Method, user equipment and base station for communication

By determining a consistent offset for PDCCH repetitions, the method addresses the lack of specification in 3GPP for PDCCH repetition, improving the reliability and robustness of PDCCH and related channels through standardized offset information.

JP7729675B2Active Publication Date: 2025-08-26NEC CORP

Patent Information

Application Number
JP2022538839
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2019-12-23
Publication Date
2025-08-26
Estimated Expiration
2039-12-23

AI Technical Summary

Technical Problem

Current 3GPP specifications do not specify details for PDCCH repetition, leading to unclear methods for providing offset indications for PDSCH, A-CSI-RS, aperiodic ZP CSI-RS, PUSCH, aperiodic SRS, aperiodic CSI report, and HARQ feedback when PDCCH repetition is enabled, and the offset values in different repetitions are not standardized.

Method used

A method and device that enable both network and terminal devices to determine a real-time offset for PDCCH repetitions, allowing for reliable and robust communication by ensuring the same offset information is used across multiple repetitions, thereby improving the reliability and robustness of physical channels like PDCCH, PDSCH, and PUSCH.

Benefits of technology

The solution allows for improved reliability and robustness of PDCCH and other physical channels by enabling consistent offset determination across repetitions, enhancing communication reliability and reducing beam switching overhead.

✦ Generated by Eureka AI based on patent content.

Smart Images

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    Figure 0007729675000014
Patent Text Reader

Abstract

[0009] Embodiments of the present disclosure relate to a method, a device, and a computer storage medium for communications. The method includes transmitting, from a first device to a second device, multiple repetitions for a physical channel for scheduling communications between the first device and the second device, where the multiple PDCCH repetitions indicate the same offset information for the communications; determining a time offset between the repetition and the communications based on the same offset information and index information for an iteration in the multiple repetitions; and performing the communications with the second device based on the time offset. [0010] Embodiments of the present disclosure enable both a network device and a terminal device to obtain a real-time offset of a corresponding communication from the physical channel repetition, thereby improving the reliability and robustness of the physical channel.
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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 methods, devices and computer storage media for communications. [Background technology]

[0002] 3GPP Meeting RAN#86 has been studying ways to enhance support for multi-transmit / receive point (multi-TRP) deployments. For example, based on the reliability features of Release 16, it is proposed to specify and specify functions to improve the reliability and robustness of channels (except the physical downlink shared channel (PDSCH), the physical downlink control channel (PDCCH), the physical uplink shared channel (PUSCH), and the physical uplink control channel (PUCCH)) using multi-TRP and / or multi-panel. It is also proposed to specify and specify functions to enable the operation of multi-TRP between cells. It is also proposed to evaluate and specify enhancements to simultaneous multi-TRP transmission using multi-panel reception.

[0003] In 3GPP Meeting RAN1#98-99, it is proposed to support PDCCH repetition to improve the reliability and robustness of the PDCCH. That is, the reliability and robustness of the PDCCH can be improved by repeatedly transmitting a PDCCH signal (e.g., downlink control information) from a network device to a terminal device multiple times. However, details regarding PDCCH repetition have not been discussed or specified. Summary of the Invention [Problem to be solved by the invention]

[0004] Generally, exemplary embodiments of the present disclosure provide methods, devices, and computer storage media for communications. [Means for solving the problem]

[0005] In a first aspect, a communication method is provided, the method including: transmitting, from a first device to a second device, multiple repetitions for a physical channel for scheduling communication between the first device and the second device, the multiple repetitions indicating the same offset information for the communication; determining a time offset between the repetitions and the communication based on the same offset information and index information for an repetition in the multiple repetitions; and performing the communication with the second device based on the time offset.

[0006] In a second aspect, a communication method is provided, the method including: receiving, at a second device from a first device, a repetition for a physical channel for scheduling communication between the first device and the second device, the first device transmitting, to the second device, a plurality of repetitions for the physical channel, the plurality of repetitions including the received repetition and indicating same offset information for the communication; determining a time offset between the repetition and the communication based on the same offset information and index information for the repetition; and performing the communication with the first device based on the time offset.

