038] Figure 6 shows the 5G NR non-roaming standard architecture (see TS 23.501 v16.1.1, section 4.23). Application functions (AFs), such as the external application server providing 5G services as illustrated in Figure 5, interact with the 3GPP core network to provide services, for example, to support the application's influence on interaction with policy controls such as traffic routing, access to the Network Exposure Function (NEF), or QoS control (see Policy Control Function (PCF)). Based on the operator's deployment, application functions considered trusted by the operator may be allowed to directly interact with the relevant network functions. Application functions not authorized by the operator to directly access network functions interact with the relevant network functions via the NEF using an external exposure framework.

[0039] Figure 6 further shows the functional units of the 5G architecture, namely NSSF (Network Slice Selection Function), NRF (Network Repository Function), UDM (Unified Data Management), AUSF (Authentication Server Function), AMF (Access and Mobility Management Function), SMF (Session Management Function), and DN (Data Network) such as carrier services, internet access, or third-party services.

[0040] A terminal, user terminal, or user device is referred to as a user device (UE) in LTE and NR. This may be a mobile device or communication device such as a wireless telephone, smartphone, tablet computer, or USB (Universal Serial Bus) stick with the functionality of a user device. However, the term mobile device is not limited thereto, and generally a relay may also have the functionality of such a mobile device, and a mobile device may function as a relay.

[0041] A base station is, for example, a network node that forms part of a network to provide services to a terminal. A base station is a network node or scheduling device that provides radio connectivity to a terminal. Communication between a terminal and a base station is typically standardized. In LTE and NR, the radio interface protocol stack includes the physical layer, the MAC (Medium Access Control) layer, and the upper layers. In the control plane, the upper layer protocol RRC (Radio Resource Control) protocol is provided. Through RRC, the base station can control the configuration of a terminal, and the terminal may communicate with the base station to perform control tasks such as connection and bearer establishment, correction, measurement, and other functions. The term used in LTE is eNB (or eNodeB), while the term currently used for 5G NR is gNB.

[0042] A service for transferring data provided by one layer to a higher layer is typically called a channel. For example, LTE and NR distinguish between logical channels provided by the MAC layer to higher layers, transport channels provided by the physical layer to the MAC layer, and physical channels that define mappings on physical resources.

[0043] Logical channels are various data transfer services provided by MACs. Each logical channel type is defined by the type of data being transferred. Logical channels are classified into two groups: control channels and traffic channels. Control channels are used for transferring only control plane information. Traffic channels are used for transferring only user plane information.

[0044] Logical channels are mapped to transport channels by the MAC layer. For example, logical traffic channels and some logical control channels may be mapped to a transport channel referred to as the downlink shared channel DL-SCH in the downlink and to a transport channel referred to as the uplink shared channel UL-SCH in the uplink.

[0045] Downlink control channel monitoring, PDCCH, DCI Many of the functions operated by the UE include monitoring downlink control channels (e.g., PDCCH; see 3GPP TS 38.300 v15.6.0, section 5.2.3) to receive specific control information or data addressed to the UE.

[0046] As described above, PDCCH monitoring is performed by the UE to identify and receive information destined for the UE, such as user traffic (e.g., DCI on the PDCCH and user data on the PDSCH notified by the PDCCH), along with control information.

[0047] Downlink control information (which can be called Downlink Control Information DCI) serves the same purpose in 5G NR as DCI in LTE, namely, a special set of control information that schedules, for example, downlink data channels (e.g., PDSCH) or uplink data channels (e.g., PUSCH). In 5G NR, there are already several different DCI formats defined (see TS 38.212 v15.6.0 section 7.3.1).

[0048] Each of these PDCCH monitoring functions serves a specific purpose and is therefore initiated until the end. PDCCH monitoring is typically controlled based at least on a timer operated by the UE. The timer serves the purpose of controlling PDCCH monitoring, for example, by limiting the maximum time the UE monitors the PDCCH. For example, the UE does not need to monitor the PDCCH indefinitely and may stop monitoring after a certain period of time to conserve power.

[0049] As described above, one of the purposes of DCI in PDCCH is the dynamic scheduling of resources in downlink, uplink, or sidelink. In particular, several formats of DCI are provided to carry notifications of resources to be allocated to data channels for a particular user (resource allocation RA). Resource allocation may include the specification of resources in the frequency domain and / or time domain.

[0050] Resource allocation NR Release 15 utilizes two types of frequency domain resource allocation schemes, Type 0 and Type 1, both of which advertise allocations across the active bandwidth portion (BWP).

[0051] Type 0 is a bitmap-based allocation scheme. The most flexible way to represent the set of allocated resource blocks is to include a bitmap with a size equal to the number of resource blocks in the BWP. A resource block corresponds to the smallest allocated unit for data transmission and is defined by the number of subcarriers in frequency. (NR physical resource blocks are one-dimensional indicators that extend only into the frequency domain, while LTE utilizes two-dimensional resource blocks with 12 subcarriers in frequency and one slot in time.) This allows for any combination of resource blocks to be scheduled for transmission, but unfortunately results in very large bitmaps for larger bandwidths. Therefore, in Type 0 resource allocation schemes, the bitmap is used to refer not to individual resource blocks, but to a group of contiguous resource blocks called an RBG. The size of the RBG depends on the size of the active BWP. For example, two different configurations are possible for each BWP size, as defined by 3GPP TS 38.214 V15.4.0 and summarized in Table 1. [Table 1]

[0052] As can be seen from Table 1, for example, an RBG allocated according to type 0 by the BWP bandwidth size corresponding to the number of RBs from 1 to 36 will contain 2 RBs when setting 1 is applied. Therefore, for example, an RBG allocated according to type 0 by the BWP size corresponding to the number of RBs from 73 to 144 will contain 16 RBs when setting 2 is applied. In other words, the number of RBs in an RBG depends on the bandwidth of the active BWP.

[0053] The Type 1 resource allocation scheme does not rely on bitmaps. Instead, it utilizes a Resource Indication Value (RIV) that encodes the resource allocation as the start position and length of the allocation in relation to the number of resource blocks. Thus, it supports not only arbitrary allocation of resource blocks but also frequency-sequential allocation, thereby reducing the number of bits required to indicate resource block allocation.

[0054] Both resource allocation types refer to virtual resource blocks (VRBs). For type 0, interleaved mapping from virtual resource blocks to physical resource blocks is used, meaning that virtual resource blocks are directly mapped to their corresponding physical resource blocks. On the other hand, for type 1 resource allocation schemes, non-interleaved mapping to ULs is supported. For DLs, both interleaved and non-interleaved mappings are supported for type 1 resource allocation schemes, and the interleaved size is the bandwidth of the active BWP.

[0055] In the time domain, scheduling timing (for example, for scheduling the resources mentioned above) may be communicated within the DCI by using a Time Domain Resource Allocation (TDRA) table, as specified in Release 15 (NR), for example. In particular, a UE may be communicated in the DCI by communicating one entry (row) in the TDRA table, for example by communicating the entry (row) index. Since TDRA entries are summarized as a table in the standard specification for NR, the term "table" is used here as a logical term.

[0056] Repetition on PDSCH and PUSCH Transmission in NR may include spontaneous repetition of data (i.e., without being triggered by (H)ARQ). In such cases, the same data (e.g., a transport block) is transmitted N times, where N is an integer greater than 1. The number of repetitions may be configurable.

[0057] Multiple transmit / receive point TRP The physical layer in NR may provide multi-antenna operation, such as MIMO (Multiple Input Multiple Output), which may include the use of multiple transmit / receive points (multi-TRPs). For example, a user device may receive data from multiple TRPs (transmit / receive points), and the multiple TRPs may be controlled by the same or different network nodes. The terms multipoint transmission or coordinated multipoint transmission (CoMP) may also be used for multi-TRP communication or transmission.

[0058] The technologies described herein are not limited to a specific arrangement of TRPs or a specific relationship between TRPs and gNBs. For example, multi-TRP operation may be performed by a gNB having different antenna panels or radio heads corresponding to the TRPs and different radio frequency units operating with each antenna.

[0059] Furthermore, in a multi-TRP configuration, several options are possible regarding the positional relationship between TRPs, and the distance between two TRPs can vary. For example, TRPs may be close together so that UEs receive signals from them at similar angles. However, TRPs may also be placed at considerably greater distances from each other, for example, at remote locations within a network cell. UEs serviced by two TRPs may send and receive signaling to and from each TRP over uncorrelated channels. Thus, the gain of channel diversity can be optimally utilized.

[0060] For example, a multi-TRP may be classified into two higher-level categories. That is, the distinction between categories may be made with respect to the backhaul type of the backhaul link between two given TRPs.

[0061] On the other hand, an ideal backhaul would be one with very high throughput and very low latency, such as a dedicated point-to-point connection using optical fiber. An ideal backhaul is assumed to enable communication between TRPs with approximately or nearly 0 milliseconds of latency (for example, for LTE-A, technical report 3GPP TR 36.932 V15.0.0 (2018-06) mentions a unidirectional latency of less than 2.5 μs in section 6.1.3, but does not include propagation latency in fiber / cable).

[0062] On the other hand, non-ideal backhauls are other backhauls such as DSL, microwave, and relay, which may include a finite (unidirectional) delay of 2ms or 5ms for communication between two given TRPs.

[0063] Apart from the classification into ideal and non-ideal backhaul, a further classification in multi-TRP MIMO technology may be made in terms of how the (central) baseband unit is shared among the TRPs.

[0064] For example, given two TRPs, each may have a different RF (Radio Frequency) unit, while the TRPs share the same baseband unit. In this case, the links between the RF unit and the baseband unit may be ideal or non-ideal. Alternatively, each TRP may have both a different (central) baseband unit and a different RF unit. In this case, not only the links between the baseband unit and the RF unit, but also the links between the different baseband units may be ideal or non-ideal.

[0065] This disclosure may facilitate multi-TRP operation and provides an approach that can particularly facilitate the scheduling of frequency-domain resources for multi-TRP operation. The disclosed technology may, for example, facilitate URLLC use cases, but may also or may not facilitate eMBB and mMTC use cases. This disclosure is applicable to scenarios involving either or both ideal backhaul and non-ideal backhaul.

[0066] As described above, multiple distant TRPs can enable the provision of spatial diversity gain. The use of these spatial diversity gains may particularly facilitate transmission and reception in the high-frequency range where blocking of either the link or the radio communication channel between the TRP and the UE is particularly possible.

[0067] In recent years, there has been discussion about using single DCI-based scheduling from one of two TRPs to schedule the same transport blocks (TBs) from two TRPs on their respective non-overlapping frequency domains and on the same time symbol. A transport block represents a data unit that is passed to the physical layer for transmission.

[0068] It should be understood that each TRP transmission (i.e., transmission from one TRP) in a corresponding non-overlapping frequency domain can be associated with a separate TCI state. In particular, each TRP can be associated with a separate TCI state. Therefore, the terms “TCI state” and “TRP” can be used interchangeably, for example, TCI state 1 refers to TRP 1, TCI state 2 refers to TRP 2, and so on.

[0069] It is considered to support different MCSs for transmitting the same TB from different TRPs, which may depend on the respective channel state from each TRP to the UE. When different MCSs are used, different sizes of frequency domains from the two TRPs may be effective. An ideal backhaul may be considered between multiple TRPs. However, these are merely some optional deployment scenarios, and this disclosure is not limited to them.

[0070] For example, when scheduling the same TB of a PDSCH and multiplexing them into two non-overlapping frequency domains belonging to multiple different TRPs by a single DCI from one of the TRPs, the following problems are recognized by the inventors and addressed by this disclosure. The first problem is how to distribute and direct multiple non-overlapping frequency domains using single DCI-based scheduling. The second problem is how to associate the distributed non-overlapping frequency domains with the directed TCI states. Furthermore, several other optimizations and improvements may be provided to improve the efficiency and / or scalability of resource signaling.

[0071] To address some of the problems described above, according to the embodiment, physical resource blocks in the frequency domain are allocated to regions. Each region is defined as a group of pre-coded resource block groups (PRGs). Each region is associated with a transmission corresponding to a separate specific TCI state.

[0072] Here, each TCI state (TRP) is associated with one or more regions. Each region is associated with only one TCI state, and these regions do not overlap. A precoding resource block group is a group of (physical) resource blocks that share the same precoding. For example, a precoding resource block group applies the same precoding matrix.

[0073] One advantage of defining regions in multiple PRGs and assigning them to different TRPs is that it allows for separate precoding for each TRP transmission. This approach is applicable to both resource allocation types 0 and 1 without affecting each of their respective schemes.

[0074] In this example, it was mentioned that the same TB is transmitted through multiple TRPs (which have multiple TCI states). However, this disclosure is not limited thereto, and in general, this solution is applicable to the transmission of different TBs through different TCI states. Furthermore, for simplicity, an example with two TRPs is shown below. However, the solution considered here is applicable to three or more TRPs.

[0075] This disclosure provides exemplary embodiments including devices and methods. For example, Figure 7 shows an exemplary user device (UE) 760 having a transceiver 770 that receives downlink control information (DCI) via channel 750 (indicated by a dashed line) during operation. The UE (corresponding to a terminal or generally scheduled device) 760 also includes circuit 780, which is a processing circuit (processor) and may be implemented on one or more chips and / or additional electronic components. The term “processor” should be understood functionally and may include one or more general-purpose processors, digital signal processors, programmable hardware and / or dedicated hardware. During operation, the circuit (processor) 780 obtains from the DCI signaling a Transmission Configuration Indication (TCI) specifying that two or more TCI states are set, and a frequency domain resource allocation indicating frequency domain resources assigned to the two or more TCI states.

[0076] For example, the transceiver 770 blind-decodes the PDCCH to determine whether a DCI destined for the UE 760 exists. If a DCI exists for the UE, the processor 780, together with the scheduling device 710 that generated the DCI, analyzes (extracts) various signaling parameters from the DCI according to the syntax and semantics of the DCI known at the UE. The syntax and semantics may be defined by a standard such as NR or other standards. The syntax and semantics of the DCI may also be configurable, fully or partially, by higher-layer signaling. Generally, a DCI contains one or more bit fields, each bit field may contain one or more bits. Typically, the number of bits per field is set statically (by the standard or by the network operator) or semi-statically (by higher-layer signaling such as RRC). A single bit field may indicate one transmit parameter or several transmit parameters that are coupledly encoded.

[0077] For example, the TCI indicator described above may be a single separate bit (a one-bit field having a length of one bit) indicating whether one or two TCI states should be applied, in other words, whether one or two TRPs should be used for scheduled transmission (uplink) or reception (downlink). However, this exemplary implementation is only suitable when at most two TRPs are used simultaneously. The disclosure is not limited to such implementations. In other exemplary implementations, the TCI indicator may be carried by a separate DCI field dedicated to the TCI indicator having two or more bits. In particular, such a TCI indicator may indicate how many TCI states (TRPs) should be active for scheduled transmission or reception.

[0078] Here, it is assumed that the network provides one or more TRPs, and therefore the TCI indicator specifies how many TRPs should be active for transmission or reception by the UE760. Different TRPs may be located at the same or different base stations. In some scenarios, a terminal (UE) may also benefit from using two or more TRPs, even though it is typically easier to implement more TRPs on the network side, which has more power in its placement, such as when the network side is one or more base stations or network nodes. In such cases, the embodiments and specific examples presented herein are also applicable. For example, the DCI may, in addition to or instead of informing how many TRPs should be used by the scheduling device 710, inform the number of TRPs to be used by the UE760. The term “scheduling device” in this disclosure is used interchangeably with the term “base station” and refers to a network node with scheduling capabilities that serves the UE as an access point to the network. Note that a single scheduling device, such as a base station, schedules multiple active TRPs, regardless of whether the TRPs are actually located / terminated at the scheduling device.

[0079] In general, a TCI indicator does not need to be represented as a separate bit field. It may be indicated together with one or more other parameters. In other words, one or more code points in such a combined bit field may indicate that one TRP is being used, while one or more other code points may indicate that two TRPs are being used. Similarly, any number of TRPs may be indicated by one or more code points in a combined bit field that carries such a TCI indicator.

[0080] As described above, this disclosure provides specific frequency-domain resource allocations and notifications for cases where the TCI indicator specifies that two or more TCI states are set. The DCI further carries a frequency-domain resource allocation indicating the frequency-domain resources to be allocated to the two or more TCI states. The frequency-domain resource allocation may be provided in a separate (dedicated) DCI bitfield, or it may be encoded together with the TCI indicator and / or one or more other transmission parameters.

[0081] In general, joint coding can offer greater efficiency in utilizing the bits available in the DCI. To provide fast scheduling, the number of parameters and the length of the DCI may be kept as low as possible. On the other hand, coding in separate fields may offer backward compatibility in some cases. Joint coding may be implemented, for example, by notifying each index in a combined bit field of an index to a table that contains a specific combination of parameter values ​​corresponding to the columns of the table. Specific examples of such tables are, for example, the TDRA table or MCS table mentioned above.

[0082] The circuit 780 further determines one or more regions in the frequency domain for each of the two or more TCI states. Each region has an integer multiple of a precoding resource block group (PRG), where the integer is 1 or greater. In other words, each region may consist of one or more PRGs. This determination may be performed in accordance with a notified frequency domain resource allocation, for example, the regions of the two or more TCI states are located within the frequency domain resources specified by the frequency domain resource allocation.

[0083] As described above, regions of different TCI states do not overlap. In other words, the regions are frequency-division multiplexed (FDM). In some embodiments, no regions overlap (they do not belong to different TCI states).

[0084] Circuit 780 may implement more functionality than the above-described determination of frequency-domain resources for transmission / reception employing multiple TRPs. Therefore, circuit 780 is thought to include a frequency resource determination circuit 785 configured to perform the determination of frequency-domain resources. This configuration may be provided by hardware and / or software.

[0085] Figure 8 shows the functional configuration of the frequency resource determination circuit 785. In particular, the frequency resource determination circuit 785 includes a PDCCH processing circuit 870 that extracts TCI indicators and frequency domain allocations from DCI. The frequency resource determination circuit 785 further includes a frequency resource control circuit 880 that, when the TCI indicator shows two or more TCI states, determines a domain based on the allocation and determines the allocation of frequency resources assigned to each TCI state based on the domain. The processing circuit may then control the transceiver 770 to receive or transmit data on the determined resources.

[0086] Following the determination of the region, the transceiver 770 receives data on frequency-domain resources in the determined region of the frequency domain for each TCI state during operation. This applies to the downlink case, where the DCI schedules downlink resources for the UE to receive data. In the uplink case, the transceiver 770 transmits data on frequency-domain resources in the determined region of the frequency domain for each TCI state during operation. A single UE may have a receiver and a transmitter that transmit and receive data to and from multiple TRPs, depending on whether the received DCI is a downlink-scheduled DCI or an uplink-scheduled DCI.

[0087] In correspondence with UE760, Figure 7 shows a scheduling node 710. The scheduling device may be a base station or any network access node such as a gNB in ​​the case of 5G-NR. According to the embodiment, the scheduling device 710 has a transceiver 720 that transmits downlink control information (DCI) signaling during operation. The transceiver 720 may have two or more antennas (e.g., an antenna panel) to provide one or more TRPs. However, TRPs may also be provided by multiple different network nodes. As described above, UE760 may also provide multiple TRPs, and the transceiver 770 of UE760 may also include multiple antennas (antenna panel). DCI may correspond syntactically and semantically to the DCI described above in order to enable communication between the scheduling device 710 and UE760.

[0088] The scheduling device 710 further includes a processor 730 that provides DCI signaling, which includes a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set during operation, and a frequency domain resource allocation that indicates frequency domain resources assigned to the two or more TCI states. The signaling possibilities described above apply to both the TCI indicator and the frequency domain resource allocation. The processor 730 further determines, for each of the two or more TCI states, one or more regions in the frequency domain, each region having an integer multiple of a precoding resource block group (PRG), where the integer is 1 or greater, and regions of different TCI states do not overlap. Thus, the transceiver 720 transmits (downlink) or receives (uplink) data on the frequency domain resources in the determined region of the frequency domain for each TCI state during operation. Similar to the processor 780 in the UE, the processor 730 may also perform a variety of different tasks. Here, the frequency resource allocation circuit 735 represents a functional part of the processor 730 that performs the frequency domain allocation task described above, including determining resources and providing corresponding signaling to the UE 760.

[0089] The scheduling device may further include, as part of circuit 730, an allocation circuit that performs scheduling for one or more UEs. As a result of the scheduling, an allocation of frequency domain resources is generated, and a TCI indicator and corresponding DCI signaling indicating said allocation are generated. The circuit then controls the transceiver 720 to transmit or receive data on the scheduled resources for one or more UEs.

[0090] An exemplary functional configuration of the frequency resource allocation circuit 735 is shown in Figure 9. In particular, the frequency resource allocation circuit 735 may include a scheduling circuit 920 and a PDCCH generation circuit 930. The scheduling circuit 920 performs scheduling, for example, by collecting measurement results from one or more UEs and, based on therein, allocating resources in the frequency domain (and possibly in the TRP together with the time domain) to each UE based on requests from the UEs and / or on the availability of their resources. The PDCCH generation circuit 930 then generates a DCI including a TCI indicator and resource allocation according to the scheduling results for each of the one or more UEs.

[0091] As can be seen from Figure 7, the UE760 and the scheduling node 710 can form a communication system, that is, they can communicate via channel 750.

[0092] Various embodiments of the domain will be described below. In particular, one or more of the following settings may be considered to define the domain. a) Number of regions: The number of regions within the allocated frequency resources. b) Allocation of space: For example, allocating space to physical layer resources (grids), such as on pre-coded resource block groups. c) Region size: The size of the regions related to multiple PRGs, and d) Region association: Assignment of each region to a single TRP (TCI state)

[0093] The four settings a) to d) described above can be configured and / or notified in different ways.

[0094] It should be noted that the domain may be set and used only when two or more TCI states are indicated by code points in the bit field for TCI indication. However, this disclosure is not limited thereto, and the concept of resource allocation may also be applied to a single TRP case.

[0095] NR Rel.16 agrees to use the code point in the TCI bitfield to indicate two TCI states (instead of the single TCI state in Rel.15), which essentially means that two TRP transmissions are possible.

[0096] A. Determining the number of regions According to the first example, processor 770 (and the corresponding processor 730 as well) determines the number (quantity) of regions according to the maximum number of TCI states that are set as semi-static as possible as indicated by one TCI in DCI during operation.

[0097] In other words, the UE semi-statically determines the number of regions based on the maximum number of TCI states that are semi-statically set up as indicated by one index of the TCI signaling.

[0098] In particular, base station 710 may semi-statically set an RRC message indicating the number of TCI states that can be dynamically set by DCI by sending an RRC message to UE760. For example, the RRC message may indicate that the maximum number of TCI states is 1. In such a case, DCI includes frequency resources for only a single TCI state (a single TRP). For example, the RRC message may indicate that the maximum number of TCI states is 2. In such a case, the TCI indicator may indicate one or two TCI states that are applied for the transmission / reception of scheduled data in the same DCI. For example, the RRC message may indicate that the maximum number of TCI states is 3 or more. In such a case, DCI may dynamically indicate any number 1, 2, 3, ... up to the maximum number of TCI states that can be set by RRC.

[0099] Subsequently, resource allocations carried in DCI are interpreted as covering frequency resources for the indicated number of TCI states, according to the TCI indicator. For example, if the maximum number of TCI states is 1, the entire allocated resource indicated by the frequency resource allocation belongs to transmit / receive using one TCI state. If the maximum number of TCI states is 2, there are at least two distinct regions. Generally, there are two superregions for each pair of TCI states. Each superregion may contain multiple regions and may be continuous or discontinuous in the frequency domain, as described below.

[0100] Determining the number of regions semi-statically can result in lower complexity because it does not need to be determined dynamically.

[0101] However, according to the second example, the processor 770 determines the number of regions according to the maximum number of TCI states indicated by the TCI indicator during operation. Correspondingly, the base station processor 730 determines the number of regions according to the maximum number of TCI states indicated by the TCI index. The determination of the regions, their number, size, location in relation to physical resources, and their allocation to each TCI state may be determined by the scheduling circuit 920 based on the quality / characteristics of the channel 750, UE capabilities, available resources in the cell processed by the base station 710, etc.

[0102] In other words, the UE dynamically determines the number of regions based on the maximum number of TCI states dynamically indicated by TCI code points in the DCI. In this example, the determination of the number of superregions is performed dynamically. Thus, resources can be utilized more efficiently. For example, if the maximum number of TRPs indicated by the RRC is 2, but the current DCI indicates by the TCI indicator that only a single TCI state should be used for sending / receiving data scheduled by the same DCI, then the number of regions is determined for a number of TCIs equal to 1. In practice, in this case, the regions do not need to be determined.

[0103] For example, if the maximum number of TRPs indicated by RRC is 3, but the current DCI indicates that only two TCI states should be used for sending / receiving data scheduled by the same DCI, then the number of regions is determined for a number of TCIs equal to 2.

[0104] Note that the maximum number of TCIs does not need to be notified / evaluated for this example. In particular, the number of regions in this example is determined based on dynamic scheduling.

[0105] Region mapping on B.PRG For example, the processor semi-statically allocates space to each integer multiple of the PRG without considering dynamic resource allocation based on the DCI during operation. For example, this allocation may be performed by starting from the beginning of the frequency resources indicated by the frequency domain allocation in the DCI and associating each PRG with a specific TCI state according to a predetermined pattern. There may be different patterns, as will be described in more detail later. For example, there may be an alternating pattern in which the PRGs are alternately assigned to multiple TCI states.

[0106] In other words, the UE semi-statically allocates space on a common physical resource block (PRB) across multiple PRGs before executing resource allocation. Therefore, dynamic allocation may refer only to space belonging to dynamically scheduled TCI states (according to the semi-static allocation).

[0107] The combination of the semistatic determination of the number of regions described above and this embodiment may provide a simple and efficient implementation of the UE.

[0108] In another example, the processor allocates regions to each integer multiple of the PRG according to a frequency domain resource allocation during operation. In this case, the allocation can facilitate more efficient resource utilization because only these regions are mapped to resources that are currently actually scheduled. The combination of this embodiment and the dynamic determination of the number of regions described above can provide efficient resource utilization.

[0109] In other words, in this example, the UE dynamically allocates space on the allocated physical resource blocks (PRBs) in multiple precoded resource block groups (PRGs) after the resource allocation has been performed.

[0110] C. Region association patterns In the first example, the processor associates a region with two or more TCI states according to a pre-configured pattern during operation. The pre-configured pattern may be static (configured by an operator, etc., in the standard), semi-static (e.g., by RRC signaling), or dynamically by code points of bit fields in DCI.

[0111] The predefined pattern may correspond to a round-robin arrangement where TCI states alternate after each integer M in a contiguous region, where M is greater than or equal to 1. Round-robin refers to an approach in which TCI states in a given order are periodically mapped to a PRG. A simple but efficient method of mapping may be M=1. However, the disclosure is not limited thereto, and M may be greater than 1. In fact, M1 and M2 may be defined for each of two TCI states, where M1 is different from M2. For each of x TCI states, the number of regions Mx may be defined.

[0112] In other words, in this example, the UE associates each region, which is determined to be a TCI state indicated by a configurable pattern (static, semistatic, or dynamic), for example, by a round-robin across the entire frequency domain in a discontinuous manner.

[0113] On the base station side, the processor 730 needs to map the resources in the same way it does when transmitting or receiving data, in order to map the data to the resources in the correct way.

[0114] In the second example, processor 780 (along with processor 730) sequentially associates consecutive regions with each of two or more TCI states during operation. In other words, the UE (and base station) first sequentially associates each determined region with the indicated TCI state, and then proceeds with the remaining regions. This can be seen as associating each TCI state with an entire super-region (a super-region containing all regions related to a single TCI state) that is sequentially mapped onto the frequency resources allocated by the frequency domain allocation received in DCI. One advantage of this approach would be the reduced complexity of multiplexing.

[0115] According to the third example, processor 770 (and correspondingly processor 730) associates a first portion of a contiguous region with two or more TCI states and a second portion of the contiguous region with one TCI state in a round-robin manner during operation (as in the first example). In other words, UE760 (and correspondingly base station 710) associates each determined region with a designated TCI state in two steps, one of which involves a round-robin association that is discontinuous, and the other step involves an association between one super region (the remaining region of one TCT state) and the remaining PRG. This approach may be particularly advantageous for cases where different MCS and / or different TBs are mapped to different TCI states.

[0116] In the fourth example, the pre-configured pattern is received within semi-static or dynamic signaling as a bitmap where each bit of the bitmap represents a region, with the first value of the bit indicating a first TCI state and the second value of the bit indicating a second TCI state. In other words, the UE dynamically associates the indicated TCI states with each determined region based on the bitmap's indications for each region, where "0" means unassociated and "1" means associated. Note that this pattern signaling is merely illustrative. The bitmap may also be provided with each bit representing a PRG (corresponding to the case where the region size is 1 PRG). Generally, this fourth example offers the highest flexibility on the one hand, but requires some additional resources for signaling the bitmap.

[0117] A hybrid solution may be available to provide a trade-off between flexibility and signaling effort. For example, bitmaps are associated with indices defined on the stick and semi-statically notified from the base station to the UE. Note that such indexing of different schemes is not limited to bitmap representations. For example, two patterns, such as a round-robin pattern (see the first example above) and a sequential pattern (see the second example above), may both be statically defined as configurable (by the standard or operator) and associated with each index (e.g., 0 and 1). The base station then indicates the configured scheme by setting a range and notifying its index, for example, in an RRC message. For even greater flexibility, in some embodiments, the index may be notified in the DCI.

[0118] Alternatively, multiple patterns may be notified (pre-configured), for example, by referring to a bitmap format or a predetermined index of different patterns (e.g., in a standard). Dynamic switching between such pre-configured patterns may be enabled by DCI, for example, as an index for each of the pre-configured patterns. Such indices are dynamically notified in DCI, for example, as code points that are jointly coded with a field or one or more other parameters.

[0119] D. Area size According to the first example, the processor (770 and / or 730) sets the size of each region as a fixed size common to all regions of all TCI states during operation. In other words, the UE is statically configured by a common fixed value for each region. For example, each region may have the size of one PRG. However, the region size may also be statically configured to two or more PRGs. Static configuration means that the length of the region (in terms of the number of PRGs) is specified by the standard or by the network operator. Generally, static configuration means that it is not possible to reconfigure for an established data bearer.

[0120] According to the second example, the processor (770 and / or 730) sets the size of each region according to semi-static signaling that is received by the transceiver during operation and specifies a size common to all regions of all TCI states, or specifies a size common to all regions of each TCI state.

[0121] In other words, the UE is semi-statically configured (by the base station) with a common fixed value for each region via RRC signaling. The first possibility, having one common size for all regions of all TCI states, saves signaling resources. The second possibility, setting different region sizes for each different TCI state, provides greater flexibility and is particularly suitable for cases where different TCI states are configured by different MCSs.

[0122] According to the third example, the processor, during operation, • Obtaining the absolute size of multiple PRGs from DCI. • Obtaining the ratio between the sizes of regions belonging to different TCI states from DCI. • Obtain the transport block size of each region belonging to a different TCI state from DCI, and determine the size of the region based on the transport block size. • Divide the total number of PRGs by the number of areas according to resource allocation. The size of each region is determined from DCI by one or more of the following.

[0123] For example, UE dynamically determines the size of each region based on dynamic instructions via DCI. Such instructions may directly include the size (absolute size), or they may indicate the size by an index associated with that size. For example, the region size may be part of a region configuration that further includes patterns, the number of regions, etc. Such configurations may be listed in a table and associated with their respective indexes, which may be indicated in DCI. Any other signaling of size within DCI is possible.

[0124] The UE may be notified by an absolute size with respect to a multiple of the PRG, as described above with reference to semistatic signaling, or by any other indication of the size of each TCI state, either separately or in common to all TCI states.

[0125] For example, the UE may be indicated by DCI signaling, showing the ratio between sizes for each region. One region may be indicated by its absolute size, and the others by ratio or difference. As will be apparent to those skilled in the art, further possibilities exist, and therefore this disclosure is not limited to any of these examples.

[0126] In other exemplary implementations, the UE determines the size of each region based on the TB size associated with each region, which is computable based on separate MCS directives for each TCI state. The TB size may be obtained from the MCS, and modulation may also be considered for the determination. The MCS is typically represented by an MCS index to an MCS table containing a combination of modulation (order) and transport block size (corresponding to coding rate).

[0127] In other exemplary implementations, the UE (and corresponding base station) determines the size of each region by simply dividing the total number of PRGs by the total number of regions. In this example, it is assumed that the region size is the same for all TCI states. However, this determination may also be combined with notifying a ratio between the regions related to different TCI states in order to obtain the size, or such ratio may be determined / derived depending on the MCS.

[0128] The determination and mapping of the above regions were performed in different steps A-D, but this is merely illustrative, and it should be noted that in practice, the mapping of TCI states may be described / defined directly on the PRG. For example, given the size of a region such as M, the TCI states are cyclically assigned to each of the M PRGs. Thus, this disclosure is not limited to any particular method by which the mapping of transmissions associated with different TRPs to PRGs is performed, as long as the result is achieved (see, for example, the mappings in Figures 13-17).

[0129] Figure 10 shows a method according to an embodiment. This method is to be performed at a UE and, in step 1010, begins with the reception of RRC signaling and configures the UE by an FDM mechanism for multi-TRP reception and / or transmission of data. The RRC signaling is received from the network and may include any parameters for configuring regions, such as their size, location, number, and assignment to PRG and TCI states. For example, a base station may configure its UE in its cell via RRC. In step 1020, the UE receives a scheduling DCI and, for the TCI indicator, checks the code point of the corresponding bit field in the DCI. In particular, to receive a DCI, the UE may monitor a pre-configured CORESET (control resource) and perform blind decoding to determine whether a DCI addressed to the UE exists. If such a DCI is detected, the UE parses the parameters notified in the DCI. According to this disclosure, the parameters include a TCI indicator indicating at least whether one or more TCI states are configured. In some embodiments, the TCI indicator may also indicate the number of configured TCI states. After extracting the TCI indicator from the DCI, step 1030 evaluates (determines) whether two or more TCI states are set (as indicated by the TCI indicator).

[0130] If there are two or more TCI states as shown in step 1030, steps 1040-1060 are performed. In particular, in step 1040, the UE determines a frequency resource for receiving data. This may be done by extracting a frequency domain allocation from the DCI. However, the disclosure is not limited thereto, and the resource may be defined semi-permanently and / or at least partially semi-statically by a previously received DCI. Then, in step 1050, the UE associates the determined frequency resource with a plurality of TRPs at a granularity of multiples of the PRG, where the multiple may be 1 or more (integer multiples) of the PRG. Finally, in step 1060, the UE receives data transmissions from the plurality of TRPs on the allocation and associated resource. In this example, it is assumed that the scheduling DCI was a DCI scheduling transmission on the downlink. However, as stated above, the disclosure is applicable to uplinks in addition to or instead of downlinks. Note that the disclosure may also be applicable to sidelinks.

[0131] If there is one or fewer TCI states indicated in step 1030, steps 1070-1090 are performed. In step 1070, the UE determines the frequency resource to receive data from one TRP. Following step 1070, in step 1080, the UE associates the indicated single TCI state with a transmit. Finally, in step 1090, the UE receives a data transmit from one TRP on the allocated resource.

[0132] Figure 11 shows how this is implemented on both the UE and the base station communicating with each other.

[0133] The method performed at the base station may include step S1110 in which the base station performs scheduling and allocates resources to the UE in two or more TCI states (TRPs). In accordance with such allocation, in step S1120, the base station generates a DCI to be carried on the PDCCH in order to provide within the DCI signaling a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set, and a frequency domain resource allocation that indicates the frequency domain resources to be allocated to the two or more TCI states. To properly map the transmission of data to the resources, the base station determines one or more regions in the frequency domain for each of the two or more TCI states, where each region has an integer multiple of a precoded resource block group (PRG), where the integer is 1 or greater, and regions of different TCI states do not overlap. In step S1130, the base station transmits the PDCCH containing the generated DCI. Finally, in step S1170, the base station transmits data for each TCI state on the frequency domain resources in the determined regions of the frequency domain.

[0134] Correspondingly, the method performed by the UE includes step S1140, in which the PDCCH receives downlink control information (DCI) signaling. In step S1150, the UE obtains from the DCI signaling a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set, and a frequency domain resource allocation that indicates the frequency domain resources to be allocated to the two or more TCI states. In step S1160, for each of the two or more TCI states, the UE determines one or more regions in the frequency domain, each region having an integer multiple of a precoding resource block group (PRG), the integer being 1 or greater, and regions of different TCI states not overlap. Thus, in step S1180, the UE receives data on the frequency domain resources in the determined region of the frequency domain for each TCI state.

[0135] When referring to frequency domain resources, this disclosure intends one or more symbolic frequency domain resources (such as OFDM or DFT-S-OFDM depending on the uplink / downlink of the physical layer technology). Typically, DCI carries (or suggests the timing of) specific time domain resources to which the scheduling carried in DCI applies.

[0136] In the following, several specific examples are provided to illustrate some of the combinations of the region determination parts A to D described above. Please note that these examples do not limit the present invention.

[0137] Example 1 The UE (and base station) divides the PRB in the frequency domain into multiple regions of equal size, where the size of each region is statically set to be equal to 1 PRG. The number of super regions is equal to the number of configured TCI states. The semi-static association between regions and TCI states is performed in a round-robin manner, resulting in regions having the same index number (i.e., assigned to the same TCI state) being allocated discontinuously in the frequency domain on resources allocated by the frequency domain resource allocation carried by DCI.

[0138] One of the effects of Example 1 is that it does not require any additional signaling and relies solely on the new procedure that is set in the UE and applied when two or more TCI states are indicated by the TCI indicator. By discontinuous assignment, Example 1 can provide the UE with the greatest frequency diversity.

[0139] On the other hand, this embodiment also presents several limitations. The primary use case of this embodiment is when the same MCS is used for transmissions from different TRPs, and either a PRG size of 2 or 4 is indicated by DCI. Semistatic association means that even unavailable areas can be associated with TRPs, and actual transmissions only occur on available areas, which means that the effective association sequence with TRPs may not be round-robin.

[0140] Figure 12 shows a specific example of the region according to Example 1.

[0141] Two region superregions are defined: Superregion 1 is associated with TCI state 1, and Superregion 2 is associated with TCI state 2. Each superregion has one contiguous PRG, which is associated with each TCI state in a round-robin manner. Thus, the superregions as a whole are discontinuous. In this example, region PRG5 is likely unavailable due to allocation to some other UE. As can be seen from Figure 12, the allocation between regions and TCI states is performed before actual resource allocation, so PRG5 belongs to Superregion 1 but cannot be allocated / used for TCI state 1. PRG4 and PRG6 both belong to Superregion 2 and therefore belong to TCI state 2.

[0142] Example 2 This embodiment is shown in Figure 13. In particular, the UE (corresponding to the provided configuration and following the base station) divides the PRG in the frequency domain into multiple regions of equal size. The size of each region is set statically to be equal to 1 PRG and common to all regions of all TCI states. The number (quantity) of regions is equal to the number of indicated TCI states, i.e., the number of TCI states indicated by DCI in the TCI indicator (e.g., within the code points of the corresponding bit fields). The dynamic association between regions and TCI states is performed in a round-robin manner. Thus, regions belonging to a single TCI state are allocated discontinuously in the frequency domain.

[0143] Here, the association is performed in a dynamic manner, meaning that only available resources are considered for creating areas and associating them with the TCI state. This can provide the benefit of efficient resource utilization. One suitable use case for this embodiment would be when the same MCS is used for transmissions from different TRPs, for example, when PRG sizes of 2 or 4 are indicated by the DCI.

[0144] As can be seen from Figure 13, two superregions are defined (shown as Region 1 and Region 2 in Figure 13), with the PRG shown as Superregion 1 associated with TCI state 1, and the PRG shown as Superregion 2 associated with TCI state 2. Each region of Superregion 1 and Superregion 2 has one contiguous PRG. The regions are associated with each TCI state in a round-robin manner, and therefore the association between regions and TCI states is discontinuous overall. Region 1 corresponds to PRG 1, Region 2 corresponds to PRG 2, Region 3 corresponds to PRG 3, and so on.

[0145] The association is performed dynamically only for the allocated resources, i.e., the resources specified in the DCI frequency domain allocation, so all associated domains are allocated again.

[0146] Example 3 Example 3 is shown in Figure 14. Thus, the UE (corresponding to the configuration adopted by the base station) divides the PRB in the frequency domain into multiple regions of equal size. The size of the regions is set semistatically by the RRC protocol. The number of super regions is equal to the number of indicated TCI states, which is 2 in this example. Dynamic association between regions and TCI states is performed in a round-robin manner, and super regions are allocated discontinuously. Dynamic indication of the region size can be explicitly notified by a new bit field, or it can be implicitly notified along with the nominal RBG size notification.

[0147] This is shown in Table 2 below, which is a modification of Table 1 described above. Therefore, the values ​​in parentheses are exemplary region sizes related to the RGB size. For example, for the size of the bandwidth portion between 73 and 144, in setting 1, the RGB size is 8RB and the region size is 2PRG. Note that this table representation is merely illustrative to show that there may be a relationship between the RGB size (or even configurable by semi-static signaling) and the region size as defined by the standard. Such relationships can be specified in ways different from and independently of this table. The effect of such implicit relationships is a reduction in signaling overhead for the purpose of signaling region size. [Table 2]

[0148] Figure 14 defines two superregions: Superregion 1 is associated with TCI state 1, and Superregion 2 is associated with TCI state 2. Each region represents the size of two PRGs, and these regions are associated with each TCI state in a round-robin manner, resulting in discontinuous resource allocation for each TCI state. Figure 14 shows four regions 1 to 4, of which Regions 1 and 3 form Superregion 1, and Regions 2 and 4 form Superregion 2. Superregion 1 is associated with TCI state 1, and Superregion 2 is associated with TCI state 2.

[0149] This embodiment is relatively flexible because the region size is not fixed to 1PRG. In this example, the region size is 2PRG. However, as mentioned above, the size may generally be indicated according to the desired frequency diversity. Such indication may be provided for all regions. One use case in which this embodiment can provide an effective implementation is when the same MCS is used for transmission from different TRPs, for example, when a PRG size of either 2 or 4 is indicated by DCI. To also make this embodiment suitable for different MCSs for different TCI states, the region size indication may be provided for each TCI state.

[0150] Example 4 In this embodiment, the number of regions (along with the number of superregions in this case) is equal to the number of indicated TCI states. Thus, the UE divides the PRG in the frequency domain into multiple regions of equal size (or, generally, substantially equal size if the number of PRGs is not divisible by the number of TCI states). The dynamic association between regions and TCI states is performed in a round-robin manner. In this embodiment, each region is allocated contiguously, and the region size is calculated by dividing the total PRG by the number of regions. This embodiment may be particularly advantageous when the precoding granularity is broadband, and as a result, contiguous allocation is more suitable.

[0151] Example 4 is shown in Figure 15. To make it clear, two regions are defined: Region 1 is associated with TCI state 1, and Region 2 is associated with TCI state 2. Each region is defined by dividing the total available PRG into these two parts, each part being associated with a separate TCI state. Each superregion corresponds to each region and therefore only has a contiguous allocation of PRG.

[0152] Example 5 According to Example 5, the UE divides the PRB in the frequency domain into multiple regions of different sizes. The size of the regions is explicitly communicated to the UE either as an absolute value or as a ratio of the region sizes.

[0153] For example, if 2 and 4 are the explicit (absolute) sizes indicated for each region of TCI state 1 and TCI state 2, then Region 1 associated with TCI state 1 will have 2 consecutive PRGs, and Region 2 associated with TCI state 2 will have 4 consecutive PRGs. If a ratio such as (1:2) is indicated, then Region 1 associated with TCI state 1 will have 1 consecutive PRG, and Region 2 associated with TCI state 2 will have 2 consecutive PRGs. In this embodiment, the number of superregions is equal to the number of TCI states set. Dynamic association between regions and TCI states is performed in a round-robin manner, thereby allocating superregions discontinuously. This embodiment provides flexibility to support even cases where different TBS are not of equal size between different regions when different TBS are sent from different TRPs.

[0154] Example 6 In this embodiment, the UE (and corresponding base station) divides the PRB (particularly the PRG) in the frequency domain into multiple regions of different sizes. In particular, the size of each region is calculated based on different MCS instructions for different TRPs. Assume that a first TRP is set by MCS 1 and a second TRP is set by MCS 2, and that MCS 1 and MCS 2 are different from each other.

[0155] For example, if the values ​​of MCS 1 and MCS 2 are within a certain threshold, the domain size ratio is calculated as (1:1). This threshold is the threshold for the difference between MCS 1 and MCS 2. If MCS 1 > MCS 2 (or vice versa) and the difference between them (MCS 1 - MCS 2 and / or MCS 2 - MCS 1, e.g., the absolute difference) exceeds a certain threshold, the domain size ratio is calculated as (1:2).

[0156] The number of superregions is equal to the number of TCI states to be set. The association between regions and TCI states is performed in a round-robin manner. Therefore, superregions are allocated non-contiguously.

[0157] This embodiment calculates the size ratio between different regions based on a specified MCS for different TRPs, thus eliminating the need for explicit signaling and resulting in more efficient resource utilization.

[0158] Figure 16 shows a specific example of regions according to this embodiment. Two superregions are defined, with superregion 1 associated with TCI state 1 and superregion 2 associated with TCI state 2. The size ratio between Region 1 and Region 2 is indicated or determined as 2:1, meaning that Region 1 (with respect to superregion 1) has two consecutive PRGs and Region 2 (with respect to superregion 2) has one consecutive PRG. The total resources associated with each TCI state are not equal in this embodiment.

[0159] Example 7 In this embodiment, the UE (and also the base station) divides the PRB (and therefore the PRG) in the frequency domain into multiple regions of equal size. The size of each region is statically set to be equal to 1 PRG. The number of super regions is equal to the number of TCI states that are set. Dynamic association between regions and TCI states is performed in two steps when different TB sizes are transmitted from different TRPs. Associations between regions and TCI states are first performed in a round-robin manner until the smallest TB size associated with one of the TCI states is fully allocated. After the smallest TB size (here, 1 PRG) is fully allocated, the remaining regions are contiguously associated with TCI states by the largest TB size. In this case, super regions are allocated discontinuously. This embodiment is simpler because it does not require calculations regarding the size ratio between different regions.

[0160] Figure 17 shows a specific example of this embodiment. Two regions are defined: Region 1 is associated with TCI state 1, and Region 2 is associated with TCI state 2. Regions 1 and 2 are defined in a round-robin manner (1 PRG each) until a smaller TBS associated with Region 2 is allocated. Thereafter, all remaining (allocated) PRGs are successively allocated to Region 1 because they have a larger TBS. The total resources associated with each TCI state are not equal.

[0161] This disclosure can be implemented by software, hardware, or software that interacts with hardware. Each functional block used in the description of each embodiment described above can be implemented partially or entirely by an LSI (Large Scale Integration) such as an integrated circuit, and each process described in each embodiment may be controlled partially or entirely by the same LSI or a combination of LSIs. The LSI may be formed as individual chips, or a single chip may be formed to include some or all of the functional blocks. The LSI may include data inputs and outputs coupled thereto. Here, LSIs may be called ICs, system LSIs, super LSIs, or ultra LSIs depending on the degree of integration. However, the technology for realizing integrated circuits is not limited to LSIs, and may be implemented using dedicated circuits, general-purpose processors, or application-specific processors. Furthermore, a Field Programmable Gate Array (FPGA) that can be programmed after manufacturing of an LSI or reconfigurable processor in which the connections and settings of circuit cells arranged inside the LSI can be reconfigured may be used. This disclosure can be implemented as digital processing or analog processing. As a result of advancements in semiconductor technology and other derivative technologies, if future integrated circuit technology replaces LSIs, functional blocks can be integrated using future integrated circuit technology. Biotechnology can also be applied.

[0162] This disclosure can be implemented by any type of device, apparatus, or system having communication capabilities, referred to as a communication apparatus.

[0163] Some non-exclusive examples of such communication devices include telephones (e.g., cell phones, smartphones), tablets, personal computers (PCs) (e.g., laptops, desktops, netbooks), cameras (e.g., digital still / video cameras), digital players (digital audio / video players), wearable devices (e.g., wearable cameras, smartwatches, tracking devices), game consoles, digital book readers, telehealth / telemedicine (remote health and telemedicine) devices, and vehicles providing communication capabilities (e.g., automobiles, airplanes, ships), as well as various combinations thereof.

[0164] Communication devices are not limited to being portable or mobile, and may include any type of device, system, or apparatus that is non-portable or fixed, such as smart home devices (e.g., appliances, lighting, smart meters, control panels), vending machines, and any other “thing” in the “Internet of Things (IoT)” network.

[0165] Communication may include, for example, exchanging data via cellular systems, wireless LAN systems, satellite systems, and various combinations thereof.

[0166] The communication device may include devices such as controllers or sensors coupled to a communication device that performs the communication functions described in this disclosure. For example, the communication device may include controllers or sensors that generate control signals or data signals used by the communication device that performs the communication functions of the communication device.

[0167] The communication equipment may also include infrastructure facilities such as base stations and access points, and any other equipment, devices, or systems that communicate with or control such equipment as those in the non-limiting examples above.

[0168] In summary, the first embodiment provides a user device (UE) comprising: a transceiver that receives downlink control information (DCI) signaling during operation; a processor that, during operation, obtains from the DCI signaling a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set, and a frequency domain resource allocation indicating the frequency domain resources to be allocated to the two or more TCI states, and determines one or more regions in the frequency domain for each of the two or more TCI states, wherein each region has an integer multiple of a precoding resource block group (PRG), the integer is 1 or greater, and regions of different TCI states do not overlap; and the transceiver receives or transmits data on the frequency domain resources in the determined frequency domain regions for each TCI state during operation.

[0169] In addition to the first embodiment, in the second embodiment, the processor determines the number of regions according to the maximum number of TCI states that are set as semi-static as possible, as indicated by one TCI in the DCI during operation.

[0170] In addition to the first embodiment, in the third embodiment, the processor determines the number of regions according to the maximum number of TCI states indicated by the TCI indicator during operation.

[0171] In addition to the first or second embodiment, in the fourth embodiment, the processor allocates the region to each integer multiple of the PRG in a semi-static manner without considering dynamic resource allocation based on DCI during operation.

[0172] In addition to the first or third embodiment, in the fifth embodiment, the processor allocates the region to each integer multiple of the PRG in accordance with the frequency domain resource allocation during operation.

[0173] In addition to any of the first to fifth embodiments, in the sixth embodiment, the processor allocates the regions to the two or more TCI states according to a pre-configured pattern during operation.

[0174] In addition to the sixth embodiment, in the seventh embodiment, the pre-configured pattern is received in semi-static or dynamic signaling as a bitmap of bits representing regions, where a first value of the bit indicates a first TCI state and a second value of the bit indicates a second TCI state.

[0175] In addition to the sixth embodiment, in the eighth embodiment, the pre-set pattern corresponds to round robin by alternating TCI states after each integer M in a contiguous region, where M is not less than 1.

[0176] In addition to the eighth embodiment, according to the ninth embodiment, the processor associates the first portion of the contiguous region with the two or more TCI states and the second portion of the contiguous region with one of the TCI states in a round-robin manner during operation.

[0177] In addition to any of the first to sixth embodiments, the tenth embodiment includes the processor sequentially associating consecutive regions with each of the two or more TCI states during operation.

[0178] In addition to any of the first to ninth embodiments, in the eleventh embodiment, the processor sets the size of each region during operation by (i) as a fixed size common to all regions of all TCI states, or (ii) according to semi-static signaling that is received by the transceiver and is a size common to all regions of all TCI states, or a size common to all regions of each TCI state for each TCI state.

[0179] In addition to any of the first to ninth embodiments, the twelfth embodiment determines the size of each region from the DCI by one or more of the following during operation: (i) obtaining the absolute size of a multiple of the PRG from the DCI; (ii) obtaining the ratio between the sizes of regions belonging to different TCI states from the DCI; (iii) obtaining the transport block size of each region belonging to a different TCI state from the DCI and determining the size of the region based on the transport block size; and (iv) dividing the total number of PRGs by the resource allocation by the number of regions.

[0180] According to the 13th embodiment, a transceiver is provided that transmits downlink control information (DCI) signaling during operation; a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set within the DCI signaling during operation; and a processor that provides frequency domain resource allocation that indicates frequency domain resources to be allocated to the two or more TCI states, wherein for each of the two or more TCI states, one or more regions in the frequency domain are determined, each region having an integer multiple of a precoding resource block group (PRG), the integer being 1 or greater, and regions of different TCI states do not overlap; and the transceiver is provided that, during operation, a scheduling node is provided that transmits or receives data on the frequency domain resources in the determined region of the frequency domain for each TCI state.

[0181] A 14th embodiment provides a method comprising: receiving downlink control information (DCI) signaling; obtaining from the DCI signaling a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set, and a frequency domain resource allocation indicating frequency domain resources to be allocated to the two or more TCI states; determining one or more regions in the frequency domain for each of the two or more TCI states, wherein each region has an integer multiple of a precoding resource block group (PRG), the integer is 1 or greater, and regions of different TCI states do not overlap; and receiving or transmitting data on a frequency domain resource in the determined region of the frequency domain for each TCI state.

[0182] A method is provided that includes the steps of: transmitting downlink control information (DCI) signaling; providing a TCI indicator in the DCI signaling that two or more TCI (Transmission Configuration Indication) states are set; a frequency domain resource allocation indicating frequency domain resources to be allocated to the two or more TCI states; determining one or more regions in the frequency domain for each of the two or more TCI states, wherein each region has an integer multiple of a precoding resource block group (PRG), the integer is 1 or greater, and regions of different TCI states do not overlap; and transmitting or receiving data on a frequency domain resource in the determined region of the frequency domain for each TCI state.

[0183] It should be noted that embodiments 2 through 12 are applicable to the scheduling device of embodiment 13. Furthermore, the steps performed by the circuit during operation correspond to their respective methods, along with the transceiver steps referenced in the above-described embodiments of the UE and base station.

[0184] Furthermore, a non-temporary medium is provided that stores program instructions that, when executed on a processing circuit such as a general-purpose processor, perform all the steps of any of the embodiments of the method described above.

[0185] In summary, this disclosure relates to a user equipment (UE) and a scheduling node, along with a corresponding method. In particular, downlink control information (DCI) signaling carries a TCI indicator that specifies that two or more TCI (Transmission Configuration Indication) states are set, and a frequency domain resource allocation that specifies the frequency domain resources to be allocated for the two or more TCI states. For each of the two or more TCI states, one or more regions in the frequency domain are determined, each region having an integer multiple of a precoding resource block group (PRG), the integer being 1 or greater, and regions of different TCI states do not overlap. For each TCI state, data is received or transmitted on the frequency domain resources in the determined frequency domain region.

Claims

1. A transceiver that receives a single piece of control information, A processor that obtains information indicating multiple transmission setting states and frequency domain resource allocation from the single control information, divides the frequency domain allocated by the frequency domain resource allocation into multiple non-overlapping regions including one or more resource groups, and associates each of the multiple non-overlapping regions with one of the multiple transmission setting states, It has, The transceiver receives or transmits data in the non-overlapping area associated with each transmission setting state. Communication device.

2. The aforementioned multiple transmission setting states correspond to different transmission and reception points. The communication device according to claim 1.

3. The resource group includes multiple physical resource blocks that share the same precoding. The communication device according to claim 1.

4. The processor determines the number of non-overlapping regions based on the number of the multiple transmission setting states. The communication device according to claim 1.

5. The processor divides into multiple non-overlapping regions or associates them with multiple transmission setting states according to the assignment setting selected by the selection information included in the single control information, from among multiple assignment settings set by setting information different from the single control information. The communication device according to claim 1.

6. Each of the above-mentioned multiple assignment settings indicates at least one of the number, size, assignment to the frequency domain, or association to the above-mentioned multiple transmission setting states. The communication device according to claim 5.

7. The processor associates the plurality of non-overlapping regions with the plurality of transmission setting states according to a pre-configured pattern. The communication device according to claim 1.

8. The aforementioned pre-configured pattern includes a pattern that periodically associates the plurality of non-overlapping regions with the plurality of transmission setting states. The communication device according to claim 7.

9. The aforementioned pre-configured pattern includes a pattern that sequentially associates the plurality of non-overlapping regions with each of the plurality of transmission setting states. The communication device according to claim 7.

10. The processor determines the size of the multiple non-overlapping regions based on at least one of a fixed value, setting information, the single control information, the ratio between the multiple transmission setting states, the modulation and encoding scheme, or the transport block size. The communication device according to claim 1.

11. The data includes the same transport block transmitted or received in accordance with the multiple transmission setting states, or different transport blocks transmitted or received in accordance with each of the multiple transmission setting states. The communication device according to claim 1.

12. The single control information is downlink control information, the multiple transmission setting states are multiple TCI states, and the resource group is a pre-coding resource block group. The communication device according to claim 1.

13. A transceiver that transmits a single piece of control information, A processor that includes in the single control information information information indicating multiple transmission setting states and frequency domain resource allocation, divides the frequency domain allocated by the frequency domain resource allocation into multiple non-overlapping regions including one or more resource groups, and associates each of the multiple non-overlapping regions with one of the multiple transmission setting states, It has, The transceiver transmits or receives data in the non-overlapping area associated with each transmission setting state. Base station.

14. The processor generates configuration information different from the single control information, The transceiver transmits the setting information to the communication device. The aforementioned configuration information indicates multiple assignment settings. The base station according to claim 13.

15. The single control information includes selection information for selecting one of the multiple assignment settings, The processor divides the region into the plurality of non-overlapping regions or associates it with the plurality of transmission setting states according to the assignment settings selected by the selection information. The base station according to claim 14.

16. A communication method in a communication device, The steps include receiving a single piece of control information, The steps include obtaining information indicating multiple transmission setting states and frequency domain resource allocation from the single control information, The steps include dividing the frequency domain allocated by the aforementioned frequency domain resource allocation into multiple non-overlapping regions, each containing one or more resource groups, The steps of associating each of the plurality of non-overlapping regions with one of the plurality of transmission setting states, For each transmission setting state, the steps include receiving or transmitting data in the non-overlapping area associated with that transmission setting state, Having Communication method.

17. A communication method at a base station, A step of generating single control information that includes information indicating multiple transmission setting states and frequency domain resource allocation, The steps include transmitting the single control information, The steps include dividing the frequency domain allocated by the aforementioned frequency domain resource allocation into multiple non-overlapping regions, each containing one or more resource groups, The steps of associating each of the plurality of non-overlapping regions with one of the plurality of transmission setting states, For each transmission setting state, the step of transmitting or receiving data in the non-overlapping area associated with that transmission setting state, Having Communication method.

18. An integrated circuit used in communication devices, The transceiver of the communication device receives a single piece of control information. From the aforementioned single control information, information indicating multiple transmission setting states and frequency domain resource allocation are obtained. The frequency domain allocated by the aforementioned frequency domain resource allocation is divided into multiple non-overlapping regions, each containing one or more resource groups. Each of the aforementioned non-overlapping regions is associated with one of the aforementioned transmission setting states. For each transmission setting state, the transceiver is controlled to receive or transmit data in the non-overlapping area associated with that transmission setting state. Integrated circuit.

19. An integrated circuit used in a base station, It generates a single control information that includes information indicating multiple transmission setting states and frequency domain resource allocation. The base station's transceiver transmits the single control information. The frequency domain allocated by the aforementioned frequency domain resource allocation is divided into multiple non-overlapping regions, each containing one or more resource groups. Each of the aforementioned non-overlapping regions is associated with one of the aforementioned transmission setting states. For each transmission setting state, the transceiver is controlled to transmit or receive data in the non-overlapping area associated with that transmission setting state. Integrated circuit.