Method of communication, terminal device, and network device
The communication method and apparatus address the lack of common beam details in 3GPP specifications by implementing TCI states for efficient beam management, improving latency and overhead in multi-beam operations.
Patent Information
- Application Number
- JP2025128959
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-07-31
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2041-04-02
AI Technical Summary
Current 3GPP specifications lack details on common beams for transmitting and receiving data and control information, leading to unclear updates and potential beam failure detection in multi-beam operations, particularly for intra-band carrier aggregation.
A communication method and apparatus that utilize transmission configuration indicator (TCI) states for efficient beam management, including methods for coordinating multi-TRP/multi-panel operations and specifying repetition schemes for PDSCH and PDCCH transmissions.
Enhances beam management efficiency, reducing latency and overhead, and ensuring successful beam updates in multi-beam operations by providing clear guidelines for common beam updates and detection.
Smart Images

Figure 2025163145000001_ABST
Abstract
Description
[Technical Field]
[0001] TECHNICAL FIELD Embodiments of the present disclosure relate generally to the field of telecommunications, and more particularly to communication methods, apparatus, and computer storage media. [Background technology]
[0002] At the 3GPP® RAN#86 meeting, it was agreed to support enhancements for multi-beam operation, primarily targeting Frequency Range 2 (FR2) but also applicable to Frequency Range 1 (FR1). It was agreed to identify and specify features to facilitate more efficient (lower latency and overhead) downlink (DL) and uplink (UL) beam management. For example, it was proposed to support common beams for transmitting and receiving data and control information for DL and UL, particularly for intra-band carrier aggregation (CA). It was also proposed to support a unified Transmission Configuration Indication (TCI) framework for DL and UL beam indication. However, the current 3GPP specifications do not provide details regarding common beams for transmitting and receiving data and control information. Summary of the Invention [Problem to be solved by the invention]
[0003] Generally, the exemplary embodiments of the present disclosure provide a method, apparatus, and computer storage medium for beam management. [Means for solving the problem]
[0004] In a first aspect, a communication method is provided, comprising: receiving, at a terminal device, downlink control information (DCI) from a network device for scheduling a physical downlink shared channel (PDSCH), the DCI including an indication of at least one of a first transmission configuration indicator (TCI) state and a second TCI state, and receiving the PDSCH having at least one of a third TCI state and a fourth TCI state based on an association.
[0005] In a second aspect, a communication method is provided, the method including: transmitting downlink control information (DCI) from a network device to a terminal device for scheduling a physical downlink shared channel (PDSCH), the DCI including an indication of at least one of a first transmission configuration indicator (TCI) state and a second TCI state, and transmitting the PDSCH having at least one of a third TCI state and a fourth TCI state based on an association.
[0006] In a third aspect, a communication method is provided, the method including: receiving, in a terminal device, downlink control information (DCI) from a network device, the downlink control information having an indication of at least one of a first transmission configuration indicator (TCI) state and a second TCI state; and receiving, after a timing, a first physical downlink control channel (PDCCH) having the at least one of the first TCI state and the second TCI state based on the association.
[0007] In a fourth aspect, a communication method is provided, the method including: transmitting, from a network device to a terminal device, downlink control information (DCI) having an indication of at least one of a first transmission configuration indicator (TCI) state and a second TCI state; and, after a timing, transmitting, based on an association, a first physical downlink control channel (PDCCH) having at least one of the first TCI state and the second TCI state.
[0008] In a fifth aspect, there is provided a terminal device comprising a processor and a memory coupled to the processor, the memory storing instructions that, when executed by the processor, cause the terminal device to perform a method according to the first or third aspect.
[0009] In a sixth aspect, there is provided a network device comprising a processor and a memory coupled to the processor, the memory storing instructions that, when executed by the processor, cause the network device to perform a method according to the second or fourth aspect.
[0010] In a seventh aspect, there is provided a computer program product stored on a computer-readable medium and comprising machine-executable instructions which, when executed, cause a machine to perform a method according to the first or third aspect above.
[0011] In an eighth aspect, there is provided a computer program product stored on a computer-readable medium and comprising machine-executable instructions which, when executed, cause a machine to perform a method according to the second or fourth aspect above.
[0012] It should be understood that this Summary of the Invention is not intended to identify key or essential features of the embodiments of the present disclosure, nor to limit the scope of the present disclosure. Other features of the present disclosure will be readily apparent from the following description. [Brief explanation of the drawings]
[0013] The above and other objects, features and advantages of the present disclosure will become more apparent from the following detailed description of several embodiments of the present disclosure in the drawings.
[0014] [Figure 1] FIG. 1 illustrates an exemplary communication network in which embodiments of the present disclosure may be implemented.
[0015] [Figure 2] FIG. 1 is a signaling diagram for signaling communication in accordance with some embodiments of the present disclosure.
[0016] [Figure 3A] FIG. 1 illustrates an example of a PDCCH according to some embodiments of the present disclosure. [Figure 3B] FIG. 1 illustrates an example of a PDCCH according to some embodiments of the present disclosure. [Figure 3C] FIG. 1 illustrates an example of a PDCCH according to some embodiments of the present disclosure. [Figure 3D] FIG. 1 illustrates an example of a PDCCH according to some embodiments of the present disclosure.
[0017] [Figure 4A] FIG. 1 illustrates an example of communication in accordance with some embodiments of the present disclosure. [Figure 4B] FIG. 1 illustrates an example of communication in accordance with some embodiments of the present disclosure. [Figure 4C] FIG. 1 illustrates an example of communication in accordance with some embodiments of the present disclosure. [Figure 4D] FIG. 1 illustrates an example of communication in accordance with some embodiments of the present disclosure. [Figure 4E]FIG. 1 illustrates an example of communication in accordance with some embodiments of the present disclosure. [Figure 4F] FIG. 1 illustrates an example of communication in accordance with some embodiments of the present disclosure.
[0018] [Figure 5A] FIG. 10 illustrates an example of TCI state settings according to some embodiments of the present disclosure. [Figure 5B] FIG. 10 illustrates an example of TCI state settings according to some embodiments of the present disclosure. [Figure 5C] FIG. 10 illustrates an example of TCI state settings according to some embodiments of the present disclosure. [Figure 5D] FIG. 10 illustrates an example of TCI state settings according to some embodiments of the present disclosure.
[0019] [Figure 6A] FIG. 10 is a diagram illustrating an example of an association between a TCI state and a CORESET according to some embodiments of the present disclosure. [Figure 6B] FIG. 10 is a diagram illustrating an example of an association between a TCI state and a CORESET according to some embodiments of the present disclosure.
[0020] [Figure 7A] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 7B] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 7C] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 7D] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 7E] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 7F]FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 7G] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 7H] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure.
[0021] [Figure 8A] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 8B] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 8C] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure. [Figure 8D] FIG. 10 illustrates an example of TCI states applied for a PDSCH in accordance with some embodiments of the present disclosure.
[0022] [Figure 9A] FIG. 10 illustrates an example of TCI states applied for a PDCCH in accordance with some embodiments of the present disclosure. [Figure 9B] FIG. 10 illustrates an example of TCI states applied for a PDCCH in accordance with some embodiments of the present disclosure. [Figure 9C] FIG. 10 illustrates an example of TCI states applied for a PDCCH in accordance with some embodiments of the present disclosure. [Figure 9D] FIG. 10 illustrates an example of TCI states applied for a PDCCH in accordance with some embodiments of the present disclosure. [Figure 9E] FIG. 10 illustrates an example of TCI states applied for a PDCCH in accordance with some embodiments of the present disclosure. [Figure 9F] FIG. 10 illustrates an example of TCI states applied for a PDCCH in accordance with some embodiments of the present disclosure.
[0023] [Figure 10] FIG. 1 is a schematic block diagram of an apparatus suitable for implementing embodiments of the present disclosure.
[0024] In the drawings, the same or similar reference numbers represent the same or similar elements. DETAILED DESCRIPTION OF THE INVENTION
[0025] The principles of the present disclosure will now be described with reference to some exemplary embodiments. It should be understood that these embodiments are provided for illustrative purposes only to aid those skilled in the art in understanding and practicing the present disclosure, and do not imply any limitation on the scope of the present disclosure. The disclosure described herein can be implemented in various ways different from those described below.
[0026] In the following description and claims, unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure pertains.
[0027] As used herein, the singular forms "a," "an," and "said" include the plural forms unless the context clearly indicates otherwise. The term "comprises" and variations thereof should be understood as open-ended terms meaning "including, but not limited to." The term "based on" should be understood as "based at least in part on." The terms "some embodiments" and "embodiments" should be understood as "at least some embodiments." The term "another embodiment" should be understood as "at least one other embodiment." The terms "first," "second," etc. may refer to different or the same object. The following may include other explicit and implicit definitions.
[0028] In some instances, values, procedures, or devices are referred to as "best," "lowest," "highest," "minimum," "maximum," etc. It will be understood that such descriptions are intended to illustrate that choices may be made from among many functional alternatives used, and that such choices are not necessarily better, smaller, higher, or otherwise more preferred than other choices.
[0029] At the 3GPP RAN#86 meeting, it was agreed to support enhancements for multi-beam operation, primarily targeting FR2 but also applicable to FR1. It was agreed to identify and specify features to facilitate more efficient (lower latency and overhead) DL and UL beam management. For example, it was proposed to support common beams for DL and UL data and control information transmission and reception, particularly for in-band CA. It was also proposed to support a TCI framework for DL and UL beam indication. However, the current 3GPP specifications do not provide details regarding common beams for data and control information transmission and reception. For example, it is unclear how to update the common beams used for PDCCH and PDSCH and when to apply the updated beams. It is also unclear how to ensure that the common beams are updated successfully. Additionally, it is unclear how such common beam updates affect beam failure detection.
[0030] The principles and embodiments of the present disclosure will be described in detail below with reference to FIGS.
[0031] FIG. 1 illustrates an exemplary communications network 100 in which embodiments of the present disclosure can be implemented. As shown in FIG. 1, network 100 includes a network device 110. For example, network device 110 may be configured with two TRPs / panels 120-1 and 120-2 (collectively referred to as TRPs 120 or individually referred to as TRPs 120). Network 100 further includes a terminal device 130 served by network device 110. It should be understood that the number of network devices, terminal devices, and TRPs illustrated in FIG. 1 is for illustrative purposes only and does not imply any limitations on the present disclosure. Network 100 may include any suitable number of devices suitable for implementing embodiments of the present disclosure.
[0032] As used herein, the term "terminal device" refers to any device capable of wireless or wired communication. Examples of terminal devices include, but are not limited to, user equipment (UE), personal computers, desktop computers, mobile phones, cellular phones, smartphones, personal digital assistants (PDAs), portable computers, tablets, wearable devices, Internet of Things (IoT) devices, Internet of Things (IoE) devices, machine-type communication (MTC) devices, Ultra-Reliable Low Latency Communication (URLLC) devices, and in-vehicle devices for V2X communications, where the "X" in V2X represents a pedestrian, vehicle, or infrastructure / network, or an image capture device such as a digital camera, a gaming device, a music storage and playback device, or an Internet appliance capable of wireless or wired Internet access and browsing. For purposes of explanation, some embodiments will be described below with reference to a UE as an example of terminal device 130.
[0033] As used herein, the term "network device" or "base station" (BS) refers to a device capable of providing or hosting a cell or coverage area over which terminal devices can communicate. Examples of network devices include, but are not limited to, a Node B (NodeB or NB), an evolved Node B (eNodeB or eNB), a next-generation Node B (gNB), a transmit / receive point (TRP), a remote radio unit (RRU), a radio head (RH), a remote radio head (RRH), a femto node, a pico node, and other low-power nodes. The term "TRP" refers to an antenna array (having one or more antenna elements) available to a network device located at a particular geographic location. For example, a network device may be coupled to multiple TRPs in different geographic locations to achieve better coverage. It should be understood that a TRP may also be referred to as a "panel," and a "panel" may refer to an antenna array (having one or more antenna elements) or a group of antennas.
[0034] In one embodiment, the terminal device 130 may be connected to a first network device and a second network device (not shown in FIG. 1). One of the first network device and the second network device may be in a master node, and the other may be in a secondary node. The first network device and the second network device may use different radio access technologies (RATs). In one embodiment, the first network device may be a first RAT device, and the second network device may be a second RAT device. In one embodiment, the first RAT device may be an eNB, and the second RAT device may be a gNB. Information regarding the different RATs may be transmitted from at least one of the first network device and the second network device to the terminal device 130. In one embodiment, the first information may be transmitted from the first network device to the terminal device 130, and the second information may be transmitted from the second network device directly or via the first network device to the terminal device 130. In one embodiment, information regarding the terminal device configuration configured by the second network device may be transmitted from the second network device via the first network device. Information regarding the reconfiguration of the terminal device set by the second network device may be transmitted to the terminal device directly from the second network device or via the first network device, and may be transmitted via any of Radio Resource Control (RRC) signaling, Medium Access Control (MAC) control elements (CEs), or Downlink Control Information (DCIs).
[0035] In the communication network 100, the network devices 110 can communicate data and control information to the terminal devices 130, and the terminal devices 130 can also communicate data and control information to the network devices 110. The link from the network devices 110 to the terminal devices 130 is called the downlink (DL), and the link from the terminal devices 130 to the network devices 110 is called the uplink (UL).
[0036] Communications in network 100 may conform to any suitable standard, including, but not limited to, Global System for Mobile Communications (GSM), Long Term Evolution (LTE), LTE-Evolution, LTE-Advanced (LTE-A), Wideband Code Division Multiple Access (WCDMA), Code Division Multiple Access (CDMA), GSM EDGE Radio Access Network (GERAN), Machine Type Communications (MTC), etc. Furthermore, communications may be performed according to any currently known or future-developed generation of communications protocols. Examples of communications protocols include, but are not limited to, first generation (1G), second generation (2G), 2.5G, 2.75G, third generation (3G), fourth generation (4G), 4.5G, and fifth generation (5G) communications protocols.
[0037] As shown in Figure 1, network device 110 may communicate with terminal device 130 via TRPs 120-1 and 120-2. As shown in Figure 1, network device 110 may communicate with terminal device 130 via TRPs 120-1 and 120-2. Each of TRPs 120 may provide multiple beams for communicating with terminal device 130.
[0038] In some embodiments, the first and second TRPs 120 may be explicitly associated with different higher layer configured identities. For example, the higher layer configured identities may be associated with a predefined control resource set (CORESET), a predefined reference signal (RS), or a predefined transmission configuration indication (TCI) state used to distinguish transmissions between different TRPs 120 and the terminal device 130. When the terminal device 130 receives two DCIs from two CORESETs associated with different higher layer configured identities, the two DCIs are indicated from different TRPs. Furthermore, the first and second TRPs 120 may be implicitly identified by dedicated configurations for physical channels or signals. For example, dedicated CORESETs, RSs, and TCI states associated with the TRPs are used to distinguish transmissions to the terminal device 130 from different TRPs. For example, when the terminal device 130 receives DCI from a dedicated CORESET, the DCI is indicated from the associated TRP dedicated to the CORESET.
[0039] In the repetitive transmission or reception via the two TRPs 120, the network device 110 may select a repetition scheme from among multiple available repetition schemes. The repetition scheme may define a transmission method for the network device 110 to use the two TRPs 120 in a coordinated manner, such as a multiplexing scheme between the two TRPs 120 and respective resource allocation for the two TRPs 120.
[0040] For example, a scheme for multi-TRP / multi-panel based URLLC scheduled by at least a single downlink control information (DCI) may be as follows:
[0041] Method 1 (SDM): n (n ≤ N) in a single slot s ) TCI states, and there are overlapping time and frequency resource allocations.
[0042] Scheme 1a: Each transmission occasion is a layer or set of layers of the same transport block (TB), and each layer or set of layers is associated with one TCI and one set of DMRS ports. A single codeword with one RV is used across all spatial layers or sets of layers. From the UE's perspective, different coded bits are mapped to different layers or sets of layers using the same mapping rules as in Rel-15.
[0043] Scheme 1b: Each transmission occasion is a layer or set of layers of the same TB, and each layer or set of layers is associated with one TCI and one set of DMRS ports. A single codeword with one RV is used for each spatial layer or set of layers. The RVs corresponding to each spatial layer or set of layers may be the same or different. If the total number of layers is ≦4, the mapping of codewords to layers is for further study.
[0044] Method 1c: One transmission occasion is one layer of the same TB having one DMRS port associated with multiple TCI state indices, or one layer of the same TB having multiple DMRS ports associated one-to-one with multiple TCI state indices.
[0045] Additionally, it is shown that it is also possible to apply different MCS / modulation orders to different layers or sets of layers.
[0046] Method 2 (FDM): n (n ≤ N) in a single slot f ) TCI states, with non-overlapping frequency resource allocations. Each non-overlapping frequency resource allocation is associated with one TCI state. The same single / multiple DMRS ports are associated with all non-overlapping frequency resource allocations.
[0047] Scheme 2a: A single codeword with one RV is used across all resource allocations. From the UE's perspective, a common RB mapping (codeword to layer mapping in Rel-15) is applied across all resource allocations. In some embodiments, the terminal device may be configured or set to have FDM scheme A by a higher layer parameter. For example, the higher layer parameter may be an RRC parameter. For example, the higher layer parameter may be URLLCSchemeEnabler.
[0048] Scheme 2b: A single codeword with one RV is used for each non-overlapping frequency resource allocation. The RVs corresponding to each non-overlapping frequency resource allocation may be the same or different. In some embodiments, the terminal device may be configured or set to have FDM scheme B by a higher layer parameter. For example, the higher layer parameter may be an RRC parameter. For example, the higher layer parameter may be URLLCSchemeEnabler.
[0049] Additionally, it is also possible to discuss the application of different MCS / modulation orders for different non-overlapping frequency resource allocations, and details of the frequency resource allocation mechanism for FDM 2a / 2b, including allocation granularity and time domain allocation, are also discussed.
[0050] Method 3 (TDM or intra-slot overlap): n (n ≤ N) t1) TCI states, and there are non-overlapping time resource allocations. Each transmission occasion of a TB has one TCI and one RV, and the time granularity is a minislot. All transmission occasions within a slot use a common MCS with the same single or multiple DMRS ports. The RV / TCI states may be the same or different between transmission occasions. Channel estimate interpolation across minislots with the same TCI index is a topic for further study. In some embodiments, the terminal device may be configured or set to have TDM scheme A by a higher layer parameter. For example, the higher layer parameter may be an RRC parameter. For example, the higher layer parameter may be URLLCSchemeEnabler.
[0051] Method 4 (TDM or slot overlap): n (n ≤ N t2 ) TCI states and K (n≦K) different slots. Each transmission occasion of TB has one TCI and one RV. All transmission occasions across K slots use a common MCS with the same single or multiple DMRS ports. The RV / TCI states may be the same or different between transmission occasions. Channel estimate interpolation across slots with the same TCI index is a topic for future research.
[0052] Additionally, before transmitting data to the terminal device 130 (e.g., via TRP 120-1 and / or 120-2), the network device 110 may transmit control information associated with the transmission of the data. For example, the control information may schedule a set of resources for the data transmission and indicate various transmission parameters associated with the data transmission defined in the 3GPP specifications, such as one or more TCI states, a Frequency Domain Resource Assignment (FDRA), a Time Domain Resource Assignment (TDRA), which may include slot offset and start / length indicator values, a Demodulation Reference Signal (DMRS) group, and a Redundancy Version (RV). It should be understood that the transmission parameters indicated in the control information 135 are not limited to those listed above. Embodiments of the present disclosure may be equally applicable to control information including any transmission parameters.
[0053] In the following, the terms "transmission occasion", "reception occasion", "repetition", "transmission", "reception", "PDSCH transmission occasion", "PDSCH repetition", "PUSCH transmission occasion", "PUSCH repetition", "PUCCH occasion", "PUCCH repetition", "repetitive transmission", "repetitive reception", "PDSCH transmission", "PDSCH reception", "PUSCH transmission", "PUSCH reception", "PUCCH transmission", "PUCCH reception", "RS transmission", "RS reception", "communication", "transmission", and "reception" may be used interchangeably. The terms "TCI state", "set of QCL parameters", "QCL parameters", "QCL assumption", and "QCL configuration" may be used interchangeably. The terms "TCI field", "TCI state field", and "transmission configuration indication" may be used interchangeably. The terms "transmission occasion," "transmission," "repetition," "reception," "reception occasion," "monitoring occasion," "PDCCH monitoring occasion," "PDCCH transmission occasion," "PDCCH transmission," "PDCCH candidate," "PDCCH reception occasion," "PDCCH reception," "search space," "CORESET," "multiple chances," and "PDCCH repetition" may be used interchangeably. Hereinafter, the terms "PDCCH repetition," "repeated PDCCH," "repeated PDCCH signal," "PDCCH candidate configured for the same scheduling," "PDCCH," "PDCCH candidate," and "linked PDCCH candidate" may be used interchangeably. The terms "DCI" and "DCI format" may be used interchangeably. In some embodiments, embodiments of the present disclosure may be applied to PDSCH and PUSCH scheduling, and PDSCH scheduling will be described below as an example. For example, embodiments of the present disclosure may be applied to PUSCH by replacing "transmission" with "reception" and / or "reception" with "transmission." The terms "PDSCH" and "PUSCH" may be used interchangeably. The terms "transmit" and "receive" may be used interchangeably.
[0054] As specified in the 3GPP specification (TS 38.214), a UE can be configured with a list of up to M TCI state configurations in the higher layer parameter PDSCH-Config to decode PDSCH from a detected PDCCH with DCI targeted for the UE and a given serving cell, where M depends on the UE capability maxNumberConfiguredTCIstatesPerCC. Each TCI state includes parameters for configuring a quasi-co-location relationship between one or two downlink reference signals and a DMRS port of the PDSCH, a DMRS port of the PDCCH, or a channel state information reference signal (CSI-RS) port of a CSI-RS resource. The quasi-co-location relationship is configured by the higher layer parameters qcl-Type1 of the first downlink (DL) RS and qcl-Type2 of the second DL RS (if configured). For two DL RSs, the QCL types must not be the same, whether they refer to the same DL RS or different DL RSs. The quasi-co-location type corresponding to each DL RS is given by the higher layer parameter qcl-Type in QCL-Info and can be one of the following values: - "QCL-TypeA": {Doppler shift, Doppler spread, average delay, delay spread} - "QCL-TypeB": {Doppler shift, Doppler spread} - "QCL-TypeC": {Doppler shift, average delay} - "QCL-TypeD": {Spatial reception parameters}
[0055] The UE receives an activation command according to clause "TCI state activation / deactivation for UE-specific PDSCH MAC CE" (e.g., clause 6.1.3.14) of TS 38.321 or clause "Extended TCI state activation / deactivation for UE-specific PDSCH MAC CE" (e.g., clause 6.1.3) of TS 38.321, which is used to map up to eight TCI states to code points of the DCI field "Transmission Configuration Indication" within one CC / DL BWP or a set of CC / DL BWPs, respectively. If a set of TCI state IDs is activated for a set of CC / DL BWPs, where the available list of CCs is determined by the indicated CC in the activation command, the same set of TCI state IDs applies to all DL BWPs within the indicated CC.
[0056] If the UE supports two TCI states within a codepoint of the DCI field "Transmission Configuration Indication", the UE may receive an activation command as described in TS 38.321 clause "TCI state activation / deactivation for UE-specific PDSCH MAC CE" or clause "Extended TCI state activation / deactivation for UE-specific PDSCH MAC CE" (e.g., clause 6.1.3.14 or subclause 6.1.3), where the activation command is used to map up to eight combinations of one or two TCI states to a codepoint of the DCI field "Transmission Configuration Indication". The UE is not expected to receive more than eight TCI states within an activation command.
[0057] If the DCI field "Transmission Configuration Indication" is present in DCI format 1_2 and the number of code points S in the DCI field "Transmission Configuration Indication" of DCI format 1_2 is less than the number of TCI code points activated by the activation command, only the first S activated code points are applied for DCI format 1_2 as described in clauses 6.1.3.14 and 6.1.3.24 of [10, TS38.321].
[0058] If the UE transmits a PUCCH with HARQ-ACK information in slot n corresponding to a PDSCH carrying an activation command, the indicated mapping between the TCI state and the codepoint of the DCI field "Transmission Configuration Indication" is
number
[0059] In some embodiments, if the UE is configured with the higher layer parameter tci-PresentInDCI set to "enabled", or if tci-PresentInDCI-ForFormat1_2 is configured for the CORESET scheduling the PDSCH, the UE assumes that the TCI field is present in the DCI of the PDCCH transmitted on the CORESET (e.g., DCI format 1_1 or DCI format 1_2). If tci-PresentInDCI or tci-PresentInDCI-ForFormat1_2 is not configured for the CORESET scheduling the PDSCH, or if the PDSCH is scheduled by DCI (e.g., DCI format 1_0), the UE assumes that the TCI field is not present in the DCI of the PDCCH transmitted on the CORESET (e.g., DCI format 1_1 or DCI format 1_2 or DCI format 1_0). If a PDSCH is scheduled with a DCI format in which the TCI field is not present and the time offset between reception of the DL DCI and the corresponding PDSCH of the serving cell is greater than or equal to a threshold timeDurationForQCL (if applicable) based on the reported UE capabilities [13, TS 38.306] for determining PDSCH antenna port quasi-co-location, the UE shall assume that the TCI state or QCL assumption for the PDSCH is the same as the TCI state or QCL assumption applied to the CORESET used for PDCCH transmission within the active BWP of the serving cell.
[0060] If tci-PresentInDCI is set to "enabled" or tci-PresentInDCI-ForFormat1_2 is configured for the CORESET scheduling PDSCH, and the time offset between the reception of the DL DCI and the corresponding PDSCH is equal to or greater than timeDurationForQCL (if applicable), after the UE receives the initial higher layer configuration of the TCI state and before receiving the activation command, the UE may assume that the DMRS port of the PDSCH of the serving cell is quasi-co-located with the SS / PBCH block determined in the initial access procedure for "QCL-TypeA" and, if applicable, for "QCL-TypeD". The value of timeDurationForQCL is based on the reported UE capabilities.
[0061] If the UE is configured with the higher layer parameter tci-PresentInDCI set to "enabled" for the CORESET scheduling the PDSCH, the UE shall assume that a TCI field is present in the DCI of the PDCCH transmitted on the CORESET (e.g., DCI format 1_1). If the UE is configured with the higher layer parameter tci-PresentInDCI-ForFormat1_2 for the CORESET scheduling the PDSCH, the UE shall assume that a TCI field with the DCI field size indicated by tci-PresentInDCI-ForFormat1_2 is present in the DCI of the PDCCH transmitted on the CORESET (e.g., DCI format 1_2). If a PDSCH is scheduled with a DCI format in which the TCI field is not present and the time offset between the reception of the DL DCI and the corresponding PDSCH is greater than or equal to the threshold timeDurationForQCL (if applicable) based on the reported UE capabilities [TS 38.306] for determining PDSCH antenna port quasi-co-location, the UE shall assume that the TCI state or QCL assumption for the PDSCH is the same as the TCI state or QCL assumption applied to the CORESET used for PDCCH transmission within the serving cell's active BWP.
[0062] If the PDSCH is scheduled using a DCI format in which the TCI field is present and the TCI field in the DCI in the scheduling component carrier indicates an activated TCI state in the scheduling component carrier or DL BWP, the UE determines the PDSCH antenna port quasi-co-location using the TCI state according to the value of the "Transmission Configuration Indication" field in the detected PDCCH with the DCI. If the time offset between the reception of the DL DCI and the corresponding PDSCH is equal to or greater than the threshold timeDurationForQCL based on the reported UE capabilities [TS 38.306], the UE may assume that the DM-RS port of the PDSCH of the serving cell is quasi-co-located with the RS in the TCI state with respect to the QCL type parameter given by the indicated TCI state. If the UE is configured with a single-slot PDSCH, the indicated TCI state should be based on the activated TCI state in the slot with the scheduled PDSCH. If the UE is configured with a multi-slot PDSCH, the indicated TCI state should be based on the activated TCI state in the first slot with a scheduled PDSCH, and the UE should want the activated TCI state to be the same across slots with scheduled PDSCHs.When a UE is configured with CORESET associated with a search space set for cross-carrier scheduling, and a PDCCH carrying a scheduling DCI and a PDSCH scheduled by the DCI are transmitted on the same carrier, the UE expects tci-PresentInDCI to be set to 'enabled' or tci-PresentInDCI-ForFormat1_2 to be configured for CORESET, and if one or more of the TCI states configured for the serving cells scheduled by the search space set include 'QCL-TypeD', the UE expects the time offset between reception of a detected PDCCH in the search space set and the corresponding PDSCH to be greater than or equal to a threshold timeDurationForQCL.
[0063] Regardless of the settings of tci-PresentInDCI and tci-PresentInDCI-ForFormat1_2 in RRC connected mode, if the offset between the reception of the DL DCI and the corresponding PDSCH is smaller than the threshold timeDurationForQCL and at least one configured TCI state for the serving cell of the scheduled PDSCH contains qcl-Type set to "typeD".
[0064] The UE may assume that the DM-RS port of the PDSCH of the serving cell is quasi-co-located with the RS with respect to the QCL parameter used for the PDCCH quasi-co-location indication of the CORESET associated with the monitored search space with the lowest controlResourceSetId in the last slot monitored by the UE for one or more CORESETs in the active BWP of the serving cell. In this case, if the qcl-Type set to "type D" of the PDSCH DM-RS is different from the qcl-Type of the PDCCH DM-RS that overlaps it within at least one symbol, the UE is expected to prioritize reception of the PDCCH associated with that CORESET. This also applies in the case of intra-band CA (when the PDSCH and CORESET are in different component carriers).
[0065] If the UE is configured with enableDefaultTCIStatePerCoresetPoolIndex and the UE is configured with the higher layer parameter PDCCH-Config containing two different coresetPoolIndex values in different ControlResourceSets.
[0066] The UE may assume that the DM-RS port of the PDSCH associated with the coresetPoolIndex value of the serving cell is quasi-co-located with the RS with respect to the QCL parameter used for the PDCCH quasi-co-location indication of the CORESET associated with the monitored search space with the lowest controlResourceSetId among the CORESETs configured to have the same coresetPoolIndex value as the PDCCH scheduling the PDSCH in the last slots monitored by the UE, where the CORESET(s) associated with the same coresetPoolIndex value as the PDCCH scheduling the PDSCH are in the active BWP of the serving cell. In this case, if the "QCL-Type D" of the PDSCH DM-RS overlaps within at least one symbol and differs from that of the PDCCH DM-RS associated with the same coresetPoolIndex, the UE is expected to prioritize reception of the PDCCH associated with that CORESET. This also applies in the case of intra-band CA (when the PDSCH and CORESET are in different component carriers).
[0067] If the UE is configured with enableTwoDefaultTCI-States and at least one TCI codepoint indicates two TCI states, the UE may assume that the DM-RS port of the PDSCH of the serving cell or the PDSCH transmission occasion is quasi-co-located with the RS with respect to the QCL parameter associated with the TCI state corresponding to the lowest codepoint among the TCI codepoints containing two different TCI states. If the UE is configured with the higher layer parameter repetitionScheme set to "tdmSchemeA" or is configured with the higher layer parameter repetitionNumber, it determines the mapping of TCI states to PDSCH transmission occasions according to clause 5.1.2.1 based on the activated TCI states in the slot with the first PDSCH transmission occasion by replacing the indicated TCI state with the TCI state corresponding to the lowest codepoint among the TCI codepoints containing two different TCI states. In this case, if the "QCL-TypeD" in both TCI states corresponding to the lowest codepoint among the TCI codepoints containing two different TCI states differs from that of the overlapping PDCCH DM-RS within at least one symbol, the UE is expected to prioritize reception of the PDCCH associated with the CORESET. This also applies in the case of intra-band CA (when the PDSCH and CORESET are in different component carriers).
[0068] In any of the above cases, if none of the configured TCI states for the serving cell of the scheduled PDSCH is configured to have qcl-Type set to "typeD", the UE should derive other QCL assumptions from the indicated TCI state for the scheduled PDSCH, regardless of the time offset between reception of the DL DCI and the corresponding PDSCH.
[0069] If a PDCCH carrying a scheduling DCI is received on one component carrier and a PDSCH scheduled by this DCI is on another component carrier, and the UE is configured with enableDefaultBeam-ForCCS: - timeDurationForQCL is determined based on the subcarrier spacing of the scheduled PDSCH. If μ PDCCH <μ PDSCH If so,
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[0070] For periodic CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info, the UE should expect the TCI-State to indicate one of the following quasi-co-location types: - "type C" with SS / PBCH blocks and, if applicable, "type D" with the same SS / PBCH blocks, or - "type C" with SS / PBCH blocks and, if applicable, "type D" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter repetition, or
[0071] For aperiodic CSI-RS resources in an NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info, the UE should expect the TCI-State to indicate qcl-Type set to "typeA" with periodic CSI-RS resources in an NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info, and, if applicable, qcl-Type set to "typeD" with the same periodic CSI-RS resources.
[0072] For periodic CSI-RS resources in an NZP-CSI-RS-ResourceSet configured without the higher layer parameter trs-Info and without the higher layer parameter repetition, the UE should expect the TCI-State to indicate one of the following quasi-co-location types: - "typeA" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with the same CSI-RS resources, or - "typeA" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with SS / PBCH blocks, or - "typeA" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter repetition, or - If 'typeD' is not applicable, 'typeB' with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info.
[0073] For periodic CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter repetition, the UE should expect the TCI-State to indicate one of the following quasi-colocation types: - "typeA" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with the same CSI-RS resources, or - "typeA" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter repetition, or - "typeC" with SS / PBCH blocks and, if applicable, "typeD" with the same SS / PBCH blocks.
[0074] For DM-RS of PDCCH, the UE should expect the TCI-State to indicate one of the following quasi-co-location types: - "typeA" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with the same CSI-RS resources, or - "typeA" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter repetition, or - "typeA" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured without the higher layer parameter trs-Info and without the higher layer parameter repetition, and "typeD" with the same CSI-RS resources, if applicable.
[0075] For DM-RS of PDSCH, the UE should expect the TCI-State to indicate one of the following quasi-co-location types: - "typeA" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with the same CSI-RS resources, or - "typeA" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info and, if applicable, "typeD" with CSI-RS resources in NZP-CSI-RS-ResourceSet configured with the higher layer parameter repetition, or - "typeA" with CSI-RS resources in the NZP-CSI-RS-ResourceSet configured without the higher layer parameter trs-Info and without the higher layer parameter repetition, and "typeD" with the same CSI-RS resources, if applicable.
[0076] If the PDCCH carrying the scheduling DCI is received on one component carrier and the PDSCH scheduled by the DCI is on another component carrier, imeDurationForQCL is determined based on the subcarrier spacing of the scheduled PDSCH. When PDCCH < PDSCH, an additional timing delay d is added to timeDurationForQCL. Here, when the subcarrier spacing for PDCCH is 15 kHz, d is defined as 8 symbols, or when the subcarrier spacing for PDCCH is 30 kHz, it is defined as 8 symbols, or when the subcarrier spacing for PDCCH is 60 kHz, it is defined as 14 symbols. For example, whether the symbol is a PDCCH symbol or (as defined in Table 5.2.1.5.1a-1 of TS 38.214, for example) the symbol is based on the subcarrier spacing of the PDCCH. - In both cases, when tci-PresentInDCI is set to "enabled" and the offset between the reception of the DL DCI and the corresponding PDSCH is less than the threshold timeDurationForQCL, and when tci-PresentInDCI is not set, the UE obtains its QCL assumption for the scheduled PDSCH from the activated TCI state with the lowest ID applicable to the PDSCH in the active BWP of the scheduled cell.