[0007] In a third aspect, a communications device is provided, the device comprising: a processor; and a memory coupled to the processor. The memory stores instructions that, when executed by the processor, cause the device to perform operations including: transmitting, from the device to another device, multiple repetitions for a physical channel for scheduling communication between the device and the other device, the multiple repetitions indicating the same offset information for the communication; determining a time offset between the repetitions and the communication based on the same offset information and index information for an iteration in the multiple repetitions; and performing the communication with the other device based on the time offset.

[0008] In a fourth aspect, a communications device is provided, the device comprising: a processor; and a memory coupled to the processor. The memory stores instructions that, when executed by the processor, cause the device to perform operations including receiving a repetition for a physical channel from another device for scheduling communication between the device and the other device, the other device transmitting multiple repetitions for the physical channel to the device, the multiple repetitions including the received repetition, indicating same offset information for the communication; determining a time offset between the repetition and the communication based on the same offset information and index information for the repetition; and performing the communication with the other device based on the time offset.

[0009] In a fifth 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 aspect of the present disclosure.

[0010] In a sixth 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 second aspect of the present disclosure.

[0011] It should be understood that this Summary of the Invention is not intended to identify key or essential features of the embodiments of the present disclosure, nor is it intended to be used to limit the scope of the present disclosure. Other features of the present disclosure will be readily apparent through the following description. [Brief explanation of the drawings]

[0012] The above and other objects, features and advantages of the present disclosure will become more apparent through more detailed descriptions of several embodiments of the present disclosure in the accompanying drawings.

[0013] [Figure 1A] 1 illustrates an exemplary communication network in which embodiments of the present disclosure may be implemented. [Figure 1B] 1 illustrates an exemplary communication network in which embodiments of the present disclosure may be implemented.

[0014] [Figure 2] 1 is an exemplary signaling chart illustrating an exemplary process of communication according to some embodiments of the present disclosure.

[0015] [Figure 3] 1 illustrates an example of an embodiment of the present disclosure.

[0016] [Figure 4] 1 illustrates an example of an embodiment of the present disclosure.

[0017] [Figure 5] 1 shows a flowchart of an exemplary method according to some embodiments of the present disclosure.

[0018] [Figure 6] 1 shows a flowchart of an exemplary method according to some embodiments of the present disclosure.

[0019] [Figure 7] FIG. 1 is a schematic block diagram of a device suitable for implementing embodiments of the present disclosure.

[0020] Throughout the drawings, the same or similar reference numbers represent the same or similar elements. DETAILED DESCRIPTION OF THE INVENTION

[0021] The principles of the present disclosure will be described with reference to several exemplary embodiments. It should be understood that these embodiments are set forth for illustrative purposes only to aid those skilled in the art in understanding and practicing the present disclosure, and are not intended to imply any limitation on the scope of the present disclosure. The present disclosure described herein can be implemented in a variety of ways other than those described below.

[0022] In the following description and claims, unless defined otherwise, all technical and scientific terms used have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs.

[0023] As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. The term "comprises" and variations thereof are intended to be open-ended, meaning "including, but not limited to." The term "based on" is intended to mean "based at least in part on." The terms "some embodiments" and "one embodiment" are intended to mean "at least some embodiments." The term "another embodiment" is intended to mean "at least one other embodiment." Terms such as "first," "second," etc. may refer to different objects or the same object. The following content may include other definitions, both explicit and implicit.

[0024] In some instances, values, processes, or devices are referred to as "optimum," "lowest," "highest," "minimum," "maximum," etc. It should be understood that such descriptions are intended to indicate choices among multiple functional alternatives used, and that such choices are not necessarily better, smaller, higher, or more preferred than other choices.

[0025] As mentioned above, 3GPP Meetings RAN1#98-99 proposed supporting PDCCH repetition to improve the reliability and robustness of the PDCCH. That is, a PDCCH signal (e.g., downlink control information) can be repeatedly transmitted multiple times from a network device to a terminal device. Here, each transmission of a PDCCH signal can be referred to as one PDCCH repetition. However, details regarding PDCCH repetition have not been discussed or specified. Current 3GPP specifications for New Radio (NR) do not specify PDCCH repetition, but do specify some details related to the PDCCH.

[0026] TIFF0007729675000001.tif116168

[0027] TIFF0007729675000002.tif162168

[0028] The 3GPP specification TS38.214 specifies the time domain resource allocation used for the PDSCH. If the PDSCH reception of a user equipment (UE) is scheduled by downlink control information (DCI), the time domain resource assignment file value m of the DCI may provide the row index m+1 in the allocation table. The determination of the resource allocation table to be used is defined in section 5.1.2.1 of the 3GPP specification TS38.214. The indexed row defines the slot offset K0, the start and length indicator SLIV, or directly the start symbol S and the length L of the allocation, as well as the PDSCH mapping type assumed for PDSCH reception. TIFF0007729675000003.tif46168

[0029] The 3GPP specification TS38.214 specifies the time domain resource allocation used for the PUSCH. When a PUSCH transmission of a user equipment (UE) is scheduled by downlink control information (DCI), the time domain resource allocation file value m of the DCI may provide the row index m+1 in the allocation table. The determination of the resource allocation table to be used is defined in section 6.1.2.1 of the 3GPP specification TS38.214. The indexed row defines the slot offset K0, the start and length indicator SLIV, or directly the start symbol S and the length L of the allocation, as well as the PUSCH mapping type assumed for the PUSCH transmission. TIFF0007729675000004.tif32168

[0030] TIFF0007729675000005.tif76168

[0031] To support PDCCH repetition, several issues need to be resolved. For example, the DCI transmitted via the PDCCH can be used to schedule PDSCH transmission to a terminal device, trigger aperiodic channel state information reference signal (A-CSI-RS) transmission to a terminal device, indicate time / frequency resources for aperiodic ZP CSI-RS, schedule PUSCH transmission from a terminal device, trigger aperiodic measurement reference signal (SRS) transmission from a terminal device, trigger aperiodic channel state information (CSI) report transmission from a terminal device, and trigger hybrid automatic repeat request (HARQ) feedback from a terminal device. However, when repetition for PDCCH is enabled, it is unclear how to provide offset indication of PDSCH transmission to a terminal device, A-CSI-RS transmission to a terminal device, indication of time / frequency resources for aperiodic ZP CSI-RS to a terminal device, PUSCH transmission from a terminal device, aperiodic SRS transmission from a terminal device, aperiodic CSI report transmission from a terminal device, or HARQ feedback from a terminal device. Furthermore, if PDCCH repetition combinations are expected, the offset values ​​indicated in different PDCCH repetitions should be the same. However, if the offset values ​​indicated in different PDCCH repetitions are the same, it is unclear how to indicate real-time offsets for transmission and / or reception of corresponding channels / signals.

[0032]

[0009] Embodiments of the present disclosure provide a solution for solving the above-mentioned problems and / or one or more other potential problems. The solution allows both a network device and a terminal device to obtain a real-time offset of corresponding communications from physical channel repetitions, thereby improving the reliability and robustness of the physical channel. Because the payloads of different physical channel repetitions are the same, combining physical channel repetitions can improve the reliability and robustness of the physical channel. The principles and implementations of the present disclosure are described in detail below with reference to Figures 1A to 7.

[0033] 1A illustrates an exemplary communication network 100 in which embodiments of the present disclosure can be implemented. Network 100 includes a network device 110 and a terminal device 120 served by network device 110. Network 100 may provide one or more serving cells 102 to serve terminal device 120. It should be understood that the number of network devices, terminal devices, and / or serving cells is for illustrative purposes only and does not imply any limitations on the present disclosure. Network 100 may include any suitable number of network devices, terminal devices, and / or serving cells compatible with implementing implementations of the present disclosure.

[0034] As used herein, the term "terminal device" refers to any device having wireless or wired communication capabilities. Examples of terminal devices include, but are not limited to, user equipment (UE), personal computers, desktops, mobile phones, cell 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, vehicle-mounted devices for V2X communications (where X represents a pedestrian, vehicle, or infrastructure / network), imaging devices such as digital cameras, gaming devices, music storage and playback devices, and internet devices enabling wireless / wired internet access and browsing. For purposes of discussion, some embodiments will be described below with reference to a UE as an example of a terminal device 120.

[0035] As used herein, the term "network device" or "base station" (BS) refers to a device capable of providing or hosting a cell or coverage area over which terminal devices can communicate. Examples of network devices include, but are not limited to, a Node B (Node B or NB), an evolved Node B (eNode B 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 low power node such as a femto node, a pico node, etc.

[0036] In one embodiment, the terminal device 120 may be connected to a first network device and a second network device (not shown in FIG. 1A ). One of the first network device and the second network device may be a master node, and the other may be 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 related to the 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, first information may be transmitted from the first network device to the terminal device 120, and second information may be transmitted from the second network device directly to the terminal device 120 or via the first network device. In one embodiment, information related to a configuration of the terminal device configured by the second network device may be transmitted from the second network device via the first network device. Information related to the reconfiguration of the terminal device set by the second network device may be transmitted from the second network device to the terminal device directly or via the first network device, and may be transmitted via any of Radio Resource Control (RRC) signaling, Media Access Control (MAC) control elements (CE), or Downlink Control Information (DCI).

[0037] 1A, network device 110 can communicate data and control information to terminal device 120, and terminal device 120 can also communicate data and control information to network device 110. The link from network device 110 to terminal device 120 is referred to as the downlink (DL), and the link from terminal device 120 to network device 110 is referred to as the uplink (UL).

[0038] In some embodiments, for downlink transmission, the network device 110 may transmit control information via a PDCCH and / or data via a PDSCH to the terminal device 120. Additionally, the network device 110 may transmit one or more reference signals (RS) to the terminal device 120. An RS transmitted from the network device 110 to the terminal device 120 may also be referred to as a "DL RS." Examples of DL RS may include, but are not limited to, a demodulation reference signal (DMRS), a channel state information reference signal (CSI-RS), a measurement reference signal (SRS), a phase tracking reference signal (PTRS), a fine time-frequency tracking reference signal (TRS), etc.

[0039] In some embodiments, for uplink transmission, terminal device 120 may transmit control information via a PUCCH and / or transmit data via a PUSCH to network device 110. Additionally, 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, fine-time-frequency TRS, etc.

[0040] Communications in network 100 may conform to any suitable standard, including, but not limited to, Global System for Mobile Communications (GSM), Long Term Evolution (LTE), LTE Evolution (LTE-Evolution), LTE Advanced (LTE-A), Wideband Code Division Multiple Access (WCDMA), Code Division Multiple Access (CDMA), GSM EDGE Radio Access Network (GERAN), Machine Type Communications (MTC), etc. Furthermore, communications may be performed in accordance with any currently known or future-developed generation of communications protocols. Example communications protocols include, but are not limited to, first generation (1G), second generation (2G), 2.5G, 2.75G, third generation (3G), fourth generation (4G), 4.5G, and fifth generation (5G) communications protocols.

[0041] 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 in a particular geographic location. For example, a network device may be coupled with multiple TRPs in different geographic locations to achieve better coverage. The one or more TRPs may be included in the same serving cell or in different serving cells.

[0042] It should be understood that a TRP can also be a panel, and that a panel can also refer to an antenna array (having one or more antenna elements). While some embodiments of the present disclosure are described with reference to, for example, multiple TRPs, these embodiments are merely for illustrative purposes to aid those skilled in the art in understanding and practicing the present disclosure and are not intended to imply any limitation on the scope of the present disclosure. It should be understood that the present disclosure described herein can be implemented in a variety of ways other than those described below.

[0043] FIG. 1B illustrates an exemplary scenario of the network 100 illustrated in FIG. 1A. As illustrated in FIG. 1B, for example, the network device 110 may communicate with the terminal device 120 via TRPs 130-1 and 130-2. Note that in the following text, the TRP 130-1 may also be referred to as the first TRP, and the TRP 130-2 may also be referred to as the second TRP. The first and second TRPs 130-1 and 130-2 may be included in the same serving cell (e.g., cell 102 illustrated in FIG. 1A) or different serving cells provided by the network device 110. While some embodiments of the present disclosure are described with reference to the first and second TRPs 130-1 and 130-2 in the same serving cell provided by the network device 110, these embodiments are merely for illustrative purposes and are intended to assist those skilled in the art in understanding and practicing the present disclosure, and are not intended to imply any limitation on the scope of the present disclosure. It should be understood that the present disclosure described herein may be implemented in various ways other than those described below.

[0044] FIG. 2 illustrates an exemplary signaling chart illustrating an exemplary process 200 of communication according to some embodiments of the present disclosure. As shown in FIG. 2, process 200 may involve a first device 210 and a second device 220. In some embodiments, the first device 210 may be a network device 110 and the second device 220 may be a terminal device 120, as shown in FIGS. 1A and / or 1B. Alternatively, in other embodiments, the first device 210 may be a terminal device 120 and the second device 220 may be a network device 110, as shown in FIGS. 1A and / or 1B. It should be understood that process 200 may include additional operations not shown and / or omit some operations shown, and the scope of the present disclosure is not limited in this respect.

[0045] TIFF0007729675000006.tif84168

[0046] In some embodiments, the physical channel may comprise one of a PDCCH, a PDSCH, a PUCCH, a PUSCH, or a physical random access channel (PRACH). For purposes of discussion, some embodiments are described below with reference to a PDCCH as an example of a physical channel. When the physical channel is a PDCCH, for example, as shown in FIG. 1A and / or FIG. 1B, the first device 210 may be a network device 110 and the second device 220 may be a terminal device 120. It should be understood that this is for illustrative purposes only and does not imply any limitation to the scope of the present disclosure.

[0047] In some embodiments, network device 110 may transmit DCI to terminal device 120 via a PDCCH. Terminal device 120 may receive DCI from network device 110. The DCI may be used to schedule or trigger communication between network device 110 and terminal device 120 and / or to indicate time / frequency resources for communication. In some embodiments, the communication may include transmitting and / or receiving at least one of a PDSCH signal, a PUSCH signal, a PUCCH signal, a CSI-RS, an aperiodic CSI-RS, a ZP CSI-RS, an aperiodic ZP CSI-RS, an SRS, an aperiodic SRS, a CSI report, an aperiodic CSI report, a HARQ feedback (positive or negative acknowledgment), etc.

[0048] In some embodiments, there may be a time offset T (where T is a non-negative integer) between the start time of the PDCCH communication and the start time of the scheduled or triggered communication, or between the end time of the PDCCH communication and the end time of the scheduled or triggered communication. For example, T may be at least one of [0, 1, 2, 336]. In some embodiments, the time offset T may relate to symbols, slots, subframes, subslots, frames, or microseconds. For example, the time offset T may include one or more symbols, slots, subframes, subslots, frames, or microseconds. In some embodiments, for network device 110 and / or terminal device 120, the time offset T may be the time interval between the start symbol for the PDCCH communication and the start symbol for the scheduled or triggered communication, or the time interval between the end symbol for the PDCCH transmission and the end symbol for the communication. For example, the time offset T may be the time interval between a start symbol for PDCCH communication and a start symbol for communicating at least one of a PDSCH signal, a PUSCH signal, a PUCCH signal, a CSI-RS, aperiodic CSI-RS, ZP CSI-RS, aperiodic ZP CSI-RS, SRS, aperiodic SRS, a CSI report, an aperiodic CSI report, a HARQ feedback (acknowledgement or negative acknowledgement), etc. In another example, the time offset T may be the time interval between an end symbol for PDCCH communication and a stop symbol for communicating at least one of a PDSCH signal, a PUSCH signal, a PUCCH signal, a CSI-RS, aperiodic CSI-RS, ZP CSI-RS, aperiodic ZP CSI-RS, SRS, aperiodic SRS, a CSI report, an aperiodic CSI report, aperiodic CSI feedback (acknowledgement or negative acknowledgement), etc.

[0049] In some embodiments, if repetition for the PDCCH is enabled, there may be a duration D for the PDCCH repetition (where D is a non-negative integer). For example, D may be at least one of [0, 1, 2, 336]. In some embodiments, the duration D may relate to symbols, slots, subframes, subslots, frames, or microseconds. For example, the duration D may include one or more symbols, slots, subframes, subslots, frames, or microseconds. In some embodiments, the network device 110 may configure or indicate the duration D to the terminal device 120. For example, the duration D may be configured or indicated to the terminal device 120 via either RRC signaling, MAC CE, or DCI. In some embodiments, the network device 110 may transmit multiple PDCCH repetitions in the duration D. In some embodiments, the value of D may be predefined and / or fixed. That is, signaling to configure the value of D may not be required.

[0050] In some embodiments, network device 110 may configure or indicate to terminal device 120 the number of repetitions for the PDCCH. For example, the number of repetitions for the PDCCH may be expressed as B, where B is a non-negative integer. For example, B may be at least one of [1, 2...64]. In some embodiments, network device 110 may transmit PDCCH repetitions to terminal device 120 to schedule communication between network device 110 and terminal device 120. In some embodiments, as described above, the communication may include transmitting and / or receiving at least one of a PDSCH signal, a PUSCH signal, a PUCCH signal, a CSI-RS, an aperiodic CSI-RS, a ZP CSI-RS, an aperiodic ZP CSI-RS, an SRS, an aperiodic SRS, a CSI report, an aperiodic CSI report, a HARQ feedback (acknowledgement or negative acknowledgement), etc. In some embodiments, the B PDCCH repetitions may be transmitted by network device 110 or received by terminal device 120 in duration D. In some embodiments, the terminal device 120 may send a capability report to the network device 110 regarding the number of PDCCH repetitions.

[0051] In some embodiments, the network device 110 and / or the terminal device 120 may determine the time offset T based on the offset value K indicated by the DCI and the index value X. In some embodiments, the index value X may be determined based on at least one of: an index of the PDCCH repetition among the multiple PDCCH repetitions, a relative slot index of the PDCCH repetition in the duration D, and a slot index of the PDCCH repetition in a frame or subframe.

[0052] TIFF0007729675000007.tif124168

[0053] TIFF0007729675000008.tif83168

[0054] In some embodiments, network device 110 may configure and / or indicate the time offset T to terminal device 120 via either RRC signaling, MAC CE, or DCI. For example, in response to receiving the configuration and / or indication of the time offset T, terminal device 120 may ignore the offset value K indicated in the DCI.

[0055] TIFF0007729675000009.tif91159TIFF0007729675000010.tif247168 TIFF0007729675000011.tif201168

[0056] In response to determining the time offset T, communication may be performed between the network device 110 and the terminal device 120 based on the determined time offset T. In some embodiments, the communication may be DL communication. For example, the network device 110 may transmit 204 a signal to the terminal device 120 based on the determined time offset T. For example, the signal may include any of a PDSCH signal, a ZP CSI-RS, an A-CSI-RS, an aperiodic ZP CSI-RS, a TRS, an aperiodic TRS, etc. In this case, the terminal device 120 may receive 204 a signal from the network device 110 based on the determined time offset T. Alternatively, in some embodiments, the communication may be UL communication. For example, the terminal device 120 may transmit 204 a signal to the network device 110 based on the determined time offset T. For example, the signal may include any of a PUSCH signal, a CSI report, an aperiodic CSI report, HARQ feedback, