Terminal device, network device, and method performed by the terminal device

By determining TCI states for PDCCH candidates based on their indices or CCE indices, the method enhances PDCCH reliability and robustness in multi-TRP environments, addressing the lack of such solutions in existing technologies.

JP7743864B2Active Publication Date: 2025-09-25NEC CORP
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Patent Information

Application Number
JP2023522974
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-10-16
Publication Date
2025-09-25
Estimated Expiration
2040-10-16

AI Technical Summary

Technical Problem

Existing technologies lack a solution for determining the Transmission Configuration Indicator (TCI) state for physical downlink control channel (PDCCH) candidates in multi-TRP scenarios, particularly for linked/associated PDCCH candidates used in PDCCH repetition or multi-chance scenarios, which affects the reliability and robustness of PDCCH transmission.

Method used

A method for determining a TCI state for PDCCH candidates based on the index of the PDCCH candidate or the index of its control channel element (CCE), enabling the terminal device to monitor PDCCH candidates effectively, and for the network device to transmit PDCCH based on the determined TCI state, thereby enhancing reliability and robustness in multi-TRP environments.

Benefits of technology

The solution ensures reliable and robust PDCCH transmission by accurately determining TCI states for each PDCCH candidate, improving communication reliability and robustness in multi-TRP scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure relates to a communication method, a terminal device, a network device, and a computer-readable medium. In the method, a terminal device determines a transmission configuration indicator (TCI) state for a physical downlink control channel (PDCCH) candidate based on at least one of an index of the PDCCH candidate and an index of a control channel element (CCE) of the PDCCH candidate. The terminal device monitors the PDCCH candidate based on the TCI state. As a result, the complexity of the terminal device for blind detection or decoding can be reduced.
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Description

[Technical Field]

[0001] TECHNICAL FIELD Embodiments of the present disclosure relate generally to the field of telecommunications, and more particularly to a communication method, a terminal device, a network device, and a computer-readable medium. [Background technology]

[0002] 3GPP meetings have discussed enhancing support for the introduction of multiple transmission and reception points (multiple TRPs). For example, it has been proposed to identify and specify characteristics that improve the reliability and robustness of physical channels other than the physical downlink shared channel (PDSH), such as the physical downlink control channel (PDCCH), the physical uplink shared channel (PUSCH), and / or the physical uplink control channel (PUCCH), using multiple TRPs and / or multiple panels based on the Release 16 reliability characteristics. It has also been proposed to identify and specify features that enable inter-cell multi-TRP operation. It has also been proposed to evaluate and specify enhancements for multi-TRP transmission with simultaneous multi-panel reception.

[0003] Furthermore, the 3GPP meeting also proposes supporting PDCCH repetition to improve the reliability and robustness of the PDCCH, that is, by repeatedly transmitting downlink control information (DCI) from a network device to a terminal device multiple times, the reliability and robustness of the PDCCH can be improved. Summary of the Invention [Problem to be solved by the invention]

[0004] Overall, the exemplary embodiments of the present disclosure provide a solution for reliability and robustness. [Means for solving the problem]

[0005] In a first aspect, a communication method is provided, the method including: determining, in a terminal device, a transmission configuration indicator (TCI) state for a physical downlink control channel (PDCCH) candidate based on at least one of an index of the PDCCH candidate and an index of a control channel element (CCE) of the PDCCH candidate; and monitoring the PDCCH candidate based on the TCI state.

[0006] In a second aspect, a communication method is provided, the method including: determining, in a network device, a transmission configuration indicator (TCI) state for a physical downlink control channel (PDCCH) candidate based on at least one of an index of the PDCCH candidate and an index of a control channel element (CCE) of the PDCCH candidate; and sending a PDCCH transmission on the PDCCH candidate to a terminal device based on the TCI state.

[0007] In a third aspect, a communication method is provided, the method including: receiving, at a terminal device, a physical downlink control channel (PDCCH) having downlink control information (DCI) on a first PDCCH candidate; and determining, based on an index of a first control channel element (CCE) for a second PDCCH candidate, a resource for transmitting feedback information.

[0008] In a fourth aspect, a communication method is provided, the method including: transmitting, in a network device, a physical downlink control channel (PDCCH) having downlink control information (DCI) to a terminal device on a first PDCCH candidate; and determining, based on an index of a first control channel element (CCE) for a second PDCCH candidate, a resource for receiving feedback information.

[0009] In a fifth aspect, a communication method is provided, the method including: receiving, in a terminal device, a physical downlink control channel (PDCCH) having downlink control information (DCI) on a PDCCH candidate; and determining a resource for transmitting feedback information based on at least an offset, an index of a first CCE for the PDCCH candidate, a number of CCEs in a control resource set (CORESET) of the PDCCH candidate, and a value of a PUCCH resource indicator field in the DCI.

[0010] In a sixth aspect, there is provided a terminal device comprising: a processor; and a memory coupled to the processor and having instructions stored thereon, the instructions, when executed by the processor, performing a method according to the first, third or fifth aspect.

[0011] In a seventh aspect, there is provided a network device comprising: a processor; and a memory coupled to the processor and storing instructions, the instructions, when executed by the processor, causing the network device to perform a method according to the second or fourth aspect.

[0012] In an eighth aspect, there is provided a computer-readable medium having stored thereon instructions that, when executed on at least one processor, cause the at least one processor to perform a method according to the first, third or fifth aspect.

[0013] In a ninth aspect, there is provided a computer-readable medium having stored thereon instructions which, when executed on at least one processor, cause the at least one processor to perform a method according to the second or fourth aspect.

[0014] Other features of the present disclosure will become readily apparent from the following description. [Brief explanation of the drawings]

[0015] The above and other objects, features and advantages of the present disclosure will become more apparent from the following detailed description of some embodiments of the present disclosure in the drawings.

[0016] [Figure 1] FIG. 1 is a block diagram of a communication environment in which embodiments of the present disclosure can be implemented.

[0017] [Figure 2] 1 is a signaling diagram illustrating a process for determining a transmission configuration indicator (TCI) for a PDCCH in accordance with some embodiments of the present disclosure.

[0018] [Figure 3A] FIG. 1 illustrates an arrangement of multiple PDCCH candidates at various aggregation levels, in accordance with some embodiments of the present disclosure.

[0019] [Figure 3B] FIG. 1 illustrates a TCI state for PDCCH candidates in accordance with some embodiments of the present disclosure. [Figure 3C] FIG. 1 illustrates a TCI state for PDCCH candidates in accordance with some embodiments of the present disclosure.

[0020] [Figure 4] FIG. 10 is a signaling diagram illustrating a process for determining PUCCH index resources in accordance with some embodiments of the present disclosure.

[0021] [Figure 5] FIG. 10 is a signaling diagram illustrating a process for determining PUCCH index resources in accordance with some embodiments of the present disclosure.

[0022] [Figure 6] 1 is a flowchart of a communication method according to some example embodiments of the present disclosure.

[0023] [Figure 7] 1 is a flowchart of a communication method according to some example embodiments of the present disclosure.

[0024] [Figure 8] 1 is a flowchart of a communication method according to some example embodiments of the present disclosure.

[0025] [Figure 9] 1 is a flowchart of a communication method according to some example embodiments of the present disclosure.

[0026] [Figure 10] 1 is a flowchart of a communication method according to some example embodiments of the present disclosure.

[0027] [Figure 11] FIG. 1 is a schematic block diagram of an apparatus suitable for implementing embodiments of the present disclosure.

[0028] In the drawings, the same or similar reference numbers represent the same or similar elements. DETAILED DESCRIPTION OF THE INVENTION

[0029] 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 limitations on the scope of the present disclosure. The disclosure described herein can be implemented in various ways different from those described below.

[0030] 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.

[0031] As used herein, the singular forms "a / an" and "the" include the plural forms unless the context clearly indicates otherwise. The term "comprises" and variations thereof should be understood as open-ended, meaning "including, but not limited to." The term "based on" should be understood as "based at least in part on." The terms "one embodiment" and "embodiment" should be understood as "at least one embodiment." The term "another embodiment" should be understood as "at least one other embodiment." Terms such as "first," "second," etc. can refer to different or the same object. Other explicit and implicit definitions may be included below.

[0032] In some instances, values, procedures, or devices are referred to as "best," "lowest," "highest," "minimum," "maximum," etc. It should 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.

[0033] Hereinafter, 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. The terms "feedback location," "HARQ-ACK information location," "HARQ-ACK location," "HARQ-ACK location," "HARQ location," "HARQ location," "feedback location," and "feedback location" may be used interchangeably. Hereinafter, the terms "PDCCH repetition," "repeated PDCCH," "repeated PDCCH signal," and "PDCCH candidate configured for the same scheduling" may be used interchangeably. The terms "HARQ-ACK information," "HARQ-ACK message," "HARQ message," "HARQ information," "feedback message," and "feedback information" may be used interchangeably. The terms "HARQ-ACK information field," "HARQ-ACK information location," "feedback field," and "feedback location" can be used interchangeably. The terms "DCI" and "DCI format" can be used interchangeably. The terms "TCI state," "Quasi-co-location (QCL)," "QCL parameter set," "QCL parameters," "QCL assumption," and "QCL configuration" can be used interchangeably.

[0034] As described above, in order to improve the reliability and robustness of physical channels such as the PDCCH, it has been proposed to support physical channel repetition. For example, the reliability and robustness of the PDCCH can be improved by repeatedly transmitting DCI from a network device to a terminal device multiple times.

[0035] The control resource set (i.e., CORESET) is a set of resources in the frequency domain. TIFF0007743864000001.tif644 resource blocks and time domain TIFF0007743864000002.tif745 symbols. In some embodiments, a control channel element (CCE) consists of six resource-element groups (REGs), where a REG is equal to one resource block in one orthogonal frequency-division multiplexing (OFDM) symbol. In some embodiments, the REGs within a control resource set are numbered in a time-first increasing order, starting with 0 for the first OFDM symbol and the lowest-numbered resource block in the control resource set.

[0036] Furthermore, one CORESET can be associated with one or more search space sets. One search space set can include or be associated with one or more PDCCH candidates. A PDCCH monitoring period and / or a slot offset and / or a symbol index within a slot can be configured for each search space set. One CORESET and / or one search space set can include multiple CCEs. For example, the number of CCEs can be N CCE and N CCE is a positive integer. For example, 1≦N CCE ≦45. For another example, 1≦N CCE ≦46. In addition, each CCE among the plurality of CCEs is, for example, 0 to N CCE The indices are numbered from -1 to -1. For example, one PDCCH candidate may correspond to a search space.

[0037] The PDCCH channel can be composed of one or more control channel elements (CCEs). Supported PDCCH aggregation levels may be 1, 2, 4, 8, and 16. When the aggregation level is 1, the PDCCH channel is composed of one CCE. When the aggregation level is 4, the PDCCH channel is composed of four CCEs. When the aggregation level is 16, the PDCCH channel is composed of 16 CCEs.

[0038] In some embodiments, a terminal device (e.g., user equipment (UE)) may be configured with multiple control resource sets (i.e., CORESETs), each of which is associated with only one CCE-REG mapping.

[0039] In some embodiments, a procedure is defined for determining physical downlink control channel candidates for a terminal device. That is, a CCE index is determined for each of a plurality of PDCCH candidates that may be used for PDCCH transmission between a network device and the terminal device. Once the CCE indexes for the PDCCH candidates are determined, the terminal device can perform blind detection on these PDCCH candidates. When a PDCCH transmission is detected or received on a PDCCH candidate, the terminal device can decode it to obtain information such as DCI.

[0040] The terminal device may assume that the DM-RS antenna ports associated with PDCCH reception within a CORESET are quasi-colocated (QCLed) with one or more reference signals (RS) configured by the TCI state indicated for that CORESET (if any).

[0041] If no MAC CE activation command indicating the TCI state for a CORESET is received after the most recent random access procedure that was not initiated by a PDCCH order triggering a contention-free random access procedure, the terminal device 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 any).

[0042] On the other hand, to enhance the reliability of the PDCCH with multiple TRPs, in one solution, coding or rate matching for the PDCCH is based on one repetition, and the same coded bits are repeated for another repetition. Each repetition may have the same number of CCEs and coded bits and correspond to the same DCI payload. Alternatively, different DCIs may schedule the same PDSCH / PUSCH, and the number of CCEs for scheduling the same PDSCH / PUSCH may be different. In such an alternative, the terminal device can know that different DCIs are used to schedule the same PDSCH / PUSCH after decoding the DCI.

[0043] However, when multiple TRPs are used for PDCCH transmission, multiple TCI states can be configured for multiple TRPs to indicate, for example, downlink Rx beams for a terminal device, etc. Therefore, the inventors have realized that there is no solution for determining the TCI state for each PDCCH candidate for linked / associated PDCCH candidates that are used for recurring PDCCHs.

[0044] Furthermore, the inventors have noticed that for two or more PDCCH candidates that schedule the same PDSCH reception or the same semi-persistent scheduling (SPS) PDSCH release (i.e., for PDCCHs used for PDCCH repetition or multi-chance PDCCH), there is no solution on how to design CCE indexes for PUCCH resources for repetitive PDCCHs or multi-chance PDCCHs.

[0045] FIG. 1 illustrates an exemplary communication network 100 capable of implementing embodiments of the present disclosure. The communication network 100 includes a network device 110 and a terminal device 120 served by the network device 110. The communication network 100 may provide one or more serving cells to serve the terminal device 120. To support a wider bandwidth, carrier aggregation (CA), in which two or more component carriers are aggregated, may be supported in the communication network 100. For example, in FIG. 1, the network device 110 may provide multiple serving cells to the terminal device 120, including one primary cell (Pcell) 101 corresponding to a primary component carrier and at least one secondary cell (Scell) 102 corresponding to at least one secondary component carrier. It should be understood that the number of network devices, terminal devices, and / or serving cells in FIG. 1 is provided for illustrative purposes only and does not imply any limitations on the present disclosure. The communication network 100 may include any appropriate number of network devices, terminal devices, and / or serving cells suitable for implementing embodiments of the present disclosure.

[0046] 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 Everything (IoE) devices, machine-type communication (MTC) 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 that enables 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 120.

[0047] As used herein, the term "network equipment" or "base station" (BS) refers to equipment that can provide or host a cell or coverage area over which terminal devices can communicate. Examples of network equipment 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, or other low-power node.

[0048] In one embodiment, the terminal device 120 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 different RATs may be transmitted from at least one of the first network device and the second network device to the terminal device 120. In one embodiment, the first information may be transmitted from the first network device to the terminal device 120, and the second information may be transmitted from the second network device directly or via the first network device to the terminal device 120. 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. The information regarding the reconfiguration of the terminal device set by the second network device can be sent to the terminal device directly from the second network device or via the first network device, and can be sent via any of radio resource control (RRC) signaling, medium access control (MAC) control element (CE), or downlink control information (DCI).

[0049] 1, the network device 110 can communicate data and control information to the terminal device 120, and the terminal device 120 can also communicate data and control information to the network device 110. The link from the network device 110 to the terminal device 120 is called a downlink (DL), and the link from the terminal device 120 to the network device 110 is called an uplink (UL).

[0050] In some embodiments, for downlink transmission, network device 110 may transmit control information to terminal device 120 via a PDCCH and / or transmit data to terminal device 120 via a PDSCH. Furthermore, network device 110 may transmit one or more reference signals (RS) to terminal device 120. An RS transmitted from network device 110 to terminal device 120 may also be referred to as a "DL RS." Examples of DL RSs may include, but are not limited to, a demodulation reference signal (DMRS), a channel state information-reference signal (CSI-RS), a sounding reference signal (SRS), a phase tracking reference signal (PTRS), a fractional time and frequency tracking reference signal (TRS), etc.

[0051] In some embodiments, for uplink transmission, terminal device 120 may transmit control information to network device 110 via a PUCCH and / or transmit data to network device 110 via a PUSCH. Furthermore, terminal device 120 may transmit one or more RSs to network device 110. RSs transmitted from terminal device 120 to network device 110 may also be referred to as "UL RSs." Examples of UL RSs may include, but are not limited to, DMRS, CSI-RS, SRS, PTRS, fractional time and frequency TRS, etc.

[0052] Communications in communication 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.

[0053] Furthermore, communications may be performed according to any generation of communications protocol now known or developed in the future, including, but 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.

[0054] A network device 110 (e.g., a gNB) may include one or more TRPs or antenna panels. As used herein, the term "TRP" refers to an antenna array (having one or more antenna elements) available to a network device 110 located in a particular geographic location. For example, a network device 110 may be coupled to multiple TRPs in different geographic locations to achieve better coverage. The one or more TRPs may be included in the same serving cell or different serving cells.

[0055] It should be understood that a TRP can be a panel, and a panel can also refer to an antenna array (having one or more antenna elements). Although several embodiments of the present disclosure have been described with reference to multiple TRPs as examples, these embodiments are for illustrative purposes only and are intended to assist those skilled in the art in understanding and practicing the present disclosure, and do not imply any limitations on the scope of the present disclosure. It should be understood that the contents of the present disclosure described herein can be implemented in a variety of ways different from those described below.

[0056] As shown in FIG. 1 , for example, the network device 110 can communicate with the terminal device 120 via TRPs 130-1 and 130-2. In the following text, the TRP 130-1 may also be referred to as a first TRP, and the TRP 130-2 may also be referred to as a second TRP. The first TRP 130-1 and the second TRP 130-2 may be included in the same serving cell (e.g., serving cells 101 and 102 shown in FIG. 1 ) provided by the network device 110 or in different serving cells. Although some embodiments of the present disclosure have been described with reference to the first TRP 130-1 and the second TRP 130-2 in the same serving cell provided by the network device 110, these embodiments are for illustrative purposes only and are intended to help those skilled in the art understand and implement the present disclosure, and do not imply any limitations on the scope of the present disclosure. It should be understood that the contents of the present disclosure described herein can be implemented in various ways different from those described below.

[0057] As described above, when multiple TRPs are used for PDCCH transmission, multiple TCI states can be configured for multiple TRPs, for example to indicate downlink Rx beams for a terminal device.

[0058] In some embodiments, network device 110 may transmit a configuration to terminal device 120 indicating N PDCCH candidates, where N is a positive integer. For example, 1≦N≦32. For another example, 1≦N≦44. 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.

[0059] In some embodiments, N PDCCH candidates may be included in one search space. In some embodiments, the search space may be associated with one control resource set (CORESET) that can be configured to have two transmission configuration indication (TCI) states T1 and T2. For example, N1 PDCCH candidates (where N1 is an integer and 1≦N1≦N) may be configured to have TCI state T1, and (N−N1) PDCCH candidates may be configured to have TCI state T2. Alternatively, in some embodiments, the search space may be associated with two CORESETs. For example, N1 PDCCH candidates (where N1 is an integer and 1≦N1≦N) may be associated with a first CORESET, and (N−N1) PDCCH candidates may be associated with a second CORESET. In some embodiments, the N1 PDCCH candidates may be referred to as a second set of PDCCH candidates. In some embodiments, the N−N1 PDCCH candidates may be referred to as a first set of PDCCH candidates.

[0060] In some examples, for PDCCH transmission and reception (e.g., when two TRPs (e.g., TRP130-1 and TRP130-2) are used for transmission), one alternative is one CORESET with two active TCI states. In another alternative, one search space set is associated with two different CORESETs. Alternatively, two search space sets are associated with each CORESET.

[0061] In particular, there are various options for alternatives to a CORESET having two active TCI states. In these options, multiple PDCCH candidates may be divided into two PDCCH candidate sets, with each PDCCH candidate set including a single or multiple PDCCH candidates. The PDCCH candidates within a set correspond to recurrence or chance. Specifically, in one option, one PDCCH candidate in a given search space set may be associated with both of the two active TCI states of the CORESET. In another option, the PDCCH candidates in a given search space set are divided into two sets, with the two PDCCH candidate sets being associated with two TCI states of the CORESET, respectively. Alternatively, the two PDCCH candidate sets are associated with two corresponding search space sets, with the two search space sets associated with the CORESET, and each search space set being associated with only one TCI state of the CORESET.

[0062] Furthermore, two or more PDCCH candidates may be explicitly linked to each other (e.g., for each repetition or chance), i.e., the terminal device may know this link setting before decoding. Alternatively, the two or more PDCCH candidates may not be explicitly linked to each other, so the terminal device needs to know this link setting after decoding.

[0063] Therefore, the inventors of the present application have realised that for linked / associated PDCCH candidates, there is no solution for determining the TCI status for a PDCCH candidate.

[0064] Therefore, embodiments of the present disclosure provide a solution for solving the above problem and / or one or more other potential problems. In this solution, a terminal device determines a transmission configuration indicator (TCI) state for a physical downlink control channel (PDCCH) candidate based on at least one of an index of the PDCCH candidate or an index of a control channel element (CCE) of the PDCCH candidate. Then, the terminal device monitors the PDCCH candidate based on the TCI state. Thus, for a multi-TRP scenario, the TCI state can be determined for each PDCCH candidate.

[0065] Reference is now made to Figure 2, which illustrates a signaling flow 200 for cell selection during an SDT procedure according to an embodiment of the present disclosure. For illustrative purposes, the signaling flow 200 will be described with reference to Figure 1. The signaling flow 200 may involve a network device 110 and a terminal device 120, as shown in Figure 1.

[0066] In signaling flow 200, terminal device 120 determines 202 a TCI state for a PDCCH candidate based on an index of the PDCCH candidate for terminal device 120. Alternatively, terminal device 120 determines 202 an index of a CCE of the PDCCH candidate. In some embodiments, the PDCCH candidate may be one of multiple PDCCH candidates for an aggregation level within a search space set.

[0067] Then, the terminal device 120 monitors (204) PDCCH candidates based on the TCI state.

[0068] Meanwhile, network device 120 determines (206) a TCI state for the PDCCH candidate based on the index of the PDCCH candidate for terminal device 120. Alternatively, network device 110 determines (206) the index of the CCE of the PDCCH candidate. Once the TCI state is determined, network device 110 sends (208) a PDCCH transmission to the terminal device on the PDCCH candidate based on the TCI state.

[0069] When the network device 110 transmits a PDCCH transmission on a PDCCH candidate (206), the PDCCH transmission (eg, DCI) can be detected at the terminal device 120 side as a result of monitoring.

[0070] The following section describes several methods for determining the TCI status.

[0071] Specifically, in some embodiments, terminal device 120 may determine a first set of PDCCH candidates and a second set of PDCCH candidates from among the multiple PDCCH candidates based on the indexes of the multiple PDCCH candidates. Then, terminal device 120 may determine a target set of PDCCH candidates to which the PDCCH candidates belong from the first set of PDCCH candidates and the second set of PDCCH candidates based on the indexes of the PDCCH candidates. Then, terminal device 120 may determine a TCI state corresponding to the target set.

[0072] In the following, two methods for determining the first set of PDCCH candidates and the second set of PDCCH candidates are introduced, however, it should be understood that there may be other methods for determining the two PDCCH candidate sets, and the scope of the present application is not limited in this respect.

[0073] For example, in some embodiments, if it is determined that the index of a PDCCH candidate among the plurality of PDCCH candidates is equal to or less than a predetermined index, terminal device 120 may determine that the PDCCH candidate belongs to a first set, and additionally, if it is determined that the index of the PDCCH candidate is greater than a predetermined index, terminal device 120 may determine that the first PDCCH candidate belongs to a second set.

[0074] In some examples, the predetermined value may be defined as floor(M-1) / 2, where M is the number of PDCCH candidates in the search space set. Thus, for example, for aggregation level 4, if there are four PDCCH candidates with indices 0 to 3 in the search space set (i.e., M=4), then for this aggregation level, the predetermined index may be defined as floor(4-1) / 2=1. Thus, PDCCH candidates 0 and 1, which are less than or equal to 1, are determined to belong to the first set of PDCCH candidates. PDCCH candidates 2 and 3, which are greater than 1, are determined to belong to the second set of PDCCH candidates.

[0075] Thus, in another example, if there are five PDCCH candidates with indices 0 to 4 in the search space set (i.e., M=5), for this aggregation level, the predetermined index may be defined as floor(5-1) / 2=2. Thus, PDCCH candidates 0, 1, and 2, which are two or less, are determined to belong to the first set of PDCCH candidates. PDCCH candidates 3 and 4, which are greater than two, are determined to belong to the second set of PDCCH candidates.

[0076] In some other embodiments, it may be determined that if (M-1) mod 2 ≠ 0, TCI state A is determined for the index of the PDCCH candidate with i=0, 1...floor(M-1) / 2 or i=M-1, and TCI state B is determined for the other PDCCH candidates.

[0077] In some embodiments, the terminal device 120 may be configured to have M PDCCH candidates corresponding to an aggregation level (e.g., L, where L is a positive integer. For example, L may be at least one of {1, 2, 4, 8, 16}) within a search space set (e.g., S, where S is a non - negative integer. For example, 0 ≦ S ≦ 39. For another example, 0 < S < 40), and M is a positive integer. For example, 1 ≦ M ≦ 8. For example, one of the M PDCCH candidates may be indexed by m s and m s is a non - negative integer. For example, m s ∈(0, 1, … M - 1).

[0078] In some embodiments, the terminal device 120 may be configured to have two TCI states (e.g., TCI state A and TCI state B) for the M PDCCH candidates. For example, the terminal device 120 can be configured to have two TCI states for the aggregation level L. In another example, the terminal device 120 can be configured to have two TCI states for the PDCCH candidates corresponding to the aggregation level L. In another example, the terminal device 120 can be configured to have two TCI states for the search space set S. In another example, the terminal device 120 may be configured to have two TCI states for a CORESET, and the CORESET is associated with the search space set S. For example, the two TCI states may be set for the aggregation level L.

[0079] In some embodiments, the terminal device 120 may be configured to have N CCE CCEs for a CORESET, and N CCE is a positive integer. For example, 1 ≦ N CCE ≦ 45. For another example, 1 ≦ N CCE ≦ 46. For example, one of the N CCE CCEs may be indexed by n c and nc is a non - negative integer. For example, n c ∈(0, 1, … N CCE −1). For example, the CORESET is associated with the search space set S. For another example, M PDCCH candidates correspond to the aggregation level L within the search space set S.

[0080] In some embodiments, when m s ≦floor((M - 1) / 2), the PDCCH candidate m s is associated with the TCI state A. Also, when m s >floor((M - 1) / 2), the PDCCH candidate m s is associated with the TCI state B. In some embodiments, when m s ≦ceil((M - 1) / 2), the PDCCH candidate m s is associated with the TCI state A. Also, when m s >ceil((M - 1) / 2), the PDCCH candidate m s is associated with the TCI state B. In some embodiments, when m s <floor((M - 1) / 2), the PDCCH candidate m s is associated with the TCI state A. Also, when m s ≧floor((M - 1) / 2), the PDCCH candidate m s is associated with the TCI state B. In some embodiments, when m s <ceil((M - 1) / 2), the PDCCH candidate m<000003!>is associated with the TCI state A. Also, when m s ≧ceil((M - 1) / 2), the PDCCH candidate m s is associated with the TCI state B.

[0081] In some embodiments, when m s mod 2 = 0, the PDCCH candidate m s is associated with the TCI state A. Also, when m s mod 2 = 1 or m s mod 2≠, the PDCCH candidate m sis associated with TCI state B. In some embodiments, when m s mod 2 = 0, PDCCH candidate m s is associated with TCI state B. Also, when m s mod 2 = 1 or m s mod 2 ≠ 0, PDCCH candidate m s is associated with TCI state A.

[0082] In some embodiments, when (M - 1) mod 2 ≠ 0 and m s ≤ floor((M - 1) / 2), PDCCH candidate m s is associated with TCI state A. Also, when m s = M - 1, PDCCH candidate m s is associated with TCI state A. Also, when floor((M - 1) / 2) < m s < M - 1, PDCCH candidate m s is associated with TCI state B, and when (M - 1) mod 2 = 0 and m s ≤ floor((M - 1) / 2), PDCCH candidate m s is associated with TCI state A. Also, when floor((M - 1) / 2) < m s ≤ M - 1, PDCCH candidate m s is associated with TCI state B.

[0083] In some embodiments, when (M - 1) mod 2 ≠ 0 and m s ≤ ceil((M - 1) / 2), PDCCH candidate m s is associated with TCI state A. Also, when m s = M - 1, PDCCH candidate m s is associated with TCI state A. Also, when ceil((M - 1) / 2) < m s < M - 1, PDCCH candidate m s is associated with TCI state B, and when (M - 1) mod 2 = 0 and m s ≤ ceil((M - 1) / 2), PDCCH candidate m sis associated with TCI state A. Also, ceil((M - 1) / 2) < m s When ≤ M - 1, PDCCH candidate m s is associated with TCI state B.

[0084] In some embodiments, when (M - 1) mod 2 ≠ 0, m s When < floor((M - 1) / 2), PDCCH candidate m s is associated with TCI state A. Also, m s When = M - 1, PDCCH candidate m s is associated with TCI state A. Also, when floor((M - 1) / 2) ≤ m s < M - 1, PDCCH candidate m s is associated with TCI state B. When (M - 1) mod 2 = 0, m s When < floor((M - 1) / 2), PDCCH candidate m s is associated with TCI state A. Also, when floor((M - 1) / 2) ≤ m s ≤ M - 1, PDCCH candidate m s is associated with TCI state B.

[0085] In some embodiments, when (M - 1) mod 2 ≠ 0, m s When < ceil((M - 1) / 2), PDCCH candidate m s is associated with TCI state A. Also, m s When = M - 1, PDCCH candidate m s is associated with TCI state A. Also, when ceil((M - 1) / 2) ≤ m s < M - 1, PDCCH candidate m s is associated with TCI state B. When (M - 1) mod 2 = 0, m s When < ceil((M - 1) / 2), PDCCH candidate m s is associated with TCI state A. Also, when ceil((M - 1) / 2) ≤ m s ≤ M - 1, PDCCH candidate m s is associated with TCI state B.

[0086] In some embodiments, P≦m s If ≦Q, PDCCH candidate m s is associated with TCI state A. P and Q are non-negative integers, where P≦Q. For example, 0≦P≦M−1. For example, 0≦Q≦M−1. In some embodiments, P≦m s If ≦Q, PDCCH candidate m s is associated with TCI state B. P and Q are non-negative integers, where P≦Q. For example, 0≦P≦M−1. For example, 0≦Q≦M−1.

[0087] In some embodiments, N CCE There may be two CCE sets (for example, CCE set E1 and CCE set E2) among the N CCEs, CCE is a positive integer. For example, 1≦N CCE ≦45. For another example, 1≦N CCE ≦46. For example, N CCE One of the CCEs is n c may be indexed by n c is a non-negative integer. For example, n c ∈(0,1,…N CCE In some embodiments, the CCE set E1 is 0≦n c ≦N CCE The CCE set E2 can include CCEs with indices N / 2-1. CCE / 2≦n c ≦N CCE In some embodiments, the CCE set E1 may include CCEs with index n c mod 2=0. Also, the CCE set E2 can include CCEs with n c mod 2=1 index, or n c It may include CCEs with indices mod 2≠0.

[0088] In some embodiments, the CCE set E1 is P CCE ≦nc ≦Q CCE The CCE set E2 may include CCEs with indices P CCE ≦n c ≦Q CCE It is possible to include CCEs with indices that do not satisfy P CCE and Q CCE is a non-negative integer, and P CCE ≦Q CCE For example, 0≦P CCE ≦N CCE -1. For example, 0≦Q CCE ≦N CCE In some embodiments, the CCE set E1 is 0≦n c ≦P CCE index of, or Q CCE ≦n c ≦N CCE The CCE set E2 may include CCEs with indices of 0≦n. c ≦P CCE Indices that do not satisfy CCE ≦n c ≦N CCE It is possible to include CCEs with indices that do not satisfy -1. CCE and Q CCE is a non-negative integer, and P CCE ≦Q CCE For example, 0≦P CCE ≦N CCE -1. For example, 0≦Q CCE ≦N CCE It is -1.

[0089] In some embodiments, the CCE set E1 is 0≦n c In some embodiments, the CCE set E2 can include CCEs with indices H≦n c In some embodiments, the CCE set E1 can include CCEs with indices ≦2*H−1. c ≦N CCEIn some embodiments, the CCE set E2 may include CCEs with indices of 2*H≦n. c ≦N CCE In some embodiments, H can be expressed as (floor(M L / 2))*L or (ceil(M L / 2))*L. In some embodiments, L may be an aggregation level. For example, the aggregation level L may correspond to at least one or at least two PDCCH candidates in the search space set. For example, L may be any one of {1, 2, 4, 8, 16}. In some embodiments, L may be the maximum aggregation level configured in the search space set. In some embodiments, L may be the maximum aggregation level configured in the search space set, and the aggregation level L corresponds to at least one or at least two PDCCH candidates. In some embodiments, L may be a maximum aggregation level configured in the search space set, where the aggregation level L corresponds to at least one or at least two PDCCH candidates, where the at least one or at least two PDCCH candidates are associated / linked to another PDCCH candidate, where the at least one or at least two PDCCH candidates are configured to have a parameter R1 or R2, and where the at least one or at least two PDCCH candidates are associated with two TCI states. L may be the number of PDCCH candidates corresponding to the aggregation level L. For example, M L is a positive integer. For example, 1≦M L ≦8. For example, 2≦M L ≦8.

[0090] In some embodiments, if a PDCCH candidate corresponding to an aggregation level in the search space set is associated with at least one TCI state (e.g., two TCI states), the PDCCH candidate is not monitored. In some embodiments, if at least one CCE in the set of CCEs corresponding to a PDCCH candidate in the search space set is associated with at least one TCI state (e.g., two TCI states), the PDCCH candidate is not monitored.

[0091] In some embodiments, m s If = 0, PDCCH candidate m s is associated with TCI state A. Also, PDCCH candidate m s CCE index and PDCCH candidate m s If the CCE index for PDCCH candidate m = 0 is in the same CCE set (e.g., CCE set E1 or CCE set E2), s is associated with TCI state A. For example, PDCCH candidate m s If the index of the CCE for m = 0 is in the CCE set E1, then the PDCCH candidate m s When the index of the CCE for PDCCH candidate m is in CCE set E1, s is associated with TCI state A. Also, PDCCH candidate m s If the CCE index for PDCCH candidate m is in CCE set E2, s is associated with TCI state B. In another example, PDCCH candidate m s If the index of the CCE for m = 0 is in the CCE set E2, then the PDCCH candidate m s When the index of the CCE for PDCCH candidate m is in CCE set E2, s is associated with TCI state A. Also, PDCCH candidate m s If the CCE index for PDCCH candidate m is in CCE set E1, s is associated with TCI state B.

[0092] In the following, detailed examples of arrangements of multiple PDCCH candidates at different aggregation levels and mapping results between TCIs and PDCCH candidates will be described with reference to FIGS. 3A-3B.

[0093] 3A is a diagram illustrating the arrangement of multiple PDCCH candidates at various aggregation levels according to some embodiments of the present disclosure. It should be understood that the number of CCEs in a search space set is not limited to 32 and may be other numbers. Meanwhile, the aggregation level is not limited to 4, 8, or 16 and may be 1, 2, or any other number. The scope of the present application is not limited in this respect. Furthermore, there may be more search space sets associated with a CORESET.

[0094] As shown in Figure 3A, CORESET has 32 CCEs with indexes 0 to 31. CORESET has multiple PDCCH candidates that are in a search space set and associated with two TCI states of CORESET. Specifically, as shown in the figure, for aggregation level 4, one search space set has four PDCCH candidates, and each PDCCH candidate corresponds to one search space. Also, one PDCCH candidate has four CCEs.

[0095] In one example, the terminal device 120 monitors each of four PDCCH candidates (i.e., PDCCH candidates 0 to 3) to detect a PDCCH transmission. As a result of the monitoring, there is a possibility that a PDCCH transmission exists on the PDCCH candidate, and there is also a possibility that a PDCCH transmission does not exist on the PDCCH candidate.

[0096] Additionally, in both the terminal device 120 and the network device 110, PDCCH candidate 0 can be configured to include CCEs 0 to 3, PDCCH candidate 1 can be configured to include CCEs 5 to 8, PDCCH candidate 2 can be configured to include CCEs 16 to 19, and PDCCH candidate 3 can be configured to include CCEs 24 to 27.

[0097] Similarly, for aggregation level 8, there are eight CCEs in each of two PDCCH candidates (i.e., PDCCH candidate 0 and PDCCH candidate 1). Therefore, in both terminal device 120 and network device 11, it is possible to configure PDCCH candidate 0 to include CCEs 0-7, and PDCCH candidate 1 to include CCEs 16-23. Similarly, for aggregation level 16, there are 16 CCEs in the PDCCH candidate (i.e., PDCCH candidate 0). Therefore, it is possible to configure PDCCH candidate 0 in advance to include CCEs 0-15 in terminal device 120.

[0098] In some embodiments, information about which aggregation level is used may also be transmitted from network device 110 to terminal device 120. Alternatively, this information may be pre-configured in both network device 110 and terminal device 120.

[0099] 3B is a diagram illustrating TCI states for PDCCH candidates according to some embodiments of the present disclosure. It should be understood that the number of TCI states used within one CORESET is not limited to two TCI states (i.e., TCI state A and TCI state B) as shown, but may be any other number. The scope of the present application is not limited in this respect.

[0100] As described above, if it is determined that the index of a PDCCH candidate among the plurality of PDCCH candidates is equal to or less than a predetermined index, the terminal device 120 may determine that the PDCCH candidate belongs to a first set, and if it is determined that the index of a PDCCH candidate is greater than the predetermined index, the terminal device 120 may determine that the first PDCCH candidate belongs to a second set. That is, as a result of the determination, each PDCCH candidate in the first set of PDCCH candidates has an index equal to or less than the first predetermined index, and each PDCCH candidate in the second set of PDCCH candidates has an index greater than the first predetermined index.

[0101] 3B, TCI state A is determined for PDCCH candidate 0 at aggregation level 16, and the same TCI state (i.e., TCI state A) is determined for both PDCCH candidate 0 at aggregation level 8 and PDCCH candidates 0 and 1 at aggregation level 4. Then, TCI state B is determined for PDCCH candidate 1 at aggregation level 8, and the same TCI (i.e., TCI state B) is determined for PDCCH candidates 2 and 3 at aggregation level 4.

[0102] Therefore, it is guaranteed that PDCCH candidates on overlapping CCEs are associated with the same TCI state (e.g., TCI A or TCI B). Considering that different beams (e.g., transmit beams and receive beams), processing methods, and channel estimation methods are used for different TCI states when blind detection is performed in terminal device 120, if two TCI states are both determined for overlapping CCE indices at various aggregation levels (e.g., CCEO is determined for both TCI states A and B), this means that blind detection and reception needs to be performed twice in terminal device 120 (i.e., once using TCI state A and once using TCI state B). Therefore, if PDCCH candidates on overlapping CCEs are associated with the same TCI state as described in the above example, the complexity of blind detection or decoding in terminal device 120 can be reduced.

[0103] In some embodiments, as another method for determining the first set of PDCCH candidates and the second set of PDCCH candidates, terminal device 120 may divide multiple PDCCH candidates into two PDCCH candidate sets (e.g., a first set of PDCCH candidates and a second set of PDCCH candidates), and if the index of a PDCCH candidate is determined to be an even number, terminal device 120 may determine that the PDCCH candidate belongs to the first set. Additionally, if the index of a PDCCH candidate is determined to be an odd number, terminal device 120 may determine that the PDCCH candidate belongs to the second set.

[0104] In some examples, assuming the index of a PDCCH candidate is i, terminal device 120 may perform a modulo calculation with 2 as the divisor and i as the dividend, i.e., (i mod(2)) to obtain the remainder, i.e., TCI state A for i=0, 1, ..., floor(M-1) / 2, and TCI state B otherwise.

[0105] Thus, for example, for aggregation level 4, if there are four PDCCH candidates with indices 0 to 3 in the search space set, then (i mod(2)) is calculated and the remainder for PDCCH candidates 0 and 2 is 0, so it is determined that PDCCH candidates 0 and 2 belong to the first set of PDCCH candidates. (i mod(2)) is calculated and the remainder for PDCCH candidates 1 and 3 is 1, so it is determined that PDCCH candidates 1 and 3 belong to the second set of PDCCH candidates.

[0106] In the following, with reference to FIG. 3C, we provide a more detailed example of the TCI states determined for each candidate at different aggregation levels using the above method.

[0107] 3C is a diagram illustrating TCI states for PDCCH candidates according to some embodiments of the present disclosure. It should be understood that the number of TCI states used within one CORESET is not limited to two TCI states (i.e., TCI state A and TCI state B) as shown, but may be any other number. The scope of the present application is not limited in this respect.

[0108] As described above, as a result of the determination by the above method, as shown in Figure 3C, TCI state A is determined for PDCCH candidate 0 of aggregation level 16, and the same TCI state (i.e., TCI state A) is determined for both PDCCH candidate 0 of aggregation level 8 and PDCCH candidates 0 and 2 of aggregation level 4. Then, TCI state B is determined for PDCCH candidate 1 of aggregation level 8, and the same TCI (i.e., TCI state B) is determined for both PDCCH candidates 1 and 3 of aggregation level 4.

[0109] Thus, it is ensured that PDCCH candidates on overlapping CCEs are associated with the same TCI state (eg, TCI A or TCI B), which can reduce the complexity of terminal device 120 for blind detection or decoding.

[0110] In some embodiments, for a search space set s associated with CORESET p, the carrier indicator field value n cl Slots for the active downlink (DL) bandwidth part (BWP) of the serving cell corresponding to PDCCH candidate search space set in TIFF0007743864000003.tif846 The CCE index for aggregation level L corresponding to TIFF0007743864000004.tif545 is given by the following equation (1). TIFF0007743864000005.tif14102Now, for any common search space (CSS), TIFF0007743864000006.tif844, and for UE specific search space (USS), TIFF0007743864000007.tif1378,Y (p,-1) =n RNTI ≠0, if p mod 3=0, then A p =39827, p mod 3=1, A p =39829, p mod 3=2, A p= 39839, and D = 65537, for i = 0, ..., L-1, N CCE,p is the number of CCEs in CORESETp and each RB set (if any), numbered from 0 to N CCE,p -1 and n CI is the carrier indicator field value when the terminal device 120 is configured by CrossCarrierSchedulingConfig to have a carrier indicator field for the serving cell whose PDCCH is monitored, otherwise, otherwise (including any CSS), n CI =0, TIFF0007743864000008.tif864, where: TIFF0007743864000009.tif945 is n CI is the number of PDCCH candidates monitored by the terminal device 120, which is set for aggregation level L of the search space set s for the serving cell corresponding to

[0111] In some embodiments, the terminal device 120: TIFF0007743864000010.tif944 PDCCH candidates (or search space s or CORESET) are configured to have two TCI states, TIFF0007743864000011.tif642, the first TCI state is applied to the PDCCH candidate, and otherwise the second TCI state is applied.

[0112] 3B again. For example, in some embodiments, the predetermined index may be preset as 15. Thus, for example, the index of the first CCE of PDCCH candidate 1 of aggregation level 4 is 8, which is lower than the predetermined index of 15, so it is determined to use TCI state A for PDCCH candidate 1 of aggregation level 4. In another example, the index of the first CCE of PDCCH candidate 1 of aggregation level 8 is 16, which is higher than the predetermined index of 15, so it is determined to use TCI state A.

[0113] As a result, as shown in Figure 3B, by the above method, TCI state A is determined for PDCCH candidate 0 of aggregation level 16, and the same TCI state (i.e., TCI state A) is determined for both PDCCH candidate 0 of aggregation level 8 and PDCCH candidates 0 and 1 of aggregation level 4. Then, TCI state B is determined for PDCCH candidate 1 of aggregation level 8, and the same TCI (i.e., TCI state B) is determined for PDCCH candidates 2 and 3 of aggregation level 4.

[0114] Therefore, it is guaranteed that PDCCH candidates on overlapping CCEs are associated with the same TCI state (e.g., TCI A or TCI B). Considering that different beams (e.g., transmit beams and receive beams), processing methods, and channel estimation methods are very likely to be used for different TCI states when blind detection is performed in terminal device 120, if two TCI states are both determined for overlapping CCE indices at various aggregation levels (e.g., CCEO is determined for both TCI states A and B), this means that blind detection and reception needs to be performed twice in terminal device 120 (i.e., once using TCI state A and once using TCI state B). Therefore, if PDCCH candidates on overlapping CCEs are associated with the same TCI state as described in the above example, the complexity of blind detection and / or decoding in terminal device 120 can be reduced.

[0115] In some other embodiments, the terminal device 120: TIFF0007743864000012.tifIf configured to have two TCI states for 946 PDCCH candidates (or search space s or CORESET), When TIFF0007743864000013.tif1246, the first TCI state is applied to the PDCCH candidate, otherwise, the second TCI state is applied to the PDCCH candidate, and N CCE is the number of CCEs in the PDCCH candidate CORESET, and n CCE,0 is the index of the first CCE for the PDCCH candidate.

[0116] Therefore, since PDCCH candidates on overlapping CCEs are associated with the same TCI state, the complexity of the terminal device 120 for blind detection or decoding is reduced. Meanwhile, since each TCI state is not bound to the index of a CCE (e.g., TCI state A or TCI state B can be determined for a CCE index) or a PDCCH candidate, randomization can be achieved.

[0117] In some embodiments, the terminal device 120: TIFF0007743864000014.tifWhen it is configured to have two TCI states for 945 PDCCH candidates (or search space s or CORESET), the first TCI state is applied to the PDCCH candidate in TIFF0007743864000015.tif645, and If TIFF0007743864000016.tif1359, the second TCI state is applied to the PDCCH candidate, otherwise, the second TCI state is applied to the PDCCH candidate, and N CCE is the number of CCEs in the PDCCH candidate CORESET, and n CCE,0 teeth is the index of the first CCE for the PDCCH candidate in TIFF0007743864000017.tif646, TIFF0007743864000018.tif745 TIFF0007743864000019.tif545 is the index of the first CCE for the PDCCH candidate.

[0118] In communication network 100, network device 110 may transmit DCI to terminal device 120 on multiple PDCCH candidates for scheduling the same PDSCH (e.g., the same data or the same transport block) or the same SPS PDSCH release. Terminal device 120 may perform monitoring on the PDCCH candidates and detect DCI on one or more PDCCH candidates from network device 110. For example, the DCI may not be detected by terminal device 120 or may be detected on one or more of the PDCCH candidates. Network device 110 may transmit a PDSCH to terminal device 120. In response to the DCI being detected on the PDCCH candidate, terminal device 120 may decode the PDSCH transmitted from network device 110. Meanwhile, in response to detecting a DCI or DCI format that schedules a physical downlink shared channel (PDSCH) reception or a semi-persistent scheduling (SPS) PDSCH release, the terminal device 120 can provide hybrid automatic repeat request (HARQ)-acknowledgement (ACK) information within a PUCCH transmission.

[0119] However, the present inventors have noticed that there is no solution for how to design CCE indexes for PUCCH resources for repeated PDCCHs or multi-chance PDCCHs for linked / associated PDCCH candidates (i.e., PDCCHs used for repeated PDCCHs) that receive the same data. Meanwhile, there are other scenarios (e.g., frequency hopping) that require appropriate design of PUCCH resources.

[0120] Therefore, embodiments of the present disclosure provide a solution for solving the above problem and / or one or more other potential problems, in which a terminal device receives a PDCCH having DCI on a first PDCCH candidate, and then determines resources for transmitting feedback information based on an index of a first control channel element (CCE) for a second PDCCH candidate.

[0121] As a result, PDCCH candidates for the same PDSCH scheduling or SPS PDSCH release may be linked to the same PUCCH resource for HARQ-ACK feedback, thereby saving PUCCH resources and improving resource utilization efficiency.

[0122] Reference is now made to Figure 4, which illustrates a signaling flow 400 illustrating a process for determining PUCCH index resources in accordance with some embodiments of the present disclosure. For illustrative purposes, the signaling flow 400 will be described with reference to Figure 1. The signaling flow 400 may involve the terminal device 120 and the network device 110, as shown in Figure 1.

[0123] In signaling flow 400, network device 120 transmits (402) a PDCCH with DCI to terminal device 110 on a first PDCCH candidate. Terminal device 120 receives (404) the PDCCH with DCI on the first PDCCH candidate, and terminal device 120 determines (406) resources for receiving feedback information based on an index of a first CCE for a second PDCCH candidate. Meanwhile, network device 120 can also determine resources for transmitting feedback information based on an index of the first CCE for the second PDCCH candidate.

[0124] With the above method, PDCCH candidates for the same PDSCH scheduling or SPS PDSCH release can be linked to the same PUCCH resource for HARQ-ACK feedback, thereby saving PUCCH resources and improving resource utilization efficiency, especially for associated or linked PDCCH candidates.

[0125] In some embodiments, the terminal device 120 can determine resources for receiving feedback information based on an index of a first control channel element (CCE) for the second PDCCH candidate and at least one of the number of CCEs in a first CORESET of the first PDCCH candidate, the number of CCEs in a second CORESET of the second PDCCH candidate, and the value of a PUCCH resource indicator field in the DCI.

[0126] In some embodiments, terminal device 120 may also determine resources for receiving feedback information based on association information (e.g., parameters) related to the first PDCCH candidate, which may indicate an association between the first PDCCH candidate and the second PDCCH candidate, an association between a first search space for the first PDCCH candidate and the second search space for the second PDCCH candidate, an association between the first CORESET and the second CORESET, or whether the PDCCH candidate is repeatedly used for the PDCCH.

[0127] In the following section, a more specific example is given of how to determine resources for receiving feedback information.

[0128] In some embodiments, when terminal device 120 provides HARQ-ACK information in a PUCCH transmission in response to detecting a DCI format that schedules PDSCH reception or SPS PDSCH release, terminal device 120 may use index r PUCCH and a PUCCH resource having 0≦r PUCCH ≦15. TIFF0007743864000020.tif1092 where N CCE,r is the number of CCEs in the CORESET (linked / associated to the CORESET of the PDCCH reception with DCI format) as described in clause 10.1, and n CCE,r is the index of the first CCE for the PDCCH candidate (linked / associated with the PDCCH candidate for PDCCH reception), and if the DCI format is monitored within a CORESET (and / or search space and / or PDCCH candidate) (configured (e.g., repeated or linked) in parameter R1, or configured to be linked / associated with (another) CORESET (and / or search space and / or PDCCH candidate)), Δ PRIis the value of the PUCCH resource indicator field in the DCI format. Otherwise, the following equation (3) applies: TIFF0007743864000021.tif1389 where N CCE is the number of CCEs in the CORESET of the PDCCH reception with DCI format as described in clause 10.1, and n CCE,0 is the index of the first CCE for PDCCH reception, and Δ PRI is the value of the PUCCH resource indicator field in the DCI format.

[0129] In the following section, another method for determining the CCE index for the PUCCH resource for a recurring PDCCH or a multi-chance PDCCH is described.

[0130] Reference is now made to Figure 5, which illustrates a signaling flow 500 illustrating a process for determining PUCCH index resources in accordance with some embodiments of the present disclosure. For illustrative purposes, the signaling flow 500 will be described with reference to Figure 1. The signaling flow 500 may involve the terminal device 120 and the network device 110, as shown in Figure 1.

[0131] In signaling flow 500, network device 110 transmits (501) a PDCCH with DCI to terminal device 120 on a PDCCH candidate. Terminal device 120 receives (502) the PDCCH with DCI on the PDCCH candidate. Terminal device 120 then determines (504) a resource for transmitting feedback information based on at least the offset, the index of the first CCE for the PDCCH candidate, the number of CCEs in the CORESET of the PDCCH candidate, and the value of the PUCCH resource indicator field in the DCI.

[0132] With the above solution, PDCCH candidates for the same PDSCH scheduling or SPS PDSCH release can be linked to the same PUCCH resource for HARQ-ACK feedback, thereby saving PUCCH resources and improving resource utilization efficiency, especially for associated or linked PDCCH candidates.

[0133] In some embodiments, when the terminal device 120 provides HARQ-ACK information in a PUCCH transmission in response to detecting a DCI format for scheduling PDSCH reception or SPS PDSCH release, the terminal device may use the index r PUCCH and a PUCCH resource having 0≦r PUCCH ≦15. TIFF0007743864000022.tif987TIFF0007743864000023.tif13107 TIFF0007743864000024.tif13113 TIFF0007743864000025.tif985 TIFF0007743864000026.tif10117 TIFF0007743864000027.tif9117 where N CCE is the number of CCEs in the CORESET of the PDCCH reception with DCI format as described in clause 10.1, and n CCE,0 is the index of the first CCE for PDCCH reception, and n offset is configured by a higher layer parameter, and if a DCI format is monitored within a CORESET (and / or search space and / or PDCCH candidate) (configured in parameter X (e.g., repeated or linked) or configured to be linked / associated with a (different) CORESET (and / or search space and / or PDCCH candidate)), Δ PRIis the value of the PUCCH resource indicator field in the DCI format. Otherwise, the following equation (10) applies: TIFF0007743864000028.tif1274 where N CCE is the number of CCEs in the CORESET of the PDCCH reception with DCI format as described in clause 10.1, and n CCE,0 is the index of the first CCE for PDCCH reception, and Δ PRI is the value of the PUCCH resource indicator field in the DCI format.

[0134] In some embodiments, the offset can be configured by RRC, MAC CE, and DCI. Taking RRC as an example, the offset may be transmitted from the network device to the terminal device 120 as follows: TIFF0007743864000029.tif93152

[0135] In some examples, the offset is (0, 1, ... N CCE The offset may be set in the range of (0, 1). For example, the offset may be the offset of the CCE index. Alternatively, the offset may have a range of (0, 1).

[0136] In some embodiments, the offset may be determined / calculated based on an offset between an index of a first CCE (e.g., nCCE,0) for PDCCH reception monitored within a first PDCCH candidate and an index of a first CCE (e.g., nCCE,r) for a second PDCCH candidate. The second PDCCH candidate is configured to be linked / associated with the first PDCCH candidate. For example, the slot duration is n offset =n CCE,r -n CCE,0 may be.

[0137] 6 is a flowchart of an example method 600 according to some embodiments of the present disclosure. Method 600 may be performed in terminal device 120, such as that shown in FIG. 1. It should be understood that method 600 may include additional blocks not shown and / or omit some blocks shown, and the scope of the disclosure is not limited in this respect. For purposes of explanation, method 600 will be described with reference to FIG. 1 from the perspective of terminal device 120.

[0138] In block 610, the terminal device determines a transmission configuration indicator (TCI) state for a physical downlink control channel (PDCCH) candidate based on at least one of an index of the PDCCH candidate and an index of a control channel element (CCE) of the PDCCH candidate, and in block 620, the terminal device monitors the PDCCH candidate based on the TCI state.

[0139] In some embodiments, the PDCCH candidate is one of a plurality of PDCCH candidates for an aggregation level in a search space set.

[0140] In some embodiments, the TCI state is at least one of a first TCI state from a set of two TCI states and a second TCI state from the set of two TCI states.

[0141] In some embodiments, if the index of the PDCCH candidate belongs to the first set, the TCI state is the first TCI state.

[0142] In some embodiments, if the index of the PDCCH candidate belongs to the second set, the TCI state is the second TCI state.

[0143] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that a first condition regarding an index of a PDCCH candidate is satisfied, and determining a second TCI state as the TCI state in accordance with a determination that the first condition is not satisfied.

[0144] In some embodiments, the first condition is whether the index of the PDCCH candidate is an even number.

[0145] In some embodiments, determining the TCI state includes determining the TCI state based on an index of the PDCCH candidate and a number of PDCCH candidates in the search space set.

[0146] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that a second condition relating to both an index of a PDCCH candidate and a number of PDCCH candidates in a search space set is satisfied, and determining a second TCI state as the TCI state in accordance with a determination that the second condition is not satisfied.

[0147] In some embodiments, the second condition is whether the index of the PDCCH candidate is less than or equal to a first predetermined index.

[0148] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that a third condition of the index of the CCE is satisfied, and determining a second TCI state as the TCI state in accordance with a determination that the third condition is not satisfied.

[0149] In some embodiments, the third condition is whether the index of the CCE is less than or equal to a first predetermined index.

[0150] In some embodiments, the third condition is whether the index of the CCE is an even number.

[0151] In some embodiments, determining the TCI state includes determining the TCI state based on an index of the CCE and a number of CCEs in the search space set.

[0152] In some embodiments, the TCI state is further determined based on a first index of a CCE of a first PDCCH candidate in the set of PDCCH candidates.

[0153] In some embodiments, the TCI state is determined based on a first index of a CCE of a first PDCCH candidate in the set of PDCCH candidates and an index of the CCE of the PDCCH candidate.

[0154] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that an index of a CCE of the PDCCH candidate and a first index of a CCE of the first PDCCH candidate belong to the same CCE set, and determining a second TCI state as the TCI state in accordance with a determination that an index of a CCE of the PDCCH candidate and a first index of a CCE of the first PDCCH candidate belong to different CCE sets.

[0155] In some embodiments, the first PDCCH candidate is the PDCCH candidate in the set of PDCCH candidates that has the lowest PDCCH candidate index value.

[0156] In some embodiments, the first PDCCH candidate is the PDCCH candidate in the set of PDCCH candidates that has a PDCCH candidate index value of zero.

[0157] In some embodiments, the CCE of the first PDCCH candidate is the CCE with the lowest CCE index value in the CCE set corresponding to the first PDCCH candidate.

[0158] 7 is a flowchart of an example method 700 according to some embodiments of the present disclosure. Method 700 may be implemented in network device 110 such as that shown in FIG. 1. It should be understood that method 800 may include additional blocks not shown and / or omit some blocks shown, and the scope of the disclosure is not limited in this respect. For purposes of explanation, method 700 will be described with reference to FIG. 1 from the perspective of network device 110.

[0159] In block 710, the network device determines a transmission configuration indicator (TCI) state for a physical downlink control channel (PDCCH) candidate based on at least one of an index of the PDCCH candidate and an index of a control channel element (CCE) of the PDCCH candidate. Then, in block 720, the network device sends a PDCCH transmission on the PDCCH candidate to the terminal device based on the TCI state.

[0160] In some embodiments, the PDCCH candidate is one of a plurality of PDCCH candidates for an aggregation level in a search space set.

[0161] In some embodiments, the TCI state is at least one of a first TCI state from a set of two TCI states and a second TCI state from the set of two TCI states.

[0162] In some embodiments, if the index of the PDCCH candidate belongs to the first set, the TCI state is the first TCI state.

[0163] In some embodiments, if the index of the PDCCH candidate belongs to the second set, the TCI state is the second TCI state.

[0164] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that a first condition regarding an index of a PDCCH candidate is satisfied, and determining a second TCI state as the TCI state in accordance with a determination that the first condition is not satisfied. Includes.

[0165] In some embodiments, the first condition is whether the index of the PDCCH candidate is an even number.

[0166] In some embodiments, determining the TCI state includes determining the TCI state based on an index of the PDCCH candidate and a number of PDCCH candidates in the search space set.

[0167] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that a second condition related to both an index of a PDCCH candidate and a number of PDCCH candidates in a search space set is satisfied, and determining a second TCI state as the TCI state in accordance with a determination that the second condition is not satisfied. Includes.

[0168] In some embodiments, the second condition is whether the index of the PDCCH candidate is less than or equal to a first predetermined index.

[0169] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that a third condition of an index of a CCE is satisfied, and determining a second TCI state as the TCI state in accordance with a determination that the third condition is not satisfied. Includes.

[0170] In some embodiments, the third condition is whether the index of the CCE is less than or equal to a first predetermined index.

[0171] In some embodiments, the third condition is whether the index of the CCE is an even number.

[0172] In some embodiments, determining the TCI state includes determining the TCI state based on an index of the CCE and a number of CCEs in the search space set.

[0173] In some embodiments, the TCI state is further determined based on a first index of a CCE of a first PDCCH candidate in the set of PDCCH candidates.

[0174] In some embodiments, the TCI state is determined based on a first index of a CCE of a first PDCCH candidate in the set of PDCCH candidates and an index of the CCE of the PDCCH candidate.

[0175] In some embodiments, determining the TCI state includes determining a first TCI state as the TCI state in accordance with a determination that an index of a CCE of the PDCCH candidate and a first index of a CCE of the first PDCCH candidate belong to the same CCE set, and determining a second TCI state as the TCI state in accordance with a determination that an index of a CCE of the PDCCH candidate and a first index of a CCE of the first PDCCH candidate belong to different CCE sets.

[0176] In some embodiments, the first PDCCH candidate is the PDCCH candidate in the set of PDCCH candidates that has the lowest PDCCH candidate index value.

[0177] In some embodiments, the first PDCCH candidate is the PDCCH candidate in the set of PDCCH candidates that has a PDCCH candidate index value of zero.

[0178] In some embodiments, the CCE of the first PDCCH candidate is the CCE with the lowest CCE index value in the CCE set corresponding to the first PDCCH candidate.

[0179] 8 is a flowchart of an example method 800 according to some embodiments of the present disclosure. Method 800 may be performed in terminal device 120, such as that shown in FIG. 1. It should be understood that method 800 may include additional blocks not shown and / or omit some blocks shown, and the scope of the disclosure is not limited in this respect. For purposes of explanation, method 800 will be described with reference to FIG. 1 from the perspective of terminal device 120.

[0180] In block 810, the terminal device receives a physical downlink control channel (PDCCH) having downlink control information (DCI) on a first PDCCH candidate. Then, in block 820, the terminal device determines resources for transmitting feedback information based on an index of a first control channel element (CCE) for a second PDCCH candidate.

[0181] In some embodiments, determining resources for transmitting the feedback information includes determining resources for transmitting the feedback information based on an index of a first control channel element (CCE) for the second PDCCH candidate and at least one of the number of CCEs in a first CORESET of the first PDCCH candidate, the number of CCEs in a second CORESET of the second PDCCH candidate, and a value of a PUCCH resource indicator field in the DCI.

[0182] In some embodiments, determining resources for transmitting the feedback information includes determining resources for transmitting the feedback information based on association information related to the first PDCCH candidate.

[0183] In some embodiments, the association information indicates at least one of an association between a first PDCCH candidate and a second PDCCH candidate, an association between a first search space for the first PDCCH candidate and a second search space for the second PDCCH candidate, an association between a first CORESET and a second CORESET, and whether the PDCCH candidate is used for a recurring PDCCH.

[0184] In some embodiments, determining resources for transmitting the feedback information includes determining resources for transmitting the feedback information based on an index of the first CCE for the second PDCCH candidate, a value of a PUCCH resource indicator field in the DCI, and at least one of the number of CCEs in the first CORESET and the number of CCEs in the second CORESET.

[0185] In some embodiments, the first CCE for the second PDCCH candidate is the CCE with the lowest CCE index value in the CCE set corresponding to the second PDCCH candidate.

[0186] 9 is a flowchart of an example method 900 according to some embodiments of the present disclosure. Method 900 may be implemented in network device 110 such as that shown in FIG. 1. It should be understood that method 800 may include additional blocks not shown and / or omit some blocks shown, and the scope of the disclosure is not limited in this respect. For purposes of explanation, method 900 will be described with reference to FIG. 1 from the perspective of network device 110.

[0187] In block 910, the network device transmits a physical downlink control channel (PDCCH) having downlink control information (DCI) to the terminal device on a first PDCCH candidate. Then, in block 920, the network device determines resources for receiving feedback information based on an index of a first control channel element (CCE) for a second PDCCH candidate.

[0188] In some embodiments, determining resources for receiving the feedback information includes determining resources for receiving the feedback information based on an index of a first control channel element (CCE) for the second PDCCH candidate and at least one of the number of CCEs in a first CORESET of the first PDCCH candidate, the number of CCEs in a second CORESET of the second PDCCH candidate, and a value of a PUCCH resource indicator field in the DCI.

[0189] In some embodiments, determining resources for receiving the feedback information includes determining resources for receiving the feedback information based on association information related to the first PDCCH candidate.

[0190] In some embodiments, the association information indicates at least one of an association between a first PDCCH candidate and a second PDCCH candidate, an association between a first search space for the first PDCCH candidate and a second search space for the second PDCCH candidate, an association between a first CORESET and a second CORESET, and whether the PDCCH candidate is repeatedly used for the PDCCH.

[0191] In some embodiments, determining resources for receiving the feedback information includes determining resources for receiving the feedback information based on an index of the first CCE for the second PDCCH candidate, a value of a PUCCH resource indicator field in the DCI, and at least one of the number of CCEs in the first CORESET and the number of CCEs in the second CORESET.

[0192] In some embodiments, the first CCE for the second PDCCH candidate is the CCE with the lowest CCE index value in the CCE set corresponding to the second PDCCH candidate.

[0193] 10 is a flowchart of an example method 1000 according to some embodiments of the present disclosure. Method 1000 may be performed in terminal device 120, such as that shown in FIG. 1. It should be understood that method 1000 may include additional blocks not shown and / or omit some blocks shown, and the scope of the disclosure is not limited in this respect. For purposes of explanation, method 1000 will be described with reference to FIG. 1 from the perspective of terminal device 120.

[0194] In block 1010, the terminal device receives a physical downlink control channel (PDCCH) with downlink control information (DCI) on a PDCCH candidate. Then, in block 1020, the terminal device determines resources for transmitting feedback information based on at least an offset, an index of the first CCE for the PDCCH candidate, the number of CCEs in a control resource set (CORESET) of the PDCCH candidate, and a value of a PUCCH resource indicator field in the DCI.

[0195] In some embodiments, the method further includes obtaining the offset via at least one of a radio resource control (RRC) message, a media access control control element (MAC-CE) message, and a DCI.

[0196] In some embodiments, the first CCE for a PDCCH candidate is the CCE with the lowest CCE index value in the CCE set corresponding to the PDCCH candidate.

[0197] In some embodiments, network device 110 may configure terminal device 120 with a first set of PDCCH candidates (or PDCCH candidate A) and a second set of PDCCH candidates (or PDCCH candidate B). In some embodiments, the first set of PDCCH candidates (or PDCCH candidate A) and the second set of PDCCH candidates (or PDCCH candidate B) may correspond to the same aggregation level. In some embodiments, the first set of PDCCH candidates (or PDCCH candidate A) and the second set of PDCCH candidates (or PDCCH candidate B) may correspond to the same aggregation level within the same search space set.

[0198] In some embodiments, the first set of PDCCH candidates (or PDCCH candidate A) and the second set of PDCCH candidates (or PDCCH candidate B) may be in the same search space set. In some embodiments, the first set of PDCCH candidates (or PDCCH candidate A) may be in the first search space set, and the second set of PDCCH candidates (or PDCCH candidate B) may be in the second search space set. The first search space set and the second search space set are associated with the same CORESET. For example, the first search space set and the second search space set are different. In some embodiments, the first set of PDCCH candidates (or PDCCH candidate A) may be in the first search space set, and the second set of PDCCH candidates (or PDCCH candidate B) may be in the second search space set. The first search space set is associated with the first CORESET, and the second search space set is associated with the second CORESET. For example, the first CORESET and the second CORESET are different.

[0199] In some embodiments, the network device 110 can set, for the terminal device 120, a first set of PDCCH candidates (or PDCCH candidate A) and a second set of PDCCH candidates (or PDCCH candidate B). In some embodiments, the first set of PDCCH candidates (or PDCCH candidate A) may correspond to an aggregation level L1, where L1 is a positive integer. For example, L1 may be at least one of {1, 2, 4, 8, 16}. In some embodiments, the second set of PDCCH candidates (or PDCCH candidate B) may correspond to an aggregation level L2, where L2 is a positive integer. For example, L2 may be at least one of {1, 2, 4, 8, 16}. In some embodiments, L1 may be the same as L2. In some embodiments, L1 may be different from L2.

[0200] In some embodiments, the first set of PDCCH candidates (or PDCCH candidate A) may be set within a first search space set (e.g., set S1, where S1 is a non - negative integer. For example, 0 ≤ S1 ≤ 39. For another example, 0 < S1 < 40). In some embodiments, the second set of PDCCH candidates (or PDCCH candidate B) may be set within a second search space set (e.g., set S2, where S2 is a non - negative integer. For example, 0 ≤ S2 ≤ 39. For another example, 0 < S2 < 40). In some embodiments, S1 may be the same as S2. In some embodiments, S1 may be different from S2.

[0201] In some embodiments, the first search space set S1 and the second search space set S2 may be associated with the same CORESET. In some embodiments, the first search space set S1 may be associated with a first CORESET (e.g., C1, where C1 is a non-negative integer, e.g., 0≦C1<16). In some embodiments, the second search space set S2 may be associated with a second CORESET (e.g., C2, where C2 is a non-negative integer, e.g., 0≦C2<16). In some embodiments, C1 may be the same as C2. In some embodiments, C1 may be different from C2.

[0202] In some embodiments, one PDCCH candidate in a first set of M1 PDCCH candidates (M1 is a positive integer, for example, 1≦M1≦8) is m s1 may be indexed by m s1 is a non-negative integer. For example, m s1 ∈(0, 1, ...M1-1). In some embodiments, one PDCCH candidate in a second set of M2 PDCCH candidates (M2 is a positive integer, e.g., 1≦M2≦8) is s2 may be indexed by m s2 is a non-negative integer. For example, m s2 ∈(0, 1, ...M2-1). In some embodiments, the value of M1 may be the same as the value of M2.

[0203] In some embodiments, the index m in the first set of M1 PDCCH candidates s1 (For example, 1≦m s1 ≦M1) and the index m in the second set of PDCCH candidates s2 =m s1 (For example, 1≦m s2 In some embodiments, the PDCCH candidates with index m in the first set of M1 PDCCH candidates may be associated and / or linked to each other. s1 (For example, 1≦m s1≦M1) and the DCI in the PDCCH on the PDCCH candidates with index m in the second set of PDCCH candidates s2 =m s1 (For example, 1≦m s2 DCI in the PDCCH on PDCCH candidates with index m in the second set of M2 PDCCH candidates may be used to schedule the same communication, for example, when M1 ≤ M2. s2 (For example, M1 <m s2 For a PDCCH candidate with M1 PDCCH candidates (M1 PDCCH candidates), the PDCCH candidate may not be associated and / or linked to any of the PDCCH candidates in the first set of M1 PDCCH candidates.

[0204] In some embodiments, the index m in the first set of M1 PDCCH candidates s1 =m s2 (For example, 1≦m s1 ≦M2) and the index m in the second set of PDCCH candidates s2 (For example, 1≦m s2 In some embodiments, the PDCCH candidates with index m in the first set of M1 PDCCH candidates may be associated and / or linked to each other. s1 =m s2 (For example, 1≦m s1 ≦M2) and the DCI in the PDCCH on the PDCCH candidates with index m in the second set of PDCCH candidates s2 (For example, 1≦m s2 DCI in the PDCCH on PDCCH candidates with index m in the first set of M1 PDCCH candidates may be used to schedule the same communication, for example, when M2 ≤ M1. s1 (For example, M2 <m s1 For a PDCCH candidate with M1≦M1, the PDCCH candidate may not be associated and / or linked to any of the PDCCH candidates in the second set of M2 PDCCH candidates.

[0205] In some embodiments, the index m in the first set of M1 PDCCH candidates s1 =m sr (For example, 1≦m sr ≦min(M1,M2)) and the index m in the second set of PDCCH candidates s2 =m sr (For example, 1≦m sr ≦min(M1,M2)) may be associated and / or linked to each other. In some embodiments, the index m in the first set of M1 PDCCH candidates s1 =m sr (For example, 1≦m sr ≦min(M1,M2)) and the DCI in the PDCCH on the PDCCH candidates with index m in the second set of PDCCH candidates s2 =m sr (For example, 1≦m sr DCI in the PDCCH on PDCCH candidates with index m in the first set of M PDCCH candidates may be used to schedule the same communication. s1 (m s1 For a PDCCH candidate with index m in the second set of M2 PDCCH candidates, the PDCCH candidate may not be associated and / or linked to any of the PDCCH candidates in the second set of M2 PDCCH candidates. s2 (m s2 >min(M1, M2)), the PDCCH candidate may not be associated and / or linked to any of the PDCCH candidates in the first set of M1 PDCCH candidates.

[0206] In some embodiments, the index m in the first set of M1 PDCCH candidates s1 and an index m in the second set of PDCCH candidates s2 =(m s1+K) mod M1 may be associated and / or linked to each other, for example, when M1≦M2. In some embodiments, the index m in the first set of M1 PDCCH candidates s1 and the DCI in the PDCCH on the PDCCH candidate with index m in the second set of PDCCH candidates. s2 =(m s1 +K) mod M1 may be used to schedule the same communication, e.g., when M1≦M2. In some embodiments, the DCI in the PDCCH on the PDCCH candidate with index m in the first set of M1 PDCCH candidates s1 =(m s2 +K) mod M2 and an index m in the second set of M2 PDCCH candidates s2 M1 PDCCH candidates may be associated and / or linked with each other, for example, when M1≦M2. In some embodiments, the index m s1 =(m s2 +K) mod M2 and the DCI in the PDCCH on the PDCCH candidate with index m in the second set of M2 PDCCH candidates s2 DCI in the PDCCH on a PDCCH candidate having M1<M2 may be used to schedule the same communication, for example, when M1<M2.

[0207] In some embodiments, the communication may include communication of at least one of PDSCH reception, SPS PDSCH release, PUSCH, PUCCH, CSI-RS, aperiodic CSI-RS, zero power (ZP) CSI-RS, aperiodic ZP CSI-RS, SRS, aperiodic SRS, CSI reporting, aperiodic CSI reporting, HARQ feedback (ACK or NACK), power control information, transmit power control (TPC) information, and the like.

[0208] In some embodiments, K is a non-negative integer. For example, K∈(0, 1, ...M-1). In some embodiments, K may be set by at least one of RRC, MAC-CE, and DCI. In some embodiments, K may be ceil((M-1) / 2) or floor((M-1) / 2). In some embodiments, K may be 0, 1, or 2.

[0209] In some embodiments, network device 110 may transmit to terminal device 120 a configuration indicating a first set of PDCCH candidates (or PDCCH candidate A) associated with / linked to a second set of PDCCH candidates (or PDCCH candidate B). In some embodiments, network device 110 may transmit to terminal device 120 a configuration indicating a first search space set S1 associated with / linked to a second search space set S2. In some embodiments, network device 110 may transmit to terminal device 120 a configuration indicating a first CORESET C1 associated with / linked to a second CORESET C2. In some embodiments, first CORESET C1 and / or first search space set S1 and / or first set of PDCCH candidates and / or PDCCH candidate A may be configured to have a parameter R1 (which may be, for example, “repeated” or “repetition” or “linked” in RRC and / or MAC CE). In some embodiments, the second CORESET C2 and / or the second search space set S2 and / or the second set of PDCCH candidates and / or the PDCCH candidates B may be configured to have a parameter R2 (which may be, for example, “repeated” or “repetition” or “linked” or “first” or “initial” in RRC and / or MAC CE). For example, the first and second sets of PDCCH candidates are configured to schedule at least one of the same PDSCH, the same data, or the same transport block, the same PUSCH, the same uplink data, the same downlink data, the same uplink transport block, the same downlink transport block, the same aperiodic CSI-RS transmission / reception, the same aperiodic SRS transmission / reception, the same PUCCH, and the same CSI feedback. For example, this configuration may be transmitted via any of RRC signaling, MAC CE, and DCI. In some embodiments, the network device 110 may configure the third set of PDCCH candidates (or the PDCCH candidates C) to the terminal device 120.In some embodiments, the third set of PDCCH candidates (or PDCCH candidates C) may be configured within a third search space set S3. In some embodiments, the third search space S3 may be associated with a third CORESET C3. In some embodiments, the third set of PDCCH candidates (or PDCCH candidates C) and / or the third search space set S3 and / or the third CORESET C3 are not associated with any other PDCCH candidates and / or any other search space sets and / or any other CORESETs. In some embodiments, the third set of PDCCH candidates (or PDCCH candidates C) and / or the third search space set S3 and / or the third CORESET C3 are not configured to have parameter R1 and / or are not configured to have parameter R2.

[0210] In some embodiments, the first set of PDCCH candidates is different from the second set of PDCCH candidates. In some embodiments, PDCCH candidate A is different from PDCCH candidate B.

[0211] In some embodiments, at the terminal device, DCI received in a PDCCH monitored on the first set of PDCCH candidates (or PDCCH candidate A) may be used to schedule a communication. In some embodiments, the communication may include at least one of a PDSCH reception, an SPS PDSCH release, a PUSCH, a PUCCH, a CSI-RS, an aperiodic CSI-RS, a zero power (ZP) CSI-RS, an aperiodic ZP CSI-RS, an SRS, an aperiodic SRS, a CSI report, an aperiodic CSI report, a HARQ feedback (ACK or NACK), power control information, transmit power control (TPC) information, etc.

[0212] In some embodiments, the terminal device may provide HARQ-ACK information in a PUCCH transmission in response to detecting a DCI scheduling PDSCH reception or SPS PDSCH release, and ... an index r PUCCHand determine the PUCCH resource having r PUCCH is a non-negative integer. For example, 0≦r PUCCH In some embodiments, the detected DCI is received in a PDCCH on one of the first set of PDCCH candidates (or PDCCH candidate A). PUCCH The value of may be determined based on at least one of: an index of the first CCE for one of the second set of PDCCH candidates (or PDCCH candidate B); the number of CCEs in the first CORESET (e.g., CORESET C1 associated with the first search space, and the first set of PDCCH candidates (or PDCCH candidate A) is included in the first search space); the number of CCEs in the second CORESET (e.g., CORESET C2 associated with the second search space, and the second set of PDCCH candidates (or PDCCH candidate B) is included in the second search space); and the value of the PUCCH resource indicator field in the DCI.

[0213] In some embodiments, if terminal device 120 provides HARQ-ACK information in a PUCCH transmission in response to detecting DCI scheduling PDSCH reception or SPS PDSCH release (e.g., the DCI is in a PDCCH monitored in one of the first set of PDCCH candidates (or PDCCH candidate A)), terminal device 120: Index r, such as TIFF0007743864000030.tif1364 PUCCH and a PUCCH resource having 0≦r PUCCH ≦15, where n CCE,r is the index of the first CCE for the second set of PDCCH candidates (or PDCCH candidate B), and Δ PRI is the value of the PUCCH resource indicator field in the DCI. CCE,ris the number of CCEs in a first CORESET (e.g., CORESET C1 associated with a first search space, where the first set of PDCCH candidates (or PDCCH candidate A) is included in the first search space). In some embodiments, N CCE,r is the number of CCEs in a second CORESET (e.g., CORESET C2 associated with a second search space, where the second set of PDCCH candidates (or PDCCH candidate B) is included in the second search space).

[0214] In some embodiments, terminal device 120 provides HARQ-ACK information in a PUCCH transmission in response to detecting DCI scheduling PDSCH reception or SPS PDSCH release. In some embodiments, if the DCI is in a PDCCH monitored in one of the first set of PDCCH candidates (or PDCCH candidate A), terminal device 120: Index r, such as TIFF0007743864000031.tif1364 PUCCH and a PUCCH resource having 0≦r PUCCH ≦15, where n CCE,r is the index of the first CCE for the second set of PDCCH candidates (or PDCCH candidate B), and Δ PRI is the value of the PUCCH resource indicator field in the DCI. Then, if the DCI is in a PDCCH monitored in one of the second and / or third sets of PDCCH candidates (or PDCCH candidate B or PDCCH candidate C), or if the DCI is not in a PDCCH monitored in one of the first set of PDCCH candidates (or PDCCH candidate A), the terminal device 120 Index r, such as TIFF0007743864000032.tif1264 PUCCH and a PUCCH resource having 0≦r PUCCH ≦15, where N CCE is the number of CCEs in the CORESET for PDCCH reception with DCI, and n CCE,0is the index of the first CCE for PDCCH reception, and Δ PRI is the value of the PUCCH resource indicator field in the DCI. CCE,r is the number of CCEs in a second CORESET (e.g., CORESET C2 associated with a second search space, where the second set of PDCCH candidates (or PDCCH candidate B) is included in the second search space).

[0215] In some embodiments, when terminal device 120 provides HARQ-ACK information in a PUCCH transmission in response to detecting a DCI scheduling a PDSCH reception or an SPS PDSCH release (e.g., the DCI is in a PDCCH monitored in one of the first set of PDCCH candidates (or PDCCH candidate A)), terminal device 120 may use index r as one of the following: PUCCH and a PUCCH resource having 0≦r PUCCH ≦15. TIFF0007743864000033.tif1389 TIFF0007743864000034.tif19114 TIFF0007743864000035.tif19125 TIFF0007743864000036.tif1284 TIFF0007743864000037.tif14119 TIFF0007743864000038.tif999 where N CCE is the number of CCEs in the CORESET for PDCCH reception with DCI, and n CCE,0 is the index of the first CCE for PDCCH reception, and Δ PRI is the value of the PUCCH resource indicator field in the DCI.

[0216] In some embodiments, terminal device 120 provides HARQ-ACK information in a PUCCH transmission in response to detecting a DCI that schedules a PDSCH reception or an SPS PDSCH release. In some embodiments, if the DCI is in a PDCCH monitored in one of the first set of PDCCH candidates (or PDCCH candidate A), terminal device 120 may use index r as one of the following: PUCCH and a PUCCH resource having 0≦r PUCCH ≦15. TIFF0007743864000039.tif1389 TIFF0007743864000040.tif19114TIFF0007743864000041.tif19125TIFF0007743864000042.tif1284TIFF0007743864000043.tif14119TIFF0007743864000044.tif999Where, N CCE is the number of CCEs in the CORESET for PDCCH reception with DCI, and n CCE,0 is the index of the first CCE for PDCCH reception, and Δ PRI is the value of the PUCCH resource indicator field in the DCI. Then, if the DCI is in a PDCCH monitored in one of the second and / or third sets of PDCCH candidates (or PDCCH candidate B or PDCCH candidate C), or if the DCI is not in a PDCCH monitored in one of the first set of PDCCH candidates (or PDCCH candidate A), the terminal device 120 Index r, such as TIFF0007743864000045.tif1264 PUCCH and a PUCCH resource having 0≦r PUCCH ≦15, where N CCE is the number of CCEs in the CORESET for PDCCH reception with DCI, and n CCE,0 is the index of the first CCE for PDCCH reception, and Δ PRI is the value of the PUCCH resource indicator field in the DCI.

[0217] In some embodiments, n offset is a non - negative integer. For example, 0 ≤ n offset ≤ N CCE is true. For another example, 0 ≤ n offset ≤ 1 is true.

[0218] In some embodiments, the terminal device may be configured to have M PDCCH candidates corresponding to an aggregation level (e.g., L. L is a positive integer. For example, L may be at least one of {1, 2, 4, 8, 16}) within a search space set (e.g., S. S is a non - negative integer. For example, 0 ≤ S ≤ 39. For another example, 0 < S < 40). M is a positive integer. For example, 1 ≤ M ≤ 8. For example, one of the M PDCCH candidates may be indexed by m s and m s is a non - negative integer. For example, m s ∈(0, 1, … M - 1). In some embodiments, the PDCCH candidate with index m s and the PDCCH candidate with index (m s + K) mod M may be associated and / or linked to each other. In some embodiments, the DCI in the PDCCH on the PDCCH candidate with index m s and the DCI in the PDCCH on the PDCCH candidate with index (m s + K) mod M may be used to schedule the same communication. In some embodiments, the communication may include at least one of PDSCH reception, SPS PDSCH release, PUSCH, PUCCH, CSI - RS, aperiodic CSI - RS, zero - power (ZP) CSI - RS, aperiodic ZP CSI - RS, SRS, aperiodic SRS, CSI reporting, aperiodic CSI reporting, HARQ feedback (ACK or NACK), power control information, transmission power control (TPC) information, etc.

[0219] In some embodiments, K is a non-negative integer. For example, K∈(0, 1, ...M-1). In some embodiments, K may be set by at least one of RRC, MAC-CE, and DCI. In some embodiments, K may be ceil((M-1) / 2) or floor((M-1) / 2). In some embodiments, K may be 1 or 2.

[0220] In some embodiments, if the value of M is an even integer, or if M mod 2=0, then the index m s and PDCCH candidates with index (m s +K) mod M may be associated and / or linked to each other. s and the DCI in the PDCCH on the PDCCH candidate with index (m s +K) mod M may be used to schedule the same communication.

[0221] In some embodiments, if the value of M is an odd integer, or if M mod 2=1 or M mod 2≠0, then the index m s (m s ∈(0,1,…M-2)) and PDCCH candidates with index (m s +K) mod M may be associated and / or linked to each other. s (m s ∈(0,1,…M-2)) and the DCI in the PDCCH on the PDCCH candidate with index (m s +K) mod M may be used to schedule the same communication. In some embodiments, K is a non-negative integer, and K may be (M-2) / 2. In some embodiments, K may be 1 or 2. In some embodiments, the index m sA PDCCH candidate with .DELTA..times ...

[0222] Figure 11 is a schematic block diagram of an apparatus 1100 suitable for implementing embodiments of the present disclosure. The apparatus 1100 may be considered as another exemplary implementation of the terminal device 120 or the network device 110 shown in Figure 1. Thus, the apparatus 1100 may be implemented in, or as at least a part of, the terminal device 120 or the network device 110.

[0223] As shown, the apparatus 1100 includes a processor 1110, a memory 1120 coupled to the processor 1110, a suitable transmitter (TX) and receiver (RX) 1140 coupled to the processor 1110, and a communication interface coupled to the TX / RX 1140. The memory 1110 stores at least a portion of a program 1130. The TX / RX 1140 is used for bidirectional communication. The TX / RX 1140 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, a 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.

[0224] The program 1130 is assumed to include program instructions that, when executed by an associated processor 1110, enable the device 1100 to operate in accordance with embodiments of the present disclosure, as described herein with reference to Figures 2-10. The embodiments herein may be implemented by computer software executable by the processor 1110 of the device 1100, by hardware, or by a combination of software and hardware. The processor 1110 may be configured to implement various embodiments of the present disclosure. Furthermore, the combination of the processor 1110 and the memory 1110 may form a processing means 1150 suitable for implementing various embodiments of the present disclosure.

[0225] Memory 1110 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 1110 is shown in device 1100, several physically distinct memory modules may be present within device 1100. Processor 1110 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. Device 1100 may have multiple processors, e.g., application-specific integrated circuit chips time-slaved to a clock that synchronizes the main processor.

[0226] 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 may be implemented in, by way of non-limiting example, hardware, software, firmware, special purpose circuits or logic, general purpose hardware or controller or other computing device, or any combination thereof.

[0227] 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 FIGS. 2 through 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, the program modules may be located in both local and remote storage media.

[0228] Program code for carrying out the methods of the present disclosure can be written in any combination of one or more programming languages. These program codes are 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 can 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.

[0229] The above-described program code may 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 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 compact disc read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the above.

[0230] 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 desired 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.

[0231] 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. means for detecting downlink control information (DCI) through physical downlink control channel (PDCCH) reception including a first PDCCH candidate and a second PDCCH candidate corresponding to a PDCCH repetition; and means for determining, in response to detecting the DCI, a physical uplink control channel (PUCCH) resource for transmitting hybrid automatic repeat request-acknowledgement (HARQ-ACK) information based on an index of a first control channel element (CCE) associated with either a first search space set to which the first PDCCH candidate corresponds or a second search space set to which the second PDCCH candidate corresponds; A terminal device including:

2. The PUCCH resource is further determined based on a number of CCEs in a control resource set (CORESET) associated with the one of the first search space set or the second search space set. The terminal device according to claim 1 .

3. The PUCCH resource is further determined based on a parameter used to link the first search space set and the second search space set. The terminal device according to claim 1 or 2.

4. The PUCCH resource is further determined based on a value of a PUCCH resource indicator field in the DCI. The terminal device according to any one of claims 1 to 3.

5. The first CCE is the CCE with the lowest CCE index value in a set of CCEs in the CORESET associated with the one of the first search space set or the second search space set. The terminal device according to claim 2 .

6. means for transmitting downlink control information (DCI) via a physical downlink control channel (PDCCH) transmission including a first PDCCH candidate and a second PDCCH candidate, the PDCCH transmission corresponding to a PDCCH repetition; a means for determining, in response to detecting the DCI, a physical uplink control channel (PUCCH) resource for hybrid automatic repeat request-acknowledgement (HARQ-ACK) information based on an index of a first control channel element (CCE) associated with either a first search space set to which the first PDCCH candidate corresponds or a second search space set to which the second PDCCH candidate corresponds; means for receiving the HARQ-ACK information; 1. A network device comprising:

7. The PUCCH resource is further determined based on a number of CCEs in a control resource set (CORESET) associated with the one of the first search space set or the second search space set. The network device according to claim 6 .

8. The PUCCH resource is further determined based on a parameter used to link the first search space set and the second search space set.

8. The network device according to claim 6 or 7.

9. The PUCCH resource is further determined based on a value of a PUCCH resource indicator field in the DCI.

9. A network device according to claim 6.

10. The first CCE is the CCE with the lowest CCE index value in a set of CCEs in the CORESET associated with the one of the first search space set or the second search space set. The network device according to claim 7.

11. 1. A method performed by a terminal device, comprising: Detecting downlink control information (DCI) through physical downlink control channel (PDCCH) reception including a first PDCCH candidate and a second PDCCH candidate corresponding to a PDCCH repetition; In response to detecting the DCI, determining a physical uplink control channel (PUCCH) resource for transmitting hybrid automatic repeat request-acknowledgement (HARQ-ACK) information based on an index of a first control channel element (CCE) associated with either a first search space set to which the first PDCCH candidate corresponds or a second search space set to which the second PDCCH candidate corresponds; A method comprising:

12. The PUCCH resource is further determined based on a number of CCEs in a control resource set (CORESET) associated with the one of the first search space set or the second search space set. The method of claim 11.

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