[0077] As specified in the 3GPP specification (TS 38.214), when the UE is configured to have a higher layer parameter RepSchemeEnabler set to one of "FDMSchemeA", "FDMSchemeB", "TDMSchemeA", two TCI states are indicated within the code point of the DCI field "Transmission Configuration Indication" and the DMRS ports within one CDM (Code Domain Multiplexing) group are indicated within the DCI field "Antenna Port(s)" for the UE. - If two TCI states are indicated in the DCI and the UE is configured with "FDMSchemeA", the UE shall receive a single PDSCH transmission occasion for the TB, where each TCI state is associated with a non-overlapping frequency domain resource allocation as described in TS 38.214 clause "Physical resource block (PRB) bundling" (e.g. clause 5.1.2.3). - If two TCI states are indicated in the DCI and the UE is configured with "FDMSchemeB", the UE shall receive two PDSCH transmission occasions of the same TB, where each TCI state is associated with a PDSCH transmission occasion that has a non-overlapping frequency domain resource allocation with respect to other PDSCH transmission occasions, as described in TS 38.214 clause "Physical Resource Block (PRB) bundling" (e.g. clause 5.1.2.3). - If two TCI states are indicated in the DCI and the UE is configured with "TDMSchemeA", the UE shall receive two PDSCH transmission occasions of the same TB, where each TCI state is associated with a PDSCH transmission occasion that has a non-overlapping time domain resource allocation with respect to other PDSCH transmission occasions as described in TS 38.214 clause "Resource allocation in the time domain" (e.g. clause 5.1.2.1), and all two PDSCH transmission occasions shall be received within a given slot.
[0078] If the UE is configured by the higher layer parameter PDSCH-config indicating at least one entry in pdsch-TimeDomainAllocationList containing RepNumR16 in PDSCH-TimeDomainResourceAllocation, the UE may expect one or two TCI states to be indicated in the codepoints of the DCI field "Transmission Configuration Indication" and DM-RS ports in one CDM group to be indicated in the DCI field "Antenna Port(s)", together with the DCI field "Time domain resource assignment" indicating an entry containing RepNumR16 in PDSCH-TimeDomainResourceAllocation. If two TCI states are indicated in the "Transmission Configuration Indication" field in the DCI, the UE may expect to receive multiple slot-level PDSCH transmission occasions of the same TB, with two TCI states used across multiple PDSCH transmission occasions, as described in "Resource allocation in the time domain" in TS 38.214 (e.g., clause 5.1.2.1). If one TCI state is indicated in the "Transmission Configuration Indication" field in the DCI, the UE may expect to receive multiple slot-level PDSCH transmission occasions of the same TB, where one TCI state is used across multiple PDSCH transmission occasions, as described in "Resource allocation in the time domain" in TS 38.214 (e.g., clause 5.1.2.1).
[0079] If the UE is not indicated a DCI where the DCI field "Time domain resource assignment" indicates an entry in pdsch-TimeDomainAllocationList containing RepNumR16 in PDSCH-TimeDomainResourceAllocation, and two TCI states are indicated in the codepoints of the DCI field "Transmission Configuration Indication", and DM-RS ports in two CDM groups are indicated in the DCI field "Antenna Port(s)", the UE may expect to receive a single PDSCH, where the association between DM-RS ports and TCI states is defined in clause "DMRS reception procedures" in TS 38.214 (e.g., clause 5.1.6.2).
[0080] If the UE is not indicated a DCI where the DCI field "Time domain resource assignment" indicates an entry in pdsch-TimeDomainAllocationList containing RepNumR16 in PDSCH-TimeDomainResourceAllocation and one TCI state is indicated in the codepoint of the DCI field "Transmission Configuration Indication", the UE procedure for receiving the PDSCH upon detection of a PDCCH shall follow clause "UE procedure for receiving the physical downlink shared channel" in TS 38.214 (e.g. clause 5.1).
[0081] In the following, the terms "FDMSchemeA" and "Scheme2a" may be used interchangeably. The terms "FDMSchemeB" and "Scheme2b" may be used interchangeably. The terms "TDMSchemeA" and "Scheme3" may be used interchangeably. The terms "RepNumR16" and "Scheme4" may be used interchangeably.
[0082] As specified in the 3GPP specification (TS 38.214), when a UE is configured with the higher layer parameter RepSchemeEnabler set to "TDMSchemeA" and the DM-RS ports in one CDM group indicated in the DCI field "Antenna Ports", the number of PDSCH transmission occasions is derived from the number of TCI states indicated by the DCI field "Transmission Configuration Indication" of the scheduling DCI. If two TCI states are indicated by the DCI field "Transmission Configuration Indication", the UE is expected to receive two PDSCH transmission occasions, where the first TCI state applies to the first PDSCH transmission occasion and the resource allocation in the time domain for the first PDSCH transmission occasion follows the clause "Resource allocation in the time domain" in TS 38.214 (e.g., clause 5.1.2.1). The second TCI state applies to the second PDSCH transmission occasion, and the second PDSCH transmission occasion should have the same number of symbols as the first PDSCH transmission occasion.
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[0083] As specified in the 3GPP specification (TS 38.214), if the UE is configured by the higher layer parameter PDSCH-config indicating at least one entry in pdsch-TimeDomainAllocationList containing RepNumR16 in PDSCH-TimeDomainResourceAllocation. If two TCI states are indicated by the DCI field "Transmission Configuration Indication" and the DCI field "Time domain resource assignment" indicating an entry in pdsch-TimeDomainAllocationList containing RepNumR16 in PDSCH-TimeDomainResourceAllocation and a DM-RS port in one CDM group in the DCI field "Antenna Port(s)", the same SLIV (Start and length indicator value) applies to all PDSCH transmission occasions, the first TCI state applies to the first PDSCH transmission occasion, and the resource allocation in the time domain for the first PDSCH transmission occasion follows the clause "Resource allocation in the time domain" (e.g., clause 5.1.2.1) of TS 38.214. If the value indicated by RepNumR16 in PDSCH-TimeDomainResourceAllocation is equal to 2, the second TCI state applies to the second PDSCH transmission occasion. If the value indicated by RepNumR16 in PDSCH-TimeDomainResourceAllocation is greater than 2, the UE may be further configured to enable CycMapping or SeqMapping in RepTCIMapping. If CycMapping is enabled, the first and second TCI states are applied to the first and second PDSCH transmission occasions, respectively, and the same TCI mapping pattern continues to be applied to the remaining PDSCH transmission occasions.If SeqMapping is enabled, the first TCI state applies to the first and second PDSCH transmissions, the second TCI state applies to the third and fourth PDSCH transmissions, and the same TCI mapping pattern continues to apply to the remaining PDSCH transmission occasions. The UE may expect each PDSCH transmission occasion to be limited to two transmission layers. For all PDSCH transmission occasions associated with the first TCI state, the applied redundancy version is derived according to Table 5.1.2.1-2 [TS 38.214], where n is counted considering only PDSCH transmission occasions associated with the first TCI state. The redundancy version for PDSCH transmissions associated with the second TCI state is derived according to Table 5.1.2.1-3 (TS 38.214), where each redundancy version rv is sThe additional shift operation for is set by the higher layer parameter RVSeqOffset, and n is counted taking into account only PDSCH transmission occasions associated with the second TCI state. If one TCI state is indicated by the DCI field "Transmission Configuration Indication" and the DCI field "Time domain resource assignment" indicating an entry in pdsch-TimeDomainAllocationList containing RepNumR16 in PDSCH-TimeDomainResourceAllocation and a DM-RS port in one CDM group in the DCI field "Antenna Port(s)", the same SLIV applies for all PDSCH transmission occasions, and the first PDSCH transmission occasion follows the clause "Resource allocation in the time domain" in TS 38.214 (e.g., clause 5.1.2.1), and the same TCI state applies to all PDSCH transmission occasions. The UE may expect each PDSCH transmission occasion to be limited to two transmission layers. For all PDSCH transmission occasions, the applied redundancy version is derived according to Table 5.1.2.1-2 [TS 38.214], where n is counted taking into account the PDSCH transmission occasions. Otherwise, the UE is expected to receive a single PDSCH transmission occasion and the resource allocation in the time domain is according to TS 38.214 clause "Resource allocation in the time domain" (e.g. clause 5.1.2.1). [Table 1]
[0084] For a UE configured with the higher layer parameter RepSchemeEnabler set to "FDMSchemeA" or "FDMSchemeB" as specified in the 3GPP specification (TS 38.214), if the UE receives two TCI states indicated in the codepoints of the DCI field "Transmission Configuration Indication" and DM-RS ports in one CDM (Code Domain Multiplexing) group indicated in the DCI field "Antenna Port(s)". P' BWP,i If is determined as "broadband",
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[0085] For a UE configured with the higher layer parameter RepSchemeEnabler set to "FDMSchemeB", and if the UE has two TCI states indicated in the DCI field "Transmission Configuration Indication" codepoint and DM-RS ports in one CDM group indicated in the DCI field "Antenna Port(s)", each PDSCH transmission shall follow clause "Physical Downlink Shared Channel" of [TS 38.211] (e.g. clause 7.3.1), whose mapping to resource elements is determined by the allocated PRB for the corresponding TCI state of the PDSCH transmission occasion, and the UE shall expect only a maximum of two code blocks for each PDSCH transmission occasion if a single transmission layer is scheduled, and only a single code block for each PDSCH transmission occasion if two transmission layers are scheduled. For the two PDSCH transmission occasions, the redundancy version to be applied is derived according to Table 5.1.2.1-2 of [TS 38.214], where n=0, 1 applies to the first and second TCI states, respectively.
[0086] In some embodiments, the terminal device 130 may be configured to have a first PDCCH candidate and a second PDCCH candidate, where the first PDCCH candidate and the second PDCCH candidate are linked. For example, the linked first PDCCH candidate and the second PDCCH candidate are applied for PDCCH repetition. For another example, the linked first PDCCH candidate and the second PDCCH candidate are applied for the same scheduling. For example, the scheduling may be at least one of downlink data scheduling, PDSCH scheduling, uplink data scheduling, PUSCH scheduling, downlink RS scheduling, uplink RS scheduling, and PUCCH scheduling.
[0087] In some embodiments, terminal device 130 may be configured with multiple control resource sets (ie, CORESETs).
[0088] In some embodiments, the CORESET is a
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[0089] In some embodiments, one CORESET may be associated with one or more search space sets. One search space set may include or be associated with one or more PDCCH candidates. In some embodiments, a PDCCH monitoring period and / or a slot offset and / or a symbol index within a slot may be configured for each search space set. In some embodiments, a PDCCH candidate may be associated with or correspond to a search space.
[0090] In some embodiments, a procedure may be defined for determining physical downlink control channel candidates for terminal device 130. That is, a CCE index is determined for each of multiple PDCCH candidates that may be used for PDCCH transmission between network device 110 and terminal device 130. Once the CCE indexes for the PDCCH candidates are determined, terminal device 130 may perform blind detection on these PDCCH candidates. Once a PDCCH transmission is detected or received on a PDCCH candidate, terminal device 130 may decode it to obtain information such as DCI.
[0091] In some embodiments, the terminal device 130 may assume that the demodulation reference signal (DM-RS) antenna ports associated with PDCCH reception within a CORESET are quasi-co-located (QCLed) with one or more reference signals (RSs) configured by the transmission control indicator (TCI) state indicated for that CORESET (if applicable).
[0092] In some embodiments, if a Medium Access Control (MAC) control element (CE) activation command indicating a TCI state for a CORESET is not received after a most recent random access procedure that was not initiated by a PDCCH order triggering a contention-free random access procedure, the terminal device 130 may assume that the DM-RS antenna port associated with PDCCH reception in the CORESET is quasi-co-located (QCLed) with the synchronization signal / physical broadcast channel (SS / PBCH) block identified by the UE during the most recent random access procedure, and the one or more reference signals (RS) are configured according to the TCI state indicated for the CORESET (if applicable).
[0093] In some embodiments, the network device 110 may transmit a configuration (e.g., 210) to the terminal device 130 indicating N PDCCH candidates, where N is a positive integer. For example, 1≦N≦32. For another example, N=2. For example, the configuration may be transmitted via any of radio resource control (RRC) signaling, a medium access control (MAC) control element (CE), and a DCI.
[0094] In some embodiments, the network device 110 may transmit one or more configurations (e.g., 210) for a first PDCCH candidate and a second PDCCH candidate to the terminal device 130. In some embodiments, the first PDCCH candidate may be included in a first search space or a first search space set. In some embodiments, the first search space or the first search space set may be associated with a first CORESET. In some embodiments, the first CORESET may be associated with or configured to have a first TCI state T1 or a first set of QCL parameters Q1. In some embodiments, the second PDCCH candidate may be included in a second search space or a second search space set. In some embodiments, the second CORESET may be associated with or configured to have a second TCI state T2 or a second set of QCL parameters Q2. In some embodiments, T1 may be different from T2. In some embodiments, Q1 may be different from Q2.
[0095] In some embodiments, the first PDCCH candidate and the second PDCCH candidate may be explicitly configured to be linked / associated together. For example, the terminal device 130 may know the link / association before decoding. In some embodiments, there may be a first PDCCH / DCI transmitted / received within the first PDCCH candidate. In some embodiments, there may be a second PDCCH / DCI transmitted / received within the second PDCCH candidate. In some embodiments, the DCI payload and / or the number of coded bits and / or CCEs in the first PDCCH / DCI are the same as those in the second PDCCH / DCI. In some embodiments, the first PDCCH / DCI and the second PDCCH / DCI schedule the same communication between the network device 110 and the terminal device 130. For example, the communication may be at least one of a PDSCH, a PUSCH, a sounding reference signal (SRS), a channel state information reference signal (CSI-RS), a transport block, an active UL BWP change, an active DL BWP change, and a PUCCH.
[0096] In some embodiments, network device 110 may transmit a configuration (e.g., 210) to terminal device 130 indicating that a first PDCCH candidate and a second PDCCH candidate are linked together for PDCCH repetition. In some embodiments, network device 110 may transmit a configuration (e.g., 210) to terminal device 130 indicating that a first search space (or a first search space set or a first CORESET) and a second search space (or a second search space set or a second CORESET) are linked together. For example, this configuration may be transmitted from network device 110 to terminal device 130 via any of radio resource control (RRC) signaling, a medium access control (MAC) control element (CE), and DCI. For example, the first PDCCH candidate and the second PDCCH candidate may be used to carry a single or the same DCI format (or DCI payload).
[0097] In some embodiments, the first PDCCH candidate may end before or prior to the second PDCCH candidate in the time domain.
[0098] In some embodiments, network device 110 may transmit at least one configuration (eg, 210) regarding the first CORESET and the second CORESET to terminal device 120.
[0099] In some embodiments, the at least one configuration may configure a first set of search spaces associated with a first CORESET. In some embodiments, the at least one configuration may configure a second set of search spaces associated with a second CORESET. In some embodiments, the at least one configuration may configure a first set of PDCCH candidates in a first search space of the first set of search spaces. In some embodiments, the at least one configuration may configure a second set of PDCCH candidates in a second search space of the second set of search spaces. In some embodiments, the at least one configuration may configure a first PDCCH candidate in a first search space of the first set of search spaces associated with a first CORESET to be linked, associated, or related to a second PDCCH candidate in a second search space of the second set of search spaces associated with a second CORESET. For example, the terminal device knows the link, association, or relationship between the first and second PDCCH candidates before decoding the PDCCH or DCI in the first and second PDCCH candidates. In some embodiments, the first and second PDCCH candidates may be used for PDCCH repetitions. For example, coding and / or rate matching of a PDCCH in the first PDCCH candidate and / or a DCI in the PDCCH candidate is based on one repetition (e.g., a PDCCH in one of the first and second PDCCH candidates or a DCI in the PDCCH). For example, the same coded bits are repeated for other repetitions. For another example, each repetition has the same number of control channel elements (CCEs) and coded bits and corresponds to the same DCI payload. In some embodiments, the at least one configuration may be transmitted / received via at least one of RRC signaling, MAC CE, and DCI.
[0100] In some embodiments, a PDCCH candidate in a first search space set is linked with a PDCCH candidate in a second search space set based on two PDCCH candidates having the same aggregation level and the same candidate index. For example, the aggregation level of the first PDCCH candidate is the same as the aggregation level of the second PDCCH candidate. For another example, the candidate index of the first PDCCH candidate is the same as the candidate index of the second PDCCH candidate.
[0101] In some embodiments, network device 110 may transmit one or more configurations (e.g., 210) for a third CORESET to terminal device 130. The one or more configurations may indicate two active TCI states for the third CORESET. For example, terminal device 130 may detect / decode a PDCCH within a search space set associated with a third CORESET that has two active TCI states.
[0102] In some embodiments, network device 110 may transmit one or more configurations (e.g., 210) for a first number of PDSCH / PUSCH / PUCCH transmissions / receptions / repetitions / occasions to terminal device 130. For example, the first number is represented as G. For example, 1≦G≦32. For another example, G may be at least one of {1, 2, 3, 4, 5, 6, 7, 8, 16, 32}. In some embodiments, network device 110 may transmit scheduling (e.g., 210) for the first number of PDSCH / PUSCH / PUCCH transmissions / receptions / repetitions / occasions within a single DCI / PDCCH or within PDCCHs within linked PDCCH candidates to terminal device 130. In some embodiments, two TCI states (e.g., a first TCI state and a second TCI state) or two pieces of spatial relationship information (e.g., a first spatial relationship information and a second spatial relationship information) may be indicated / configured within a single DCI / PDCCH or within PDCCHs within linked PDCCH candidates.
[0103] In some embodiments, when M≧2, there may be two PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion sets (e.g., Set 1 and Set 2) for multiple PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion, where Set 1 has a second number of PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion (the second number is G1, where G1 is a positive integer, e.g., G1=G / 2 or G1=ceil(G / 2) or G1=floor(G / 2)), and Set 2 has a third number of PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion (the third number is G2, where G2=G−G1). In some embodiments, set 1 of PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion is transmitted / received in a first TCI state or with first spatial relationship information, and set 2 of PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion is transmitted / received in a second TCI state or with second spatial relationship information.
[0104] In some embodiments, network device 110 may configure (e.g., 210) a mapping type for terminal device 130. For example, the mapping type may indicate an association between a TCI state and a PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion. In some embodiments, network device 110 may configure (e.g., 210) a cyclic mapping type for terminal device 130, and the network device may configure a first number of PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion to be greater than two. Also, the first and second TCI states apply to the first and second PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion, respectively, and the same TCI mapping pattern continues to apply to the remaining PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion. In some embodiments, network device 110 may configure (e.g., 210) terminal device 130 with a sequential mapping type, and the network device may configure a first number of PDSCH / PUSCH / PUCCH transmissions / receptions / repetitions / occasions to be greater than two. Also, a first TCI state applies to the first and second PDSCH / PUSCH / PUCCH transmissions / receptions / repetitions / occasions, a second TCI state applies to the third and / or fourth PDSCH / PUSCH / PUCCH transmissions / receptions / repetitions / occasions, and the same TCI mapping pattern continues to apply to the remaining PDSCH / PUSCH / PUCCH transmissions / receptions / repetitions / occasions. In some embodiments, network device 110 may configure (e.g., 210) the first number of PDSCH / PUSCH / PUCCH transmissions / receptions / repetitions / occasions to be two. Furthermore, the first TCI state applies to a first PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion, and the second TCI state applies to a second PDSCH / PUSCH / PUCCH transmission / reception / repetition / occasion.
[0105] For a UE configured with higher layer repetitionScheme set to "fdmSchemeA" or "fdmSchemeB", when two TCI states are indicated in the codepoint of the DCI field "Transmission Configuration Indication" and DM-RS ports in one CDM group are indicated in the DCI field "Antenna Port(s)", the UE receives a single PT-RS port associated with the DM-RS antenna port with the lowest index among the DM-RS antenna ports allocated for the PDSCH, the PT-RS frequency density is determined by the number of PRBs associated with each TCI state, and a PT-RS resource element mapping is associated with the allocated PRB for each TCI state.
[0106] In addition to normal data communication, the network device 110 may transmit an RS to the terminal device 130 in the downlink. Similarly, the terminal device 130 may transmit an RS to the network device 110 in the uplink. Generally, an RS is a signal sequence (also referred to as an "RS sequence") known to both the network device 110 and the terminal device 130. For example, the RS sequence may be generated and transmitted by the network device 110 based on a certain rule, and the terminal device 130 may estimate the RS sequence based on the same rule. In another example, the RS sequence may be generated and transmitted by the network device 130 based on a certain rule, and the network device 110 may estimate the RS sequence based on the same rule. Examples of an RS may include, but are not limited to, a downlink or uplink demodulation reference signal (DMRS), a CSI-RS, a sounding reference signal (SRS), a phase tracking reference signal (PTRS), a tracking reference signal (TRS), a fractional time-frequency tracking reference signal (TRS), a tracking CSI-RS, a positioning reference signal (PRS), etc.
[0107] In addition to normal data communication, network device 110 may transmit DCI to terminal device 130 via a PDCCH. The DCI may indicate a resource allocation for data transmission in the DL or UL. At the same time, a DMRS associated with the PDCCH may also be transmitted from network device 110 to terminal device 130. The DMRS may be used by terminal device 130 for channel demodulation. Terminal device 130 may then attempt to blindly decode the DCI within a search space associated with a control information set (CORESET). As used herein, "CORESET" and / or search space refer to a set of resource element groups within which the terminal device attempts to blindly decode the DCI. The search space, indicating a start time and periodicity for monitoring the PDCCH within the CORESET, may be indicated to terminal device 130. In response to successfully decoding the DCI, the terminal device 130 may accordingly perform UL and / or DL data transmission with the network device 110 (e.g., data transmission via PDSCH and / or PUSCH (Physical Uplink Shared Channel)).
[0108] Network device 110 may communicate data and control information to terminal device 130 via multiple beams (also referred to as "DL beams"). Terminal device 130 may also communicate data and control information to network device 110 via multiple beams (also referred to as "UL beams"). In the 3GPP specifications for New Radio (NR), beams are also defined and indicated by parameters of a transmission configuration indicator. For example, a transmission configuration indication (TCI) field may be present in the DCI. The value of the TCI field may be referred to as a "TCI codepoint." The TCI codepoint may indicate one or more TCI states. Each TCI state includes parameters for setting a quasi-co-location (QCL) relationship between one or two DL and / or UL reference signals and a DMRS port of a PDSCH, a DMRS port of a PDCCH, a DMRS port of a PUSCH, a DMRS port of a PUCCH, an SRS port of an SRS resource, or a CSI-RS port of a CSI-RS resource.
[0109] 2 is a signaling diagram for signaling communications according to some embodiments of the present disclosure. For illustrative purposes, process 200 will be described with reference to FIG. 1. Process 200 may involve network device 110 and terminal device 130, as shown in FIG.
[0110] In some embodiments, for example, as shown in FIG. 2, network device 110 configures / transmits one or more configurations 210 to terminal device 130. In some embodiments, for example, as shown in FIG. 2, terminal device 130 receives one or more configurations 210 from network device 110. In some embodiments, the one or more configurations 210 may include at least one of a TCI state configuration, a CORESET configuration, a search space configuration, a PDCCH configuration, a PDSCH configuration, a PUSCH configuration, a PUCCH configuration, a control information configuration for data transmission / reception, a reference signal (RS) transmission / reception configuration, and a repetition / transmission / reception scheme configuration. In some embodiments, network device 110 may transmit one, two, or more PDCCHs (e.g., 220 shown in FIG. 2) to terminal device 130. In some embodiments, terminal device 130 may receive one, two, or more PDCCHs (e.g., 220 shown in FIG. 1) from network device 110. In some embodiments, the DCI payload / information is the same in the one, two, or more PDCCHs. In some embodiments, the one, two, or more PDCCHs are applied to the same schedule. For example, the same schedule is applied to uplink data transmission / reception, downlink data transmission / reception, uplink RS transmission / reception, downlink RS transmission / reception, and PUCCH transmission / reception. In some embodiments, network device 110 may transmit scheduled PDSCH and / or RS transmission / repetitions (e.g., 230 shown in FIG. 2 ) to terminal device 130. In some embodiments, terminal device 130 may receive scheduled PDSCH and / or RS reception / repetitions (e.g., 230 shown in FIG. 2 ) from network device 110. For example, the PDSCH and / or RS transmission / reception / repetitions are based on the scheduling in 220. In some embodiments, terminal device 130 may transmit scheduled PUSCH and / or PUCCH and / or RS transmission / repetitions (e.g., 240 shown in FIG. 2 ) to network device 110.In some embodiments, network device 110 may receive scheduled PUSCH and / or PUCCH and / or RS reception / repetition (e.g., 230 shown in FIG. 2 ) from network device 130. For example, the PUSCH and / or PUCCH and / or RS transmission / reception / repetition is based on the scheduling at 220. In some embodiments, only a subset of the signaling may be present in process 200. For example, only 210, 220, and 230 may be present in process 200. For another example, only 210, 220, and 240 may be present in process 200.
[0111] 3A-3D illustrate examples of PDCCHs according to some embodiments of the present disclosure. The one or two PDCCHs are applied to the same scheduling of communications between the network device 110 and the terminal device 130. For example, the communications may be at least one of a PDSCH, a PUSCH, a PUCCH, a downlink RS, and an uplink RS.
[0112] In the example of Figure 3A, TCI state 1-1 is configured in terminal device 130 to monitor PDCCHs within the CORESET / search space. As shown in Figure 3A, terminal device 130 may receive PDCCH 311 with TCI state 1-1 for scheduling communications. In some embodiments, there may be one, two, or more TCI states or spatial relationship information indicated in PDCCH 311 for scheduling communications.
[0113] In the example of FIG. 3B , TCI state 2-1 may be configured on terminal device 130 to monitor a first PDCCH within a first CORESET / search space, and TCI state 2-2 may be configured on terminal device 130 to monitor a second PDCCH within a second CORESET / search space. For example, the scheduling of a communication in the first PDCCH and the scheduling of a communication in the second PDCCH may be independent or separate. As shown in FIG. 3B , terminal device 130 may receive PDCCH 321 with TCI state 2-1 for the first scheduling of a communication. In some embodiments, there may be one, two, or more TCI states or spatial relationship information indicated in PDCCH 321 for the first scheduling of a communication. As also shown in FIG. 3B , terminal device 130 may receive PDCCH 322 with TCI state 2-2 for the second scheduling of a communication. In some embodiments, there may be one or two or more TCI states or spatial relationship information indicated in PDCCH 322 for the second scheduling of the communication. In some embodiments, PDCCH 321 and PDCCH 322 may be non-overlapping, partially overlapping, or fully overlapping in the time and / or frequency domain. In some embodiments, the first communication and the second communication may be non-overlapping, partially overlapping, or fully overlapping in the time and / or frequency domain.
[0114] In the example of FIG. 3C , TCI state 3-1 may be configured on terminal device 130 to monitor a first PDCCH within a first CORESET / search space, and TCI state 3-2 may be configured on terminal device 130 to monitor a second PDCCH within a second CORESET / search space, where, according to some embodiments of the present disclosure, the first and second CORESET / search spaces are configured to be linked. For example, the first and second PDCCHs are applied to schedule the same communication between network device 110 and terminal device 130. For another example, the payload or information in the first and second PDCCHs is the same. As shown in FIG. 3C , terminal device 130 may receive PDCCH 331 with TCI state 3-1 for scheduling a communication, and terminal device 130 may receive PDCCH 332 with TCI state 3-2 for the same scheduling of a communication. In some embodiments, there may be one or two or more TCI state or spatial relationship information indicated in PDCCH 331 and PDCCH 332 for communication scheduling.
[0115] In the example of Figure 3D, TCI state 4-1 and TCI state 4-2 may be configured in terminal device 130 to monitor the PDCCH within the CORESET / search space. As shown in Figure 3D, terminal device 130 may receive PDCCH 341 having TCI state 4-1 and TCI state 4-2 for scheduling communications. In some embodiments, there may be one, two, or more TCI states or spatial relationship information indicated in PDCCH 341 for scheduling communications.
[0116] 4A-4F illustrate example communications according to some embodiments of the present disclosure. For example, the one or more communications may be at least one of a PDSCH, a PUSCH, a PUCCH, a downlink RS, and an uplink RS. The one or more communications may be scheduled by one or more PDCCHs as shown in FIGS. 3A-3D.
[0117] In the example of FIG. 4A , two TCI states or two pieces of spatial relationship information (e.g., represented as TC1 and TC2) may be configured / indicated to terminal device 130 for communication 411. As shown in FIG. 4A , terminal device 130 may receive or transmit communication 411 having TC1 and TC2. For example, terminal device 130 may receive PDSCH 411 and / or downlink RS 411 having TC1 and TC2. For another example, terminal device 130 may transmit PUSCH 411 and / or PUCCH 411 and / or uplink RS 411 having TC1 and TC2. In some embodiments, communication 411 may be scheduled by PDCCH 311. For example, TCI state 1-1 and TC1 (or TC2) may be the same or different. In some embodiments, communication 411 may be scheduled by PDCCH 331 and PDCCH 332. For example, TCI state 3-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 3-2 and TC1 (or TC2) may be the same or different. In some embodiments, scheduling of communication 411 may be scheduled by PDCCH 341. For example, TCI state 4-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 4-2 and TC1 (or TC2) may be the same or different.
[0118] In the example of FIG. 4B , one TCI state or one spatial relationship information (e.g., represented as TC1) may be configured / indicated to terminal device 130 for communication 421, and one TCI state or one spatial relationship information (e.g., represented as TC2) may be configured / indicated to terminal device 130 for communication 422. As shown in FIG. 4B , terminal device 130 may receive or transmit communication 421 having TC1. For example, terminal device 130 may receive PDSCH 421 and / or downlink RS 421 having TC1. For another example, terminal device 130 may transmit PUSCH 421 and / or PUCCH 421 and / or uplink RS 421 having TC2. As also shown in FIG. 4B , terminal device 130 may receive or transmit communication 422 having TC2. For example, terminal device 130 may receive PDSCH 422 and / or downlink RS 422 having TC2. For another example, terminal device 130 may transmit PUSCH 422 and / or PUCCH 422 and / or uplink RS 422 with TC2. In some embodiments, communication 421 and communication 422 may be non-overlapping, partially overlapping, or completely overlapping in the time domain and / or frequency domain. In some embodiments, communication 421 may be scheduled by PDCCH 311. For example, TCI state 1-1 and TC1 may be the same or different. In some embodiments, communication 421 may be scheduled by PDCCH 331 and PDCCH 332. For example, TCI state 3-1 and TC1 may be the same or different. For another example, TCI state 3-2 and TC1 may be the same or different. In some embodiments, communication 421 may be scheduled by PDCCH 341. For example, TCI state 4-1 and TC1 may be the same or different. For another example, TCI state 4-2 and TC1 may be the same or different.In some embodiments, communication 422 may be scheduled by PDCCH 311. For example, TCI state 1-1 and TC2 may be the same or different. In some embodiments, communication 422 may be scheduled by PDCCH 331 and PDCCH 332. For example, TCI state 3-1 and TC2 may be the same or different. For another example, TCI state 3-2 and TC2 may be the same or different. In some embodiments, communication 422 may be scheduled by PDCCH 341. For example, TCI state 4-1 and TC2 may be the same or different. For another example, TCI state 4-2 and TC2 may be the same or different.
[0119] In the example of FIG. 4C , two TCI states or two pieces of spatial relationship information (e.g., represented as TC1 and TC2) may be configured / indicated to terminal device 130 for communication 431 and communication 432, respectively. As shown in FIG. 4C , terminal device 130 may receive or transmit communication 431 having TC1 and receive or transmit communication 432 having TC2. For example, terminal device 130 may receive PDSCH 431 (and / or downlink RS 431) having TC1 and PDSCH 432 (and / or downlink RS 432) having TC2. For another example, terminal device 130 may transmit PUSCH 431 (and / or PUCCH 431 and / or uplink RS 431) having TC1 and transmit PUSCH 432 (and / or PUCCH 432 and / or uplink RS 432) having TC2. In some embodiments, the scheduling of communication 431 and communication 432 may be scheduled by PDCCH 311. For example, TCI state 1-1 and TC1 (or TC2) may be the same or different. In some embodiments, the scheduling of communication 431 and communication 432 may be scheduled by PDCCH 331 and PDCCH 332. For example, TCI state 3-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 3-2 and TC1 (or TC2) may be the same or different. In some embodiments, the scheduling of communication 431 and communication 432 may be scheduled by PDCCH 341. For example, TCI state 4-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 4-2 and TC1 (or TC2) may be the same or different. In some embodiments, communication 431 and communication 432 may be scheduled within PDCCH 311 or (PDCCH 331 and PDCCH 332) or PDCCH 341 with the same frequency domain resource allocation information and / or the same time domain resource allocation information.In some embodiments, the time domain resource allocation (e.g., slot index, starting symbol index, symbol length, ending symbol index) is the same for communication 431 and communication 432. In some embodiments, the frequency domain resource allocation for communication 431 and communication 432 may be different or non-overlapping. In some embodiments, communication 431 and communication 432 may be part of the RV of the same codeword or the same transport block. In some embodiments, communication 431 and communication 432 may be different RVs of the same codeword or the same transport block. In some embodiments, communication 431 and communication 432 may be the same RV of the same codeword or the same transport block. In other words, the information in communication 431 and communication 432 is the same.
[0120] 4D , two TCI states or two pieces of spatial relationship information (e.g., represented as TC1 and TC2) may be configured / indicated to terminal device 130 for communication 441 and communication 442, respectively. As shown in FIG. 4D , terminal device 130 may receive or transmit communication 441 having TC1 and receive or transmit communication 442 having TC2. For example, terminal device 130 may receive PDSCH 441 (and / or downlink RS 441) having TC1 and PDSCH 442 (and / or downlink RS 442) having TC2. For another example, terminal device 130 may transmit PUSCH 441 (and / or PUCCH 441 and / or uplink RS 441) having TC1 and transmit PUSCH 442 (and / or PUCCH 442 and / or uplink RS 442) having TC2. In some embodiments, communication 441 and communication 442 may be PDSCH, PUSCH, or PUCCH repetitions. In some embodiments, communication 441 and communication 442 may be different RVs of the same codeword or transport block. In some embodiments, communication 441 and communication 442 may be the same RV of the same codeword or transport block. In other words, the information in communication 441 and communication 442 is the same. In some embodiments, communication 441 and communication 442 may be in the same slot. In some embodiments, communication 441 and communication 442 may be in different slots. For example, communication 441 and communication 442 may be in two adjacent / consecutive slots, such as slot n and slot n+1. In some embodiments, communication 441 and communication 442 may be scheduled by PDCCH 311. For example, TCI state 1-1 and TC1 (or TC2) may be the same or different. In some embodiments, the scheduling of communication 441 and communication 442 may be scheduled by PDCCH 331 and PDCCH 332. For example, TCI state 3-1 and TC1 (or TC2) may be the same or different.For another example, TCI state 3-2 and TC1 (or TC2) may be the same or different. In some embodiments, scheduling of communication 441 and communication 442 may be scheduled by PDCCH 341. For example, TCI state 4-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 4-2 and TC1 (or TC2) may be the same or different.
[0121] 4E, two TCI states or two spatial relationship information (e.g., represented as TC1 and TC2) may be configured / indicated to terminal device 130 for communications 451, 452, 453, and 454, respectively. As shown in FIG. 4E, terminal device 130 may receive or transmit communications 451 and 452 having TC1 and receive or transmit communications 453 and 454 having TC2. For example, terminal device 130 may receive PDSCH 451 and PDSCH 452 (and / or downlink RS 451 and downlink RS 452) having TC1 and receive PDSCH 453 and PDSCH 454 (and / or downlink RS 453 and downlink RS 454) having TC2. For another example, terminal device 130 may transmit PUSCH 451 and PUSCH 452 (and / or PUCCH 451 and PUCCH 452 and / or uplink RS 451 and uplink RS 452) with TC1 and transmit PUSCH 453 and PUSCH 454 (and / or PUCCH 453 and PUCCH 454 and / or uplink RS 453 and uplink RS 454) with TC2. In some embodiments, communications 451, 452, 453, and 454 may be PDSCHs or PUSCHs or PUCCH repetitions. In some embodiments, communications 451, 452, 453, and 454 may be different RVs of the same codeword or transport block. In some embodiments, communications 451, 452, 453, and 454 may be the same RV of the same codeword or transport block. In other words, the information in communications 451, 452, 453, and 454 is the same. In some embodiments, communications 451, 452, 453, and 454 may be in the same slot. In some embodiments, communications 451, 452, 453, and 454 may be in different slots. For example, communications 451, 452, 453, and 454 may be in four adjacent / consecutive slots, such as in slot n, slot n+1, slot n+2, and slot n+3.In some embodiments, communications 451, 452, 453, and 454 may be scheduled by PDCCH 311. For example, TCI state 1-1 and TC1 (or TC2) may be the same or different. In some embodiments, communications 451, 452, 453, and 454 may be scheduled by PDCCH 331 and PDCCH 332. For example, TCI state 3-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 3-2 and TC1 (or TC2) may be the same or different. In some embodiments, communications 451, 452, 453, and 454 may be scheduled by PDCCH 341. For example, TCI state 4-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 4-2 and TC1 (or TC2) may be the same or different.
[0122] In the example of FIG. 4F , two TCI states or two spatial relationship information (e.g., represented as TC1 and TC2) may be configured / indicated to terminal device 130 for communications 461, 462, 463, and 464, respectively. As shown in FIG. 4F , terminal device 130 may receive or transmit communications 461 and 463 having TC1 and receive or transmit communications 462 and 464 having TC2. For example, terminal device 130 may receive PDSCH 461 and PDSCH 463 (and / or downlink RS 461 and downlink RS 463) having TC1 and receive PDSCH 462 and PDSCH 464 (and / or downlink RS 462 and downlink RS 464) having TC2. For another example, terminal device 130 may transmit PUSCH 461 and PUSCH 463 (and / or PUCCH 461 and PUCCH 463 and / or uplink RS 461 and uplink RS 463) with TC1 and transmit PUSCH 462 and PUSCH 464 (and / or PUCCH 462 and PUCCH 464 and / or uplink RS 462 and uplink RS 464) with TC2. In some embodiments, communications 461, 462, 463, and 464 may be PDSCHs or PUSCHs or PUCCH repetitions. In some embodiments, communications 461, 462, 463, and 464 may be different RVs of the same codeword or transport block. In some embodiments, communications 461, 462, 463, and 464 may be the same RV of the same codeword or transport block. In other words, the information in communications 461, 462, 463, and 464 is the same. In some embodiments, communications 461, 462, 463, and 464 may be in the same slot. In some embodiments, communications 461, 462, 463, and 464 may be in different slots. For example, communications 461, 462, 463, and 464 may be in four adjacent / consecutive slots, such as in slot n, slot n+1, slot n+2, and slot n+3.In some embodiments, communications 461, 462, 463, and 464 may be scheduled by PDCCH 311. For example, TCI state 1-1 and TC1 (or TC2) may be the same or different. In some embodiments, communications 461, 462, 463, and 464 may be scheduled by PDCCH 331 and PDCCH 332. For example, TCI state 3-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 3-2 and TC1 (or TC2) may be the same or different. In some embodiments, communications 461, 462, 463, and 464 may be scheduled by PDCCH 341. For example, TCI state 4-1 and TC1 (or TC2) may be the same or different. For another example, TCI state 4-2 and TC1 (or TC2) may be the same or different.
[0123] In some embodiments, the terminal device 130 may receive an indication of a downlink TCI state (or set of beams or QCL parameters) in which a source reference signal provides QCL information for reception on at least a PDSCH and all CORESETs in a component carrier (CC). For example, the PDSCH may be dedicated or UE-specific.
[0124] In some embodiments, the terminal device 130 may receive an indication of an uplink TCI state (or beam or spatial relationship), where a source reference signal in the TCI state provides a reference for determining an uplink transmit spatial filter for the PUSCH and all PUCCH resources in the CC based on at least dynamic grants or configured grants, e.g., the PUCCH is dedicated or UE-specific.
[0125] In some embodiments, the terminal device 130 may receive an indication indicating a combined TCI state (or set of beams or QCL parameters), where the TCI state refers to a common source reference signal used to determine at least both the downlink QCL information and the uplink transmit spatial filter.
[0126] In some embodiments, the terminal device 130 may receive an indication indicating a downlink TCI state (or beam or set of QCL parameters) and an uplink TCI state (or beam or spatial relationship), where a source reference signal in the DL TCI state provides QCL information for reception on at least a PDSCH and all CORESETs in a component carrier (CC), and the source reference signal in the TCI state provides a reference for determining an uplink transmit spatial filter for at least a PUSCH based on a dynamic grant or a configured grant and all PUCCH resources in the CC. For example, the PUCCH may be dedicated or UE-specific. For another example, the PDSCH may be dedicated or UE-specific.
[0127] In some embodiments, terminal device 130 may be configured to have two or more (e.g., denoted as M, where M is a positive integer, e.g., M may be 2, 3, or 4) downlink TCI states, and / or terminal device 130 may receive an indication indicating one of the M TCI states, where a source reference signal within the one of the M TCI states or within the indicated one TCI state provides QCL information for reception on at least a subset of the PDSCH and / or CORESET within the CC. For example, the PDSCH may be dedicated or UE-specific.
[0128] In some embodiments, terminal device 130 may be configured to have two or more (e.g., represented as N, where N is a positive integer, e.g., N may be 2, 3, or 4) uplink TCI states, and / or terminal device 130 may receive an indication indicating one of the N TCI states, where a source reference signal in the one of the N TCI states or in the indicated one TCI state provides a reference for determining uplink transmit spatial filters for at least a dynamic grant or a subset of PUSCH resources in the CC based on a configured grant. For example, the PUCCH may be dedicated or UE-specific.
[0129] In some embodiments, the terminal device 130 may be configured to have two or more (e.g., represented as M, where M is a positive integer, e.g., M may be 2, 3, or 4) combined DL / UL TCI states and / or may receive an indication indicating one out of the M combined TCI states, where each TCI state or one indicated TCI state among the M TCI states references at least a common source reference signal used to determine both the downlink QCL information and the uplink transmit spatial filter.
[0130] In some embodiments, terminal device 130 may be configured to have two or more (e.g., denoted as M, where M is a positive integer, e.g., M may be 2, 3, or 4) downlink TCI states, and terminal device 130 may be configured to have two or more (e.g., denoted as N, where N is a positive integer, e.g., N may be 2, 3, or 4) uplink TCI states, and / or terminal device 130 may receive an indication indicating one out of M downlink TCI states and one out of N uplink TCI states, where each DL TCI state within the M DL TCI states or the indicated one DL TCI state provides QCL information for reception on at least a subset of the PDSCH and / or CORESET within a component carrier (CC), and The source reference signal in the TCI state provides a reference for determining an uplink transmit spatial filter for a subset of PUCCH resources in the CC and / or PUSCH based on at least dynamic grants or configured grants. For example, the PUCCH may be dedicated or UE-specific. For another example, the PDSCH may be dedicated or UE-specific.
[0131] In this disclosure, the terms "time threshold," "threshold," and "timing" may be used interchangeably. The terms "first threshold" and "threshold A" may be used interchangeably. The terms "second threshold" and "threshold B" may be used interchangeably. The terms "transmit," "receive," "send," "receive," "schedule," "schedule," "buffering," "buffer," "detect," "detect," "monitor," and "monitor" may be used interchangeably. The terms "predetermined," "determined," "configured," "indicated," "signaled," and "reported" may be used interchangeably. The terms "configure," "instruct," "information," "signaling," and "parameter" may be used interchangeably. The terms "set," "subset," and "group" may be used interchangeably.
[0132] In some embodiments, a first time threshold X and / or a second time threshold Y may exist for the terminal device 130. For example, the first time threshold X and / or the second time threshold Y may be predefined for the terminal device 130. For another example, the first time threshold X and / or the second time threshold Y may be defined based on the capabilities of the terminal device 130. For another example, the first time threshold X and / or the second time threshold Y may be configured for the terminal device via at least one of RRC, MAC CE, and DCI. In some embodiments, the first time threshold X may be the same as or different from the second time threshold Y. In some embodiments, the first time threshold X and / or the second time threshold Y may be the same as the threshold timeDurationForQCL specified in TS 38.214 or TS 38.306.
[0133] In some embodiments, the first time threshold X may be a duration for determining a TCI state for PDSCH or beam switching. In some embodiments, the first time threshold X may indicate a predetermined / set period. The predetermined / set period may be Xi ms / us / slot / symbol / subslot, where Xi is an integer. For example, 1≦Xi≦336. For example, the predetermined period Xi may be 7, 14, or 28 symbols, e.g., 7, 14, or 28 symbols when the subcarrier spacing is 60 KHz, or 14 or 28 symbols when the subcarrier spacing is 120 KHz. In another example, the predetermined period Xi may be L slots, where L is an integer and L may be any of {0, 1, 2, 3, 4, 5, 6, 7, 8}.
[0134] In some embodiments, the second time threshold Y may be a duration for the application timing of the indicated / updated TCI state. In some embodiments, the second time threshold Y may indicate a predetermined / set period. The predetermined / set period may be Yi ms / us / slots / symbols / subslots, where Yi is an integer. For example, 1≦Yi≦336. For example, the predetermined period Yi may be 7, 14, or 28 symbols, e.g., 7, 14, or 28 symbols when the subcarrier spacing is 60 KHz, or 14 or 28 symbols when the subcarrier spacing is 120 KHz. In another example, the predetermined period Yi may be M slots, where M is an integer and may be any of {0, 1, 2, 3, 4, 5, 6, 7, 8}.
[0135] In some embodiments, the first time threshold X may indicate a predetermined / configured period of time after the last symbol of the PDCCH (represented as "PDCCH P") that schedules the PDSCH. For example, the predetermined / configured period of time may be Xi ms / us / slots / symbols / subslots. For example, the predetermined period of time may be 7, 14, or 28 symbols, e.g., 7, 14, or 28 symbols when the subcarrier spacing is 60 KHz, or 14 or 28 symbols when the subcarrier spacing is 120 KHz. For example, the predetermined / configured period of time may depend on the UE capabilities reported by the terminal device 130.
[0136] In some embodiments, the terminal device may receive or detect a PDCCH indicating a combined DL / UL TCI state or a separate DL / UL TCI state or a DL TCI state or a UL TCI state. In some embodiments, the second time threshold Y may indicate a predetermined / configured period after the first or last symbol of the PDCCH or the first or last symbol of the indication acknowledgment. For example, the indicated combined DL / UL TCI state or separate DL / UL TCI state or DL TCI state or UL TCI state may apply to the PDSCH and / or CORESET and / or PUSCH and / or PUCCH and / or uplink RS and / or downlink RS after the second time threshold Y.
[0137] In some embodiments, terminal device 130 may be configured / indicated to have a first TCI state for reception of all or a subset of a PDSCH and / or CORESET. Terminal device 130 may also receive or detect a PDCCH having the first TCI state, where the PDCCH is associated with one CORESET. Terminal device 130 may be indicated with a second TCI state in the DCI received or detected on the PDCCH. After a certain timing, or a second time threshold Y, terminal device 130 may receive all or a subset of a PDSCH and / or CORESET with the second TCI state.
[0138] 5A-5D illustrate examples of TCI state configuration according to some embodiments of the present disclosure. As shown in FIG. 5A, terminal device 130 may be configured / indicated to have TCI state 1 for reception of all or a subset of PDSCH and / or CORESET. Terminal device 130 may also receive or detect PDCCH 511 having TCI state 1. PDCCH 511 or DCI detected within PDCCH 511 may also indicate TCI state 2. Then, after timing 512, terminal device 130 may receive all or a subset of PDSCH and / or CORESET having TCI state 2.
[0139] Current 3GPP specifications or discussions do not provide details regarding common beams for transmitting and receiving data and control information. For example, in the case of multi-TRP transmission, two or more beams (TCI states) may be applied to the PDCCH (PDCCH repetition or SFN PDCCH), and / or the PDSCH (PDSCH repetition), and / or the PUSCH (PUSCH repetition), and it is unclear how to determine the updated beam. For another example, in the case of PDCCH repetition, each PDCCH repetition is within one CORESET and is received by one beam, and if the PDCCH schedules one beam for the PDSCH or PUSCH, it is unclear which CORESET the indicated beam applies to. For another example, in the case of SFN PDCCH, the PDCCH is within one CORESET and is received by two beams, and if the PDCCH schedules one beam for the PDSCH or PUSCH, it is unclear whether and how the indicated beam applies to the CORESET. For another example, in the case of PDSCH / PUSCH repetition and / or multi-TRP PDSCH / PUSCH scheduling, two TCI states are indicated in the PDCCH, and it is unclear whether and how the two TCI states are applied to the CORESET.
[0140] In some embodiments, terminal device 130 may be configured with two CORESETs (e.g., a first CORESET and a second CORESET), with each CORESET associated with one active TCI state. For example, the first CORESET is associated with TCI state 1, and the second CORESET is associated with TCI state 2. For another example, as shown in FIG. 5B, PDCCH 521 may be within the search space set associated with the first CORESET, and PDCCH 522 may be within the search space set associated with the second CORESET. As shown in FIG. 5B, terminal device 130 may receive PDCCH 521 with TCI state 1 and PDCCH 522 with TCI state 2. For example, TCI state 1 may be associated with or from TRP1, and TCI state 2 may be associated with or from TRP2. In some embodiments, the payload in PDCCH 521 is the same as the payload in PDCCH 522. For example, PDCCH 521 and PDCCH 522 are two PDCCH repetitions. For another example, PDCCH 521 and PDCCH 522 are linked. In some embodiments, PDCCH 521 and PDCCH 522 indicate the same TCI state in the corresponding DCI, for example, TCI state 3. In some embodiments, PDCCH 521 and PDCCH 522 may schedule the same PDSCH transmission (e.g., 523 shown in FIG. 5B). In some embodiments, PDCCH 521 and PDCCH 522 may not schedule a PDSCH transmission. For example, 523 may not exist, as shown in FIG. 5B. After a certain timing (e.g., after a second threshold), it is unclear which TRP or which subset of CORESET the indicated TCI state 3 applies to. For example, it is unclear whether after a certain timing (eg, after a second threshold) the indicated TCI state 3 applies to the first CORESET or the second CORESET.
[0141] As shown in FIG. 5C , terminal device 130 may be configured / activated to have a CORESET with two active TCI states. For example, TCI state 1 and TCI state 2. In some embodiments, terminal device 130 may be configured to receive PDCCH 531 with TCI state 1 and TCI state 2. For example, TCI state 1 may be associated with or from TRP1, and TCI state 2 may be associated with or from TRP2. For example, PDCCH 531 may be transmitted / received in a single frequency network (SFN) manner. In some embodiments, PDCCH 531 may indicate a TCI state within a corresponding DCI, for example, TCI state 3. In some embodiments, PDCCH 531 may schedule PDSCH transmissions (e.g., 532 shown in FIG. 5C ). In some embodiments, PDCCH 531 may not schedule PDSCH transmissions. For example, as shown in FIG. 5C , 532 may not be present. After a certain timing (e.g., after the second threshold), it is unclear which TRP or which subset of CORESET the indicated TCI state 3 applies to. After a certain timing (e.g., after the second threshold), it is unclear whether the indicated TCI state 3 applies to CORESET and / or PDCCH. For example, after a certain timing (e.g., after the second threshold), it is unclear whether the indicated TCI state 3 applies to CORESET. For another example, it is unclear whether the indicated TCI state 3 applies to replace TCI state 1 or TCI state 2 of CORESET after a certain timing (e.g., after the second threshold).
[0142] As shown in FIG. 5D , terminal device 130 may be configured / activated to have a CORESET with one TCI state. For example, TCI state 1. In some embodiments, terminal device 130 may be configured to receive PDCCH 531 with TCI state 1. In some embodiments, PDCCH 541 may indicate two TCI states within the corresponding DCI, for example, TCI state 2 and TCI state 3. For example, TCI state 1 may be associated with or originate from either TRP1 or TRP2. For another example, TCI state 2 may be associated with or originate from TRP1, and TCI state 2 may be associated with or originate from TRP2. In some embodiments, PDCCH 541 may schedule PDSCH transmissions (e.g., 542 shown in FIG. 5D ). In some embodiments, PDCCH 541 may not schedule PDSCH transmissions. For example, as shown in Figure 5D, 542 may not be present, as it is unclear whether the indicated TCI state 2 or TCI state 3 will apply to CORESET and / or PDCCH and / or PDSCH after a certain timing (e.g., after a second threshold).
[0143] In some embodiments, the terminal device 130 may be configured to have M TRPs, where M is a positive integer. For example, 1≦M≦4. For another example, M=2. In some embodiments, each TRP in the M TRPs may be represented by or associated with at least one of a control resource set (CORESET) pool index, a CORESET subset identifier (ID), a CORESET subset, an SRS resource set, an SRS resource set ID, a TCI state, a TCI state group, an ID of a reference signal (RS) set for beam failure detection, an ID of an RS set for new beam identification, spatial relationship information, a subset of spatial relationship information, a set of QCL parameters, a subset of RSs for beam failure detection, a subset of RSs for new beam identification, etc. In some embodiments, the first TRP may be represented by or associated with at least one of a first CORESET pool index (e.g., having a value of 0; for another example, a CORESET that does not have the parameter “CORESET pool index” set), a first CORESET subset ID, a first subset of the CORESET (e.g., a CORESET configured with the first CORESET pool index or the first CORESET subset ID; for another example, a CORESET that is not configured with the parameter “CORESET pool index” or the parameter “CORESET subset ID”), a first SRS resource set, a first SRS resource set ID, a first TCI state, a first subset of TCI states, IDs of a first set of reference signals (RSs) for beam failure detection, IDs of a second set of RSs for new beam identification, first spatial relationship information, a first subset of spatial relationship information, a first set of QCL parameters, a first subset of RSs for beam failure detection, a first subset of RSs for new beam identification, etc.In some embodiments, the second TRP may be represented by at least one of a second CORESET pool index (e.g., having a value of 1), a second CORESET subset ID, a second subset of the CORESET (e.g., a CORESET configured to have the second CORESET pool index or the second CORESET subset ID), a second SRS resource set, a second SRS resource set ID, a second TCI state, a second subset of the TCI state, IDs of a third set of reference signals (RSs) for beam failure detection, IDs of a fourth set of RSs for new beam identification, second spatial relationship information, a second subset of spatial relationship information, a second set of QCL parameters, a second subset of RSs for beam failure detection, and a second subset of RSs for new beam identification.
[0144] In this disclosure, the terms "TRP", "CORESET pool index", "CORESET subset ID", "CORESET subset", "SRS resource set", "SRS resource set ID", "TCI state", "TCI state subset", "ID of RS set for beam failure detection", "ID of RS set for new beam identification", "spatial relationship information", "subset of spatial relationship information", "set of QCL parameters", "subset of RSs for beam failure detection", and "subset of RSs for new beam identification" may be used interchangeably. The terms "first TRP," "TRP 1," "T1," "first CORESET pool index," "first CORESET subset ID," "first subset of CORESET," "first SRS resource set," "first SRS resource set ID," "first TCI state," "first subset of TCI state," "first ID of set of RSs for beam failure detection," "first ID of set of RSs for new beam identification," "first spatial relationship information," "first subset of spatial relationship information," "first set of QCL parameters," "first subset of RSs for beam failure detection," and "first subset of RSs for new beam identification" may be used interchangeably. The terms "second TRP," "TRP 2," "T2," "second CORESET pool index," "second CORESET subset ID," "second subset of CORESET," "second SRS resource set," "second SRS resource set ID," "second TCI state," "second subset of TCI state," "second ID of set of RSs for beam failure detection," "second ID of set of RSs for new beam identification," "second spatial relationship information," "second subset of spatial relationship information," "second set of QCL parameters," "second subset of RSs for beam failure detection," and "second subset of RSs for new beam identification" may be used interchangeably. The terms "PUSCH" and "PUSCH MAC CE" may be used interchangeably.
[0145] In some embodiments, a TCI state may be configured / indicated to be applied to / associated with a channel and / or an RS. For example, the channel may be at least one of a PDCCH, a PDSCH, a PUSCH, a PUCCH, and a CORESET. For another example, the RS may be at least one of a DMRS, an SRS, an UL DMRS, a DL DMRS, and a CSI-RS. In this case, the terminal device may assume that the DMRS port of the channel and / or RS is quasi-colocated with the RS in the TCI state with respect to the QCL type parameter given by the TCI state. In this disclosure, the terms “TCI state applied to / associated with a channel,” “the DMRS port of the channel is quasi-colocated with the TCI state,” “the DMRS port of the channel is associated with the TCI state,” “the channel is QCLed / associated with the TCI state,” “the DMRS of the channel is QCLed / associated with the TCI state,” and “the DMRS port of the channel is quasi-colocated with the RS in the TCI state with respect to the QCL type parameter given by the TCI state” may be used interchangeably. The terms "TCI state applied to / associated with an RS," "RS is quasi-collocated with a TCI state," "RS is quasi-collocated with an RS within the TCI state with respect to the QCL type parameters given by the TCI state," and "RS is quasi-collocated with an RS within the TCI state with respect to the QCL type parameters given by the TCI state" may be used interchangeably.
[0146] In some embodiments, the terminal device 130 may be configured to have Q CORESETs, where Q is a positive integer. For example, 1≦Q≦8. In some embodiments, the CORESET may be comprised of Q1 subsets, where Q is a positive integer. For example, 1≦Q≦4. For another example, Q=2. In some embodiments, the terminal device 130 may be configured to have R TCI states, where R is a positive integer. For example, 1≦R≦128. For another example, 1≦R≦8. For another example, R may be M and / or N, as disclosed in some embodiments. In some embodiments, the R TCI states may be comprised of two groups, for example, a first subset of TCI states and a second subset of TCI states. In some embodiments, the TCI states may apply to downlink channels / RSs. For example, the channels / RSs include at least one of a PDCCH, a PDSCH, a CSI-RS, and a DMRS. In some embodiments, the TCI state may be applied to an uplink channel / RS. For example, the channel / RS may include at least one of a PUCCH, a PUSCH, an SRS, and a DMRS. In some embodiments, the Q CORESETs may be configured for CCs or bandwidth parts (BWPs).
[0147] In some embodiments, the terminal device 130 may be configured / activated to have R TCI states, each TCI state being associated with one TRP or one subset of the CORESET. In some embodiments, a TRP index or a CORESET subset index may be configured to have one TCI state or associated with one TCI state. For example, a value of 0 indicates that the TCI state is associated with the first TRP. For another example, a value of 1 indicates that the TCI state is associated with the second TRP. For another example, if no index is configured for a TCI state, the TCI state is associated with the first TRP. In some embodiments, the first subset of TCI states may be configured or associated with the first subset of the CORESET or the first TRP. In some embodiments, the second subset of TCI states may be configured or associated with the second subset of the CORESET or the second TRP. In some embodiments, the first subset of TCI states and the second subset of TCI states are included in the R TCI states. In some embodiments, the R TCI states may be set for a CC or a bandwidth part (BWP).
[0148] 6A and 6B illustrate examples of associations between TCI states and CORESETs according to some embodiments of the present disclosure. As shown in FIG. 6A, a terminal device 130 may be configured with a TCI state 611 associated with a TRP or subset 612.
[0149] In some embodiments, terminal device 130 may be configured with TCI states A1, A2, and A3 associated with T1 and TCI states B1, B2, and B3 associated with T2. As shown in FIG. 6B, TCI state A1 621 may be mapped to a first code point, TCI state (A2, B1) 623 may be mapped to a second code point, TCI state B2 625 may be mapped to a third code point, and TCI state (A3, B3) 627 may be mapped to a fourth code point. When terminal device 130 is indicated by one of the code points, terminal device 130 obtains information about the TCI state and obtains information about the associated TRP or associated subset.
[0150] In some embodiments, there may be F TCI status fields in the PDCCH or two linked PDCCH candidates for indicating / updating the TCI status for the terminal device, where F is a positive integer. For example, 1≦F≦8. For another example, F may be any one of {1, 2, 3, 4}. In some embodiments, a first TCI status field may be used to indicate the TCI status for a first subset of CORESET and / or a PDSCH and / or a first subset of CSI-RS and / or a first subset of PUSCH and / or a first subset of PUCCH and / or a first subset of SRS, and / or for the downlink, and / or for both the downlink and uplink. In some embodiments, the second TCI status field may be used to indicate the TCI status for a second subset of CORESET and / or a PDSCH and / or a second subset of CSI-RS and / or a second subset of PUSCH and / or a PUCCH and / or a second subset of SRS, and / or for the uplink. In some embodiments, the third TCI status field may be used to indicate the downlink (DL) TCI status. In some embodiments, the fourth TCI status field may be used to indicate the uplink (UL) TCI status. In some embodiments, the fifth TCI status field may be used to indicate the TCI status for a first subset of CORESET and / or a first subset of PDSCH and / or a CSI-RS. In some embodiments, the sixth TCI status field may be used to indicate the TCI status for a first subset of PUSCH and / or a PUCCH and / or a first subset of SRS, and / or for the downlink, and / or for both the downlink and uplink. In some embodiments, the seventh TCI status field may be used to indicate the TCI status for a second subset of CORESET and / or a second subset of PDSCH and / or CSI-RS.In some embodiments, the eighth TCI status field may be used to indicate the TCI status for a second subset of PUSCH and / or PUCCH and / or a second subset of SRS, and / or for the uplink.
[0151] In some embodiments, the configuration and / or association and / or indication may be sent to terminal device 130 via at least one of RRC, MAC CE, and DCI.
[0152] In some embodiments, the network device 110 may configure a set of TCI states / TCI state groups in the terminal device 130 via RRC signaling and / or MAC CE. For example, the set of TCI states / TCI state groups may include P1 TCI states / TCI state groups, where P1 is an integer. For example, 0≦P1≦128. For another example, 0≦P1≦8. In some embodiments, the set of TCI states / TCI state groups T1 may be the same as the TCI states (e.g., up to C TCI states, where C is a positive integer, for example, 1≦C≦64. For another example, C may be any one of {8, 16, 32, 64}) mapped to TCI code points within one component carrier (CC) / downstream bandwidth part (BWLP) or within a set of CC / downstream bandwidth parts (BWPs). In some embodiments, each TCI state or TCI state group may be mapped to a code point within the TCI state field. In some embodiments, TCI states in a TCI state group may be mapped to code points in the F TCI state fields. For example, one or two TCI states may be mapped to each code point in one of the F TCI state fields. In some embodiments, there may be D TCI states in one TCI state group, where D is a positive integer. For example, 1≦D≦4. In some embodiments, a set T1 of TCI states / TCI state groups may be used by terminal device 130 for channel / RS reception and / or channel / RS transmission. For example, channel / RS reception and / or channel / RS transmission may include at least one of PDSCH reception and / or PDCCH reception and / or PUSCH transmission and / or PUCCH transmission and / or CSI-RS reception and / or SRS transmission and / or DMRS transmission and / or DMRS reception. For example, a TCI state or group of TCI states (i.e., TCI state A) selected from the set T1 of TCI state / TCI state pairs may be indicated to terminal device 130 via DCI.TCI state A may also be used for QCL information for at least one of PDCCH, PDSCH, CSI-RS, PUSCH, PUCCH, and SRS.
[0153] In some embodiments, the network device 110 may transmit a PDCCH or two linked PDCCH candidates to the terminal device 130 (e.g., 220 shown in FIG. 2 ) to indicate a first TCI state or a first group of TCI states (i.e., TCI state A). For example, when receiving the PDCCH or two linked PDCCH candidates, the network device 110 may use a second TCI state or a second group of TCI states (hereinafter also referred to as "TCI state B"), and may update the second TCI state or the second group of TCI states to the first TCI state or the first group of TCI states (i.e., TCI state A) after a certain timing. For example, the timing may be based on a second threshold.
[0154] In this disclosure, the terms “TCI state,” “pair of TCI states,” “TCI state pair,” “TCI state group,” “spatial relationship,” “spatial relationship info,” “spatial relationship information,” “beam,” “spatial relationship,” “set of QCL parameters,” “QCL parameters,” “QCL assumption,” and “QCL configuration” may be used interchangeably. The terms “TCI state A,” “first TCI state,” “first pair of TCI states,” “first group of TCI states,” “first spatial relationship,” “first spatial relationship info,” “first spatial relationship information,” “first beam,” “first spatial relationship,” “first set of QCL parameters,” “first QCL parameters,” “first QCL assumption,” and “first QCL configuration” may be used interchangeably. The terms “TCI state B,” “second TCI state,” “second pair of TCI states,” “second group of TCI states,” “second spatial relationship,” “second spatial relationship info,” “second spatial relationship information,” “second beam,” “second spatial relationship,” “second set of QCL parameters,” “second QCL parameters,” “second QCL assumption,” and “second QCL configuration” may be used interchangeably.
[0155]
[0156] In some embodiments, the terminal device 130 may be indicated in a DCI with one or two TCI states, and the indicated TCI state is applied to a corresponding / associated subset of TRPs and / or CORESETs and / or RSs and / or PDSCHs and / or PUSCHs and / or PUCCHs after a certain timing. For example, the timing may be based on a second threshold. In some embodiments, the corresponding / associated subset of TRPs and / or CORESETs and / or RSs and / or PDSCHs and / or PUSCHs and / or PUCCHs are based on the associated index of the TRP / subset of the indicated TCI state. For example, the DCI may indicate one TCI state, and if the indicated TCI state is configured / associated with a first TRP / subset, the indicated TCI state is applied to the first TRP / CORESET subset after the timing. For another example, a DCI may indicate one TCI state, and if the indicated TCI state is configured / associated with a second TRP / subset, after the timing, the indicated TCI state applies to the second subset of TRPs / CORESET. For another example, a DCI may indicate one TCI state, and if the indicated TCI state is not configured / associated with a TRP / subset index, after the timing, the indicated TCI state applies to the first subset of TRPs / CORESET.
[0157] In some embodiments, terminal device 130 may be configured to have a first subset of CORESETs and a second subset of CORESETs, where the first subset of CORESETs is configured to have / indicates / activates a first TCI state, and the second subset of CORESETs is configured to have / indicates / activates a second TCI state. Terminal device 130 may detect a DCI in a PDCCH in a search space set associated with one CORESET in the first subset. In some embodiments, terminal device 130 may be indicated a third TCI state in the DCI, where the DCI schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with a second TRP / subset, the DMRS port of the PDSCH transmission is associated with the second TCI state. For example, if the time offset between reception of the DCI and the corresponding PDSCH is greater than or equal to a threshold. For example, the threshold may be a first threshold. In some embodiments, if a third TCI state is associated with a second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the DMRS port of the PDSCH transmission is associated with the first TCI state if the third TCI state is associated with the second TRP / subset. For example, the threshold may be a first threshold. In some embodiments, if the third TCI state is associated with the first TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the terminal device may assume that the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, the threshold may be a first threshold. For another example, the terminal device supports two default TCI states.
[0158] 7A-7H illustrate example TCI states applied for a PDSCH according to some embodiments of the present disclosure. As shown in FIG. 7A, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 711 (associated with T1) having T1_1, which may schedule a PDSCH, and PDCCH 711 may indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 712) is earlier than threshold A, the DMRS for PDSCH 712 is associated with TCI state T1_1. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 713) is not earlier than threshold A, the DMRS for PDSCH 713 is associated with TCI state T2_2.
[0159] As shown in FIG. 7B , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 721 (associated with T1) with T1_1, which may schedule a PDSCH, and PDCCH 721 may indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 722) is earlier than threshold A, the DMRS for PDSCH 722 is assumed to be associated with TCI state T1_1 and TCI state T2_2. For example, the terminal device supports two default TCI states. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 723) is not earlier than threshold A, the DMRS for PDSCH 723 is associated with TCI state T2_2.
[0160] In some embodiments, terminal device 130 may be configured to have a first subset of CORESETs and a second subset of CORESETs, where the first subset of CORESETs is configured to have / is indicated / is activated in a first TCI state, and the second subset of CORESETs is configured to have / is indicated / is activated in a second TCI state. Terminal device 130 may detect DCI in a PDCCH in a search space set associated with one CORESET in the first subset. In some embodiments, terminal device 130 may be indicated a third TCI state and a fourth TCI state in the DCI, where the DCI schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, in some embodiments of the present disclosure, a mapping / association between the PDSCH transmission and the first TCI state and / or the second TCI state is disclosed. For example, if the time offset between the reception of the DCI and the corresponding PDSCH is equal to or greater than a threshold. For example, the threshold may be a first threshold. In some embodiments, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the DMRS port of the PDSCH transmission is associated with the first TCI state if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, which may be, for example, a first threshold.In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the terminal device may assume that the DMRS port of the PDSCH transmission is associated with a first TCI state and a second TCI state. For example, the threshold may be the first threshold. For another example, the terminal device supports two default TCI states.
[0161] As shown in FIG. 7C , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 731 (associated with T1) with T1_1, which may schedule a PDSCH, and PDCCH 731 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 732) is earlier than threshold A, the DMRS for PDSCH 732 is associated with TCI state T1_1. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 733) is not earlier than threshold A, the DMRS for PDSCH 733 is associated with TCI states T1_1 and T2_2.
[0162] As shown in FIG. 7D , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 741 (associated with T1) with T1_1, which may schedule a PDSCH, and PDCCH 741 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 742) is earlier than threshold A, the DMRS of PDSCH 742 is assumed to be associated with TCI state T1_1 and TCI state T2_2. For example, the terminal device supports two default TCI states. In some embodiments, if the first symbol of the PDSCH is not earlier than threshold A (eg, PDSCH 743), the DMRS for PDSCH 743 is associated with TCI state T1_1 and TCI state T2_2.
[0163] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicate / activate a first TCI state, and the second subset of CORESET is configured to have / indicate / activate a second TCI state. The terminal device may be configured to have a first PDCCH in a first search space in a first CORESET in the first subset associated with / linked to a second PDCCH in a second search space in a second CORESET in the second subset. For example, the first PDCCH and the second PDCCH are two PDCCH repetitions. For another example, the payload in the first PDCCH is the same as the payload in the second PDCCH. For another example, the scheduling / indication in the first PDCCH is the same as the scheduling / indication in the second PDCCH. For another example, the first PDCCH and the second PDCCH are disclosed in some embodiments of the present disclosure. Terminal device 130 may receive the first PDCCH and the second PDCCH. In some embodiments, terminal device 130 may be indicated with a third TCI state in the DCI of the first PDCCH and the second PDCCH, where the DCI schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with a second TRP / subset, the DMRS port of the PDSCH transmission is associated with the second TCI state. For example, if the time offset between reception of the DCI and the corresponding PDSCH is equal to or greater than a threshold. For example, the threshold may be a first threshold. In some embodiments, if the third TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between the reception of the DCI and the corresponding PDSCH is less than a threshold, the DMRS port of the PDSCH transmission is associated with the first TCI state if the third TCI state is associated with the second TRP / subset.For example, the threshold may be a first threshold. In some embodiments, if a third TCI state is associated with the first TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the terminal device may assume that the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, the threshold may be a first threshold. For another example, the terminal device supports two default TCI states.
[0164] As shown in FIG. 7E, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 751 (associated with T1) having T1_1 and PDCCH 752 (associated with T2) having T2_2, where PDCCH 751 and PDCCH 752 may schedule a PDSCH, and PDCCH 751 and PDCCH 752 may indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 753) is earlier than threshold A, the DMRS for PDSCH 753 is associated with TCI state T1_1. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 754) is not earlier than threshold A, the DMRS for PDSCH 754 is associated with TCI state T2_2.
[0165] As shown in FIG. 7F, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 761 (associated with T1) with T1_1 and PDCCH 762 (associated with T2) with T2_2, where PDCCH 761 and PDCCH 762 may schedule a PDSCH, and PDCCH 761 and PDCCH 762 may indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 763) is earlier than threshold A, the DMRS of PDSCH 763 is assumed to be associated with TCI state T1_1 and TCI state T2_2. For example, the terminal device supports two default TCI states. In some embodiments, if the first symbol of the PDSCH is not earlier than threshold A (eg, PDSCH 764), the DMRS for PDSCH 764 is associated with TCI state T2_2.
[0166] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicate / activate a first TCI state, and the second subset of CORESET is configured to have / indicate / activate a second TCI state. The terminal device may be configured to have a first PDCCH in a first search space in a first CORESET in the first subset associated with / linked to a second PDCCH in a second search space in a second CORESET in the second subset. For example, the first PDCCH and the second PDCCH are two PDCCH repetitions. For another example, the payload in the first PDCCH is the same as the payload in the second PDCCH. For another example, the scheduling / indication in the first PDCCH is the same as the scheduling / indication in the second PDCCH. For another example, a first PDCCH and a second PDCCH are disclosed in some embodiments of the present disclosure. Terminal device 130 may receive the first PDCCH and the second PDCCH. In some embodiments, terminal device 130 may be indicated with a third TCI state and a fourth TCI state in the DCI of the first PDCCH and the second PDCCH, where the DCI schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, in some embodiments of the present disclosure, a mapping / association between a PDSCH transmission and the first TCI state and / or the second TCI state is disclosed. For example, when the time offset between the reception of the DCI and the corresponding PDSCH is equal to or greater than a threshold, which may be, for example, a first threshold.In some embodiments, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. For example, the threshold may be a first threshold. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the terminal device may assume that the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, the threshold may be a first threshold. For another example, the terminal device supports two default TCI states.
[0167] 7G, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 771 (associated with T1) with T1_1 and PDCCH 772 (associated with T2) with T2_2, where PDCCH 771 and PDCCH 772 may schedule a PDSCH, and PDCCH 771 and PDCCH 772 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 773) is earlier than threshold A, the DMRS of PDSCH 773 is associated with TCI state T1_1. In some embodiments, if the first symbol of the PDSCH is not earlier than threshold A (eg, PDSCH 774), the DMRS for PDSCH 774 is associated with TCI states T1_1 and T2_2.
[0168] As shown in FIG. 7H, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 781 (associated with T1) with T1_1 and PDCCH 782 (associated with T2) with T2_2, where PDCCH 781 and PDCCH 782 may schedule a PDSCH, and PDCCH 781 and PDCCH 782 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 783) is earlier than threshold A, the DMRS of PDSCH 783 is assumed to be associated with TCI state T1_1 and T2_2. For example, the terminal device supports two default TCI states. In some embodiments, if the first symbol of the PDSCH is not earlier than threshold A (eg, PDSCH 784), the DMRS for PDSCH 784 is associated with TCI state T1_1 and TCI state T2_2.
[0169] In some embodiments, terminal device 130 may be configured to have a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in the PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicated / activated with a fourth TCI state, and the second subset of CORESET is configured to have / indicated / activated with a fifth TCI state. For example, the first TCI state may be the same as or different from the fourth TCI state. For another example, the second TCI state may be the same as or different from the fifth TCI state. In some embodiments, the terminal device 130 may be indicated with a third TCI state in a DCI, where the DCI schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with a second TRP / subset, the DMRS port of the PDSCH transmission is associated with the second TCI state. For example, if the time offset between reception of the DCI and the corresponding PDSCH is equal to or greater than a threshold. For example, the threshold may be a first threshold. In some embodiments, if the third TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between the reception of the DCI and the corresponding PDSCH is less than a threshold, the DMRS port of the PDSCH transmission is associated with the first TCI state if a third TCI state is associated with the second TRP / subset, which may be, for example, the first threshold.In some embodiments, if a third TCI state is associated with the first TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the terminal device may assume that the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, the threshold may be the first threshold. For another example, the terminal device supports two default TCI states.
[0170] 8A-8D illustrate example TCI states applied for a PDSCH according to some embodiments of the present disclosure. As shown in FIG. 8A, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for a PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 811 (associated with T1 and T2) having T1_1 and T2_2, where PDCCH 811 may schedule a PDSCH and indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of a PDSCH (e.g., PDSCH 812) is earlier than threshold A, the DMRS of PDSCH 812 is associated with TCI state T1_1. In some embodiments, if the first symbol of a PDSCH is not earlier than threshold A (eg, PDSCH 813), the DMRS for PDSCH 813 is associated with TCI state T2_2.
[0171] As shown in FIG. 8B , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 821 (associated with T1 and T2) having T1_1 and T2_2, PDCCH 821 may schedule PDSCH, and PDCCH 821 may indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 822) is earlier than threshold A, it is assumed that the DMRS of PDSCH 822 is associated with TCI state T1_1 and T2_2. For example, terminal device 130 supports two default TCI states. In some embodiments, if the first symbol of a PDSCH is not earlier than threshold A (eg, PDSCH 823), the DMRS for PDSCH 823 is associated with TCI state T2_2.
[0172] In some embodiments, terminal device 130 may be configured with a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in a PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured with a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured with / indicated / activated to have a fifth TCI state, and the second subset of CORESET is configured with / indicated / activated to have a sixth TCI state. For example, the first TCI state may be the same as or different from the fifth TCI state. For another example, the second TCI state may be the same as or different from the sixth TCI state. In some embodiments, the terminal device 130 may be indicated with a third TCI state and a fourth TCI state in a DCI, which schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, some embodiments of the present disclosure disclose a mapping / association between a PDSCH transmission and the first TCI state and / or the second TCI state. For example, if the time offset between reception of the DCI and the corresponding PDSCH is equal to or greater than a threshold value. For example, the threshold value may be a first threshold value. In some embodiments, if a third TCI state is associated with a first TRP / subset and a fourth TCI state is associated with a second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state.In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the DMRS port of the PDSCH transmission is associated with the first TCI state if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset. For example, the threshold may be a first threshold. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the terminal device may assume that the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, the threshold may be a first threshold. For another example, the terminal device supports two default TCI states.
[0173] 8C , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 831 (associated with T1 and T2) having T1_1 and T2_2, and PDCCH 831 may schedule a PDSCH, and PDCCH 831 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 832) is earlier than threshold A, the DMRS of PDSCH 832 is associated with TCI state T1_1. In some embodiments, if the first symbol of a PDSCH is not earlier than threshold A (eg, PDSCH 833), the DMRS for PDSCH 833 is associated with TCI states T1_1 and T2_2.
[0174] As shown in FIG. 8D , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 841 (associated with T1 and T2) having T1_1 and T2_2, and PDCCH 841 may schedule a PDSCH, and PDCCH 841 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 842) is earlier than threshold A, the DMRS of PDSCH 842 is assumed to be associated with TCI state T1_1 and T2_2. For example, terminal device 130 supports two default TCI states. In some embodiments, if the first symbol of a PDSCH is not earlier than threshold A (eg, PDSCH 843), the DMRS for PDSCH 843 is associated with TCI state T1_1 and TCI state T2_2.
[0175] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicates / activates a first TCI state, and the second subset of CORESET is configured to have / indicates / activates a second TCI state. In some embodiments, a PDCCH in a CORESET from the first subset may indicate a third TCI state, which is associated with / applies to the second subset of CORESET after a certain timing. For example, the third TCI state may be associated with a second TRP / subset. For example, the timing may be based on a second threshold. For example, TCI state indication / update across subsets of CORESET is supported.
[0176] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicates / activates a first TCI state, and the second subset of CORESET is configured to have / indicates / activates a second TCI state. In some embodiments, a PDCCH in a CORESET from the first subset may indicate a third TCI state, where the third TCI state is associated with / does not apply to the second subset of CORESET after a certain timing. For example, the third TCI state may be associated with a second TRP / subset. For example, the timing may be based on a second threshold. For example, TCI state indication / update across subsets of CORESET is not supported. In other words, a TCI status indication / update for a subset of a CORESET can only be indicated / configured in the PDCCH in a CORESET from the subset.
[0177] In some embodiments, terminal device 130 may be configured with a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in a PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured with a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured with / indicated / activated to have a fifth TCI state, and the second subset of CORESET is configured with / indicated / activated to have a sixth TCI state. For example, the first TCI state may be the same as or different from the fifth TCI state. For another example, the second TCI state may be the same as or different from the sixth TCI state. In some embodiments, the PDCCH in the CORESET may indicate a third TCI state. For example, the third TCI state may be associated with a second TRP / subset. In some embodiments, the third TCI state is associated with / applied to a second subset of the CORESET after a certain timing. In some embodiments, the third TCI state is associated with / applied to the CORESET after a certain timing. For example, the third TCI state replaces the second TCI state for the CORESET. For another example, after the timing, the first TCI state and the third TCI state are associated with / applied to the CORESET. For example, the timing may be based on a second threshold. For example, a PDCCH in a CORESET with two active TCI states may indicate the TCI state that applies to the CORESET, or to a first subset of the CORESET and / or a second subset of the CORESET.
[0178] In some embodiments, terminal device 130 may be configured with a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in a PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured with a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured with / indicated / activated to have a fifth TCI state, and the second subset of CORESET is configured with / indicated / activated to have a sixth TCI state. For example, the first TCI state may be the same as or different from the fifth TCI state. For another example, the second TCI state may be the same as or different from the sixth TCI state. In some embodiments, the PDCCH in a CORESET may indicate a third TCI state. For example, the third TCI state may be associated with a second TRP / subset. In some embodiments, the third TCI state is associated with / not applied to the second subset of the CORESET after a certain timing. In some embodiments, the third TCI state is associated with / not applied to the CORESET after a certain timing. For example, the timing may be based on a second threshold. For example, a TCI state indicated in a PDCCH in a CORESET with two active TCI states does not apply to the CORESET, or does not apply to the first subset of the CORESET and / or the second subset of the CORESET.
[0179] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESETs and a second subset of CORESETs, where the first subset of CORESETs is configured to have / is indicated / is activated in a first TCI state, and the second subset of CORESETs is configured to have / is indicated / is activated in a second TCI state. The terminal device 130 may detect a DCI in a PDCCH in a search space set associated with one CORESET in the first subset. In some embodiments, the terminal device 130 may be indicated a third TCI state in the DCI. For example, the DCI may or may not schedule a PDSCH transmission. In some embodiments, if the third TCI state is associated with a second TRP / subset, the third TCI state is applied after a certain timing T2. For example, the timing may be based on a second threshold. In some embodiments, T1 is associated with a first TCI state.
[0180] 9A-9F illustrate examples of TCI states applied for a PDCCH according to some embodiments of the present disclosure. As shown in FIG. 9A, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 911 having T1_1 (associated with T1), which may indicate TCI state T2_1 associated with T2. For example, PDCCH 911 may or may not schedule a PDSCH. In some embodiments, TCI state T2_1 is applied to / associated with T2 after a certain timing. For example, the timing may be based on threshold B.
[0181] In some embodiments, terminal device 130 may be configured to have a first subset of CORESETs and a second subset of CORESETs, where the first subset of CORESETs is configured to have / is indicated / is activated in a first TCI state, and the second subset of CORESETs is configured to have / is indicated / is activated in a second TCI state. Terminal device 130 may detect a DCI in a PDCCH in a search space set associated with one CORESET in the first subset. In some embodiments, terminal device 130 may be indicated a third TCI state and a fourth TCI state in the DCI. For example, the DCI may or may not schedule a PDSCH transmission. In some embodiments, if a third TCI state is associated with a first TRP / subset and a fourth TCI state is associated with a second TRP / subset, the third TCI state is applied at T1 after a certain timing, and the fourth TCI state is applied at T2 after the timing, which may be based on a second threshold, for example.
[0182] As shown in FIG. 9B , terminal device 130 may be configured with a TCI state T1_1 for T1 and a TCI state T2_2 for T2. Terminal device 130 may also receive a PDCCH 921 (associated with T1) having T1_1, which may indicate a TCI state T1_2 associated with T1 and a TCI state T2_1 associated with T2. For example, PDCCH 921 may or may not schedule a PDSCH transmission. In some embodiments, TCI state T1_2 is applied to T1 after a certain timing, and TCI state T2_1 is applied to T2 after the timing. For example, the timing may be based on a second threshold.
[0183] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicate / activate a first TCI state, and the second subset of CORESET is configured to have / indicate / activate a second TCI state. The terminal device may be configured to have a first PDCCH in a first search space in a first CORESET in the first subset associated with / linked to a second PDCCH in a second search space in a second CORESET in the second subset. For example, the first PDCCH and the second PDCCH are two PDCCH repetitions. For another example, the payload in the first PDCCH is the same as the payload in the second PDCCH. For another example, the scheduling / instruction in the first PDCCH is the same as the scheduling / instruction in the second PDCCH. For another example, the first PDCCH and the second PDCCH are disclosed in some embodiments of the present disclosure. Terminal device 130 may receive the first PDCCH and the second PDCCH. In some embodiments, terminal device 130 may be indicated with a third TCI state in the DCI of the first PDCCH and the second PDCCH. For example, the DCI may schedule or not schedule a PDSCH transmission. In some embodiments, if the third TCI state is associated with a second TRP / subset, the third TCI state is applied after a certain timing, T2. For example, the timing may be based on a second threshold. In some embodiments, T1 is associated with the first TCI state. In some embodiments, the third TCI state is not associated with / applied to a second CORESET. In some embodiments, after a certain timing, there is no link or association between the first CORESET and the second CORESET, for example, the PDCCH in the first CORESET and the PDCCH in the second CORESET are not PDCCH repetitions.
[0184] As shown in FIG. 9C , terminal device 130 may be configured with a TCI state T1_1 for T1 and a TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 931 (associated with T1) with T1_1 and PDCCH 932 (associated with T2) with T2_2, where PDCCH 931 and PDCCH 932 may indicate TCI state T2_1 associated with T2. For example, PDCCH 931 and PDCCH 932 may or may not schedule a PDSCH. In some embodiments, TCI state T2_1 is applied to / associated with T2 after a certain timing. For example, the timing may be based on a second threshold.
[0185] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicate / activate a first TCI state, and the second subset of CORESET is configured to have / indicate / activate a second TCI state. The terminal device may be configured to have a first PDCCH in a first search space in a first CORESET in the first subset associated with / linked to a second PDCCH in a second search space in a second CORESET in the second subset. For example, the first PDCCH and the second PDCCH are two PDCCH repetitions. For another example, the payload in the first PDCCH is the same as the payload in the second PDCCH. For another example, the scheduling / instruction in the first PDCCH is the same as the scheduling / instruction in the second PDCCH. For another example, the first PDCCH and the second PDCCH are disclosed in some embodiments of the present disclosure. Terminal device 130 may receive the first PDCCH and the second PDCCH. In some embodiments, terminal device 130 may be indicated with a third TCI state and a fourth TCI state in the DCI of the first PDCCH and the second PDCCH. For example, the DCI may schedule or not schedule a PDSCH transmission. In some embodiments, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the third TCI state applies after a certain timing T1, and the fourth TCI state applies after the timing T2. For example, the timing may be based on a second threshold. In some embodiments, the third TCI state is associated with / does not apply to the first CORESET and the fourth TCI state is associated with / does not apply to the second CORESET. In some embodiments, after a certain time, there is no link or association between the first CORESET and the second CORESET.For example, the PDCCH in the first CORESET and the PDCCH in the second CORESET are not PDCCH repetitions.
[0186] As shown in FIG. 9D , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 941 (associated with T1) having T1_1 and PDCCH 942 (associated with T2) having T2_2, where PDCCH 771 and PDCCH 772 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. For example, PDCCH 771 and PDCCH 772 may or may not schedule a PDSCH. In some embodiments, TCI state T1_2 applies to T1 after a certain timing, and TCI state T2_1 applies to T2 after that timing. For example, the timing may be based on a second threshold.
[0187] As shown in FIG. 9E, terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 951 (associated with T1) with T1_1, and PDCCH 951 may indicate TCI state T2_1 associated with T2. For example, PDCCH 951 may or may not schedule a PDSCH. In some embodiments, TCI state T2_1 may not apply to / be associated with T2. In other words, TCI state T2_2 is still applied to / associated with T2.
[0188] As shown in FIG. 9F , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2. Terminal device 130 may also receive PDCCH 961 (associated with T1) with T1_1, which may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. For example, PDCCH 961 may or may not schedule PDSCH transmission. In some embodiments, TCI state T1_2 is applied to T1 after a certain timing, but TCI state T2_1 is not applied to T2 after that timing. For example, the timing may be based on a second threshold. For example, TCI state T2_2 is still not applied to T2.
[0189] In some embodiments, terminal device 130 may be configured to have a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in the PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicated / activated with a fourth TCI state, and the second subset of CORESET is configured to have / indicated / activated with a fifth TCI state. For example, the first TCI state may be the same as or different from the fourth TCI state. For another example, the second TCI state may be the same as or different from the fifth TCI state. In some embodiments, the terminal device 130 may be indicated with a third TCI state in a DCI, which schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with a second TRP / subset, the third TCI state is applied after a certain timing, T2. For example, the timing may be based on a second threshold. In some embodiments, T1 is associated with the first TCI state. In some embodiments, the third TCI state is not associated with / applied to a CORESET.
[0190] 8A , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 811 (associated with T1 and T2) having T1_1 and T2_2, PDCCH 811 may schedule PDSCH, and PDCCH 811 may indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 812) is earlier than threshold A, the DMRS for PDSCH 812 is associated with TCI state T1_1. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 813) is not earlier than threshold A, the DMRS for PDSCH 813 is associated with TCI state T2_2.
[0191] As shown in FIG. 8B , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 821 (associated with T1 and T2) having T1_1 and T2_2, PDCCH 821 may schedule PDSCH, and PDCCH 821 may indicate TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 822) is earlier than threshold A, it is assumed that the DMRS of PDSCH 822 is associated with TCI state T1_1 and T2_2. For example, terminal device 130 supports two default TCI states. In some embodiments, if the first symbol of a PDSCH is not earlier than threshold A (eg, PDSCH 823), the DMRS for PDSCH 823 is associated with TCI state T2_2.
[0192] In some embodiments, terminal device 130 may be configured with a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in a PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured with a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured with / indicated / activated to have a fifth TCI state, and the second subset of CORESET is configured with / indicated / activated to have a sixth TCI state. For example, the first TCI state may be the same as or different from the fifth TCI state. For another example, the second TCI state may be the same as or different from the sixth TCI state. In some embodiments, the terminal device 130 may be indicated with a third TCI state and a fourth TCI state in a DCI, which schedules a PDSCH transmission. In some embodiments, if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, some embodiments of the present disclosure disclose a mapping / association between a PDSCH transmission and the first TCI state and / or the second TCI state. For example, if the time offset between reception of the DCI and the corresponding PDSCH is equal to or greater than a threshold value. For example, the threshold value may be a first threshold value. In some embodiments, if a third TCI state is associated with a first TRP / subset and a fourth TCI state is associated with a second TRP / subset, the DMRS port of the PDSCH transmission is associated with the first TCI state.In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the DMRS port of the PDSCH transmission is associated with the first TCI state if the third TCI state is associated with the first TRP / subset and the fourth TCI state is associated with the second TRP / subset. For example, the threshold may be a first threshold. In some embodiments, if the time offset between reception of the DCI and the corresponding PDSCH is less than a threshold, the terminal device may assume that the DMRS port of the PDSCH transmission is associated with the first TCI state and the second TCI state. For example, the threshold may be a first threshold. For another example, the terminal device supports two default TCI states.
[0193] 8C , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 831 (associated with T1 and T2) having T1_1 and T2_2, and PDCCH 831 may schedule a PDSCH, and PDCCH 831 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 832) is earlier than threshold A, the DMRS of PDSCH 832 is associated with TCI state T1_1. In some embodiments, if the first symbol of a PDSCH is not earlier than threshold A (eg, PDSCH 833), the DMRS for PDSCH 833 is associated with TCI states T1_1 and T2_2.
[0194] As shown in FIG. 8D , terminal device 130 may be configured with TCI state T1_1 for T1 and TCI state T2_2 for T2, or terminal device 130 may be configured with T1_1 and T2_2 for PDCCH / CORESET. For example, terminal device 130 may receive PDCCH 841 (associated with T1 and T2) having T1_1 and T2_2, and PDCCH 841 may schedule a PDSCH, and PDCCH 841 may indicate TCI state T1_2 associated with T1 and TCI state T2_1 associated with T2. In some embodiments, if the first symbol of the PDSCH (e.g., PDSCH 842) is earlier than threshold A, the DMRS of PDSCH 842 is assumed to be associated with TCI state T1_1 and T2_2. For example, terminal device 130 supports two default TCI states. In some embodiments, if the first symbol of a PDSCH is not earlier than threshold A (eg, PDSCH 843), the DMRS for PDSCH 843 is associated with TCI state T1_1 and TCI state T2_2.
[0195] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicates / activates a first TCI state, and the second subset of CORESET is configured to have / indicates / activates a second TCI state. In some embodiments, a PDCCH in a CORESET from the first subset may indicate a third TCI state, which is associated with / applies to the second subset of CORESET after a certain timing. For example, the third TCI state may be associated with a second TRP / subset. For example, the timing may be based on a second threshold. For example, TCI state indication / update across subsets of CORESET is supported.
[0196] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicates / activates a first TCI state, and the second subset of CORESET is configured to have / indicates / activates a second TCI state. In some embodiments, a PDCCH in a CORESET from the first subset may indicate a third TCI state, where the third TCI state is associated with / does not apply to the second subset of CORESET after a certain timing. For example, the third TCI state may be associated with a second TRP / subset. For example, the timing may be based on a second threshold. For example, TCI state indication / update across subsets of CORESET is not supported. In other words, a TCI status indication / update for a subset of a CORESET can only be indicated / configured in the PDCCH in a CORESET from the subset.
[0197] In some embodiments, terminal device 130 may be configured with a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in a PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured with a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured with / indicated / activated to have a fifth TCI state, and the second subset of CORESET is configured with / indicated / activated to have a sixth TCI state. For example, the first TCI state may be the same as or different from the fifth TCI state. For another example, the second TCI state may be the same as or different from the sixth TCI state. In some embodiments, the PDCCH in the CORESET may indicate a third TCI state. For example, the third TCI state may be associated with a second TRP / subset. In some embodiments, the third TCI state is associated with / applied to a second subset of the CORESET after a certain timing. In some embodiments, the third TCI state is associated with / applied to the CORESET after a certain timing. For example, the third TCI state replaces the second TCI state for the CORESET. For another example, after the timing, the first TCI state and the third TCI state are associated with / applied to the CORESET. For example, the timing may be based on a second threshold. For example, a PDCCH in a CORESET with two active TCI states may indicate the TCI state that applies to the CORESET, or to a first subset of the CORESET and / or a second subset of the CORESET.
[0198] In some embodiments, terminal device 130 may be configured with a CORESET, which may be configured / indicated / activated to have a first TCI state and a second TCI state. For example, the first TCI state is associated with a first TRP / subset, and the second TCI state is associated with a second TRP / subset. Terminal device 130 may detect DCI in a PDCCH within a search space set associated with CORESET. In some embodiments, terminal device 130 may be configured with a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured with / indicated / activated to have a fifth TCI state, and the second subset of CORESET is configured with / indicated / activated to have a sixth TCI state. For example, the first TCI state may be the same as or different from the fifth TCI state. For another example, the second TCI state may be the same as or different from the sixth TCI state. In some embodiments, the PDCCH in a CORESET may indicate a third TCI state. For example, the third TCI state may be associated with a second TRP / subset. In some embodiments, the third TCI state is associated with / does not apply to the second subset of the CORESET. In some embodiments, the third TCI state is associated with / does not apply to the CORESET. For example, a TCI state indicated in a PDCCH in a CORESET with two active TCI states does not apply to the CORESET or does not apply to the first subset of the CORESET and / or the second subset of the CORESET.
[0199] In some embodiments, the terminal device 130 may be configured to have a CORESET, and the CORESET may be configured / indicated / activated to have a first TCI state and a second TCI state. In some embodiments, a DCI detected in a PDCCH associated with the CORESET may indicate one or two TCI states, and the one or two TCI states do not apply to the CORESET and / or a first subset of the CORESET and / or a second subset of the CORESET and / or a first TRP and / or a second TRP, for example, after a timing based on a second threshold.
[0200] In some embodiments, the terminal device 130 may be configured to have a first subset of CORESET and a second subset of CORESET, where the first subset of CORESET is configured to have / indicate / activate a first TCI state, and the second subset of CORESET is configured to have / indicate / activate a second TCI state. In some embodiments, the terminal device may be configured to have a first PDCCH in a first search space in a first CORESET in the first subset associated with / linked to a second PDCCH in a second search space in a second CORESET in the second subset. For example, the first PDCCH and the second PDCCH are two PDCCH repetitions. For another example, the payload in the first PDCCH is the same as the payload in the second PDCCH. For another example, the scheduling / instruction in the first PDCCH is the same as the scheduling / instruction in the second PDCCH. For another example, the first PDCCH and the second PDCCH are disclosed in some embodiments of the present disclosure. For example, the terminal device 130 may receive the first PDCCH and the second PDCCH. In some embodiments, the terminal device 130 may be indicated with one or two TCI states in the DCI of the first PDCCH and the second PDCCH. Furthermore, the one or two TCI states do not apply to the CORESET and / or the first subset of the CORESET and / or the second subset of the CORESET and / or the first TRP and / or the second TRP having two activated TCI states, for example, after a timing based on a second threshold.
[0201] In some embodiments, two TCI states may be indicated to the terminal device 130 in the PDCCH or in two linked PDCCH candidates. The DCI also schedules PDSCH transmission. For example, two TCI states apply to the PDSCH. In some embodiments, the two TCI states do not apply to a CORESET and / or a first subset of the CORESET and / or a second subset of the CORESET and / or a first TRP and / or a second TRP having two activated TCI states, for example, after a timing based on a second threshold. In some embodiments, the two TCI states indicated for PDSCH transmission do not conform to a common beam / TCI state indication / update for one TRP / subset.
[0202] Figure 10 is a schematic block diagram of an apparatus 1000 suitable for implementing embodiments of the present disclosure. The apparatus 1000 may be considered as another exemplary implementation of the network apparatus 110 or the terminal apparatus 130 shown in Figures 1 and / or 2. Accordingly, the apparatus 1000 may be implemented in, or as at least a part of, the network apparatus 110 or the terminal apparatus 130 shown in Figures 1 and / or 2.
[0203] As shown, the apparatus 1000 includes a processor 1010, a memory 1020 coupled to the processor 1010, a suitable transmitter (TX) and receiver (RX) 1040 coupled to the processor 1010, and a communication interface coupled to the TX / RX 1040. The memory 1010 stores at least a portion of a program 1030. The TX / RX 1040 is used for bidirectional communication. The TX / RX 1040 has at least one antenna to facilitate communication, although the access nodes referred to herein may actually have multiple antennas. The communication interface may represent any interface required for communication with other network elements, such as an X2 interface for bidirectional communication between eNBs, an S1 interface for communication between a mobility management entity (MME) / serving gateway (S-GW) and an eNB, an Un interface for communication between an eNB and a relay node (RN), or a Uu interface for communication between an eNB and a terminal device.
[0204] The program 1030 is assumed to include program instructions that, when executed by an associated processor 1010, enable the device 1000 to operate in accordance with embodiments of the present disclosure, as described herein with reference to FIGS. 1-0. The embodiments herein may be implemented by computer software executable by the processor 1010 of the device 1000, by hardware, or by a combination of software and hardware. The processor 1010 may be configured to implement various embodiments of the present disclosure. Furthermore, the combination of the processor 1010 and the memory 1020 may form a processing means 1050 suitable for implementing various embodiments of the present disclosure.
[0205] The memory 1020 may be of any type suitable for a local technology network and may be implemented using any suitable data storage technology, including, by way of non-limiting example, non-transitory computer-readable storage media, semiconductor-based memory devices, magnetic memory devices and systems, optical memory devices and systems, fixed memory, and removable memory. While only one memory 1020 is shown in the device 1000, several physically distinct memory modules may be present within the device 1000. The processor 1010 may be of any type suitable for a local technology network and may include, by way of non-limiting example, one or more of a general-purpose computer, a special-purpose computer, a microprocessor, a digital signal processor (DSP), and a processor based on a multi-core processor architecture. The device 1000 may have multiple processors, for example, application-specific integrated circuit chips time-slaved to a clock that synchronizes the main processor.
[0206] Overall, various embodiments of the present disclosure may be implemented in hardware or special purpose circuits, software, logic, or any combination thereof. Some aspects may be implemented in hardware, while other aspects may be implemented in firmware or software executable by a controller, microprocessor, or other computing device. While various aspects of embodiments of the present disclosure are illustrated and described using block diagrams, flowcharts, or other pictorial representations, it should be understood that the blocks, devices, systems, techniques, or methods described herein can be implemented, by way of non-limiting example, in hardware, software, firmware, special purpose circuits or logic, general purpose hardware or controller or other computing device, or any combination thereof.
[0207] The present disclosure also provides at least one computer program product tangibly stored on a non-transitory computer-readable storage medium. The computer program product includes computer-executable instructions, such as instructions included in program modules, that execute within a device on a target real or virtual processor to perform the processes or methods described above with reference to FIG. 6 and / or FIG. 7. Generally, program modules include routines, programs, libraries, objects, classes, components, data structures, etc. that perform particular tasks or implement particular abstract data types. In various embodiments, the functionality of the program modules may be combined or split between program modules as desired. The machine-executable instructions of the program modules may be executed within local or distributed devices. In a distributed device, program modules may be located in both local and remote storage media.
[0208] Program code for carrying out the methods of the present disclosure may be written in any combination of one or more programming languages. These program codes may be provided to a processor or controller of a general-purpose computer, a special-purpose computer, or other programmable data processing device, and when executed by the processor or controller, cause the program code to implement the functions / acts specified in the flowcharts and / or block diagrams. The program code may run entirely on the machine, partially on the machine, as a separate software package, partially on the machine and partially on a remote machine, or entirely on a remote machine or server.
[0209] The above-described program code may also be embodied on a machine-readable medium, which may be any tangible medium that can contain or store a program used by or associated with an instruction execution system, apparatus, or device. The machine-readable medium may be a machine-readable signal medium or a machine-readable storage medium. The machine-readable medium may include, but is not limited to, an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any suitable combination of the aforementioned media. More specific examples of machine-readable storage media may include an electrical connection having one or more wires, a portable computer disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber, a portable optical disk read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the above.
[0210] Although operations have been described in a particular order, it should not be understood that performing these operations in the particular order shown, or in any sequential order, or performing all of the operations described, is required to achieve desirable results. In some cases, multitasking or parallel processing may be advantageous. Similarly, while several specific implementation details are included in the above discussion, these should not be construed as limitations on the scope of the disclosure, but rather as descriptions of features that may be specific to particular embodiments. Some features that are described in the context of individual embodiments may also be implemented in combination in a single embodiment. Conversely, various features that are described in the context of a single embodiment may also be implemented in multiple embodiments separately or in any suitable subcombination.
[0211] Although the present disclosure has been described in language specific to structural features and / or methodological acts, it should be understood that the present disclosure, as defined in the appended claims, is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims.
Claims
1. 1. A method of communication performed by a terminal device, comprising: receiving, from a network device, at least one configuration of a first subset of transmission configuration indicator (TCI) states associated with a first identity and a second subset of TCI states associated with a second identity; receiving downlink control information (DCI) having an indication of a code point corresponding to at least one of a first TCI state from a first subset of TCI states and a second TCI state from a second subset of TCI states; receiving, after a timing, a first physical downlink control channel (PDCCH) having the first TCI state when the first PDCCH is within a control resource set (CORESET) from a first subset of a CORESET; receiving the first PDCCH having the second TCI state after the timing if the first PDCCH is within a CORESET from a second subset of CORESETs; The timing is based on a threshold and the last symbol of a physical uplink control channel (PUCCH) or a physical uplink shared channel (PUSCH) with hybrid automatic repeat request (HARQ). Method of communication.
2. the first identity is a first Control Resource Set (CORESET) pool index and the second identity is a second CORESET pool index; If the DCI is in a PDCCH in a first subset of the CORESET, the codepoint corresponds to only one TCI state from the first subset of TCI states; If the DCI is in a PDCCH in a second subset of the CORESET, the codepoint corresponds to only one TCI state from the second subset of TCI states; The method of claim 1 further comprising:
3. the code point corresponds to at least one of a TCI state from a first subset of the TCI states and a TCI state from a second subset of the TCI states. The method of claim 1 further comprising:
4. 1. A method of communication performed by a network device, comprising: transmitting to the terminal device at least one configuration of a first subset of transmission configuration indicator (TCI) states associated with the first identity and a second subset of TCI states associated with the second identity; transmitting downlink control information (DCI) having an indication of a code point corresponding to at least one of a first TCI state from a first subset of TCI states and a second TCI state from a second subset of TCI states; transmitting, after a timing, a first physical downlink control channel (PDCCH) having the first TCI state when the first PDCCH is within a control resource set (CORESET) from a first subset of a CORESET; transmitting the first PDCCH having the second TCI state after the timing if the first PDCCH is within a CORESET from a second subset of CORESETs; The timing is based on a threshold and the last symbol of a physical uplink control channel (PUCCH) or a physical uplink shared channel (PUSCH) with hybrid automatic repeat request (HARQ). Method of communication.
5. the first identity is a first Control Resource Set (CORESET) pool index and the second identity is a second CORESET pool index; If the DCI is in a PDCCH in a first subset of the CORESET, the codepoint corresponds to only one TCI state from the first subset of TCI states; If the DCI is in a PDCCH in a second subset of the CORESET, the codepoint corresponds to only one TCI state from the second subset of TCI states; The method of claim 4 further comprising:
6. the code point corresponds to at least one of a TCI state from a first subset of the TCI states and a TCI state from a second subset of the TCI states. The method of claim 4 further comprising:
7. means for receiving, from a network device, at least one setting of a first subset of transmission configuration indicator (TCI) states associated with a first identity and a second subset of TCI states associated with a second identity; means for receiving downlink control information (DCI) having an indication of a code point corresponding to at least one of a first TCI state from a first subset of TCI states and a second TCI state from a second subset of TCI states; means for receiving, after a timing, a first physical downlink control channel (PDCCH) having the first TCI state when the first PDCCH is within a control resource set (CORESET) from a first subset of a CORESET; means for receiving, after the timing, the first PDCCH having the second TCI state if the first PDCCH is within a CORESET from a second subset of CORESETs; The timing is based on a threshold and the last symbol of a physical uplink control channel (PUCCH) or a physical uplink shared channel (PUSCH) with hybrid automatic repeat request (HARQ). Terminal device.
8. means for the first identity being a first Control Resource Set (CORESET) pool index and the second identity being a second CORESET pool index; means for, if the DCI is in a PDCCH in a first subset of the CORESET, the codepoint corresponds to only one TCI state from the first subset of TCI states; means for, if the DCI is in a PDCCH in a second subset of the CORESET, the codepoint corresponds to only one TCI state from the second subset of TCI states; The terminal device according to claim 7, further comprising:
9. the code point corresponds to at least one of a TCI state from a first subset of the TCI states and a TCI state from a second subset of the TCI states. The terminal device according to claim 7, further comprising:
10. means for transmitting to the terminal device at least one configuration of a first subset of transmission configuration indicator (TCI) states associated with the first identity and a second subset of TCI states associated with the second identity; means for transmitting downlink control information (DCI) having an indication of a code point corresponding to at least one of a first TCI state from a first subset of TCI states and a second TCI state from a second subset of TCI states; means for transmitting, after a timing, a first physical downlink control channel (PDCCH) having the first TCI state if the first PDCCH is within a control resource set (CORESET) from a first subset of a CORESET; means for transmitting the first PDCCH having the second TCI state after the timing if the first PDCCH is within a CORESET from a second subset of CORESETs; The timing is based on a threshold and the last symbol of a physical uplink control channel (PUCCH) or a physical uplink shared channel (PUSCH) with hybrid automatic repeat request (HARQ). Network equipment.
11. means for the first identity being a first Control Resource Set (CORESET) pool index and the second identity being a second CORESET pool index; means for, if the DCI is in a PDCCH in a first subset of the CORESET, the codepoint corresponds to only one TCI state from the first subset of TCI states; means for, if the DCI is in a PDCCH in a second subset of the CORESET, the codepoint corresponds to only one TCI state from the second subset of TCI states; The network device of claim 10 further comprising:
12. the code point corresponds to at least one of a TCI state from a first subset of the TCI states and a TCI state from a second subset of the TCI states. The network device of claim 10 further comprising:
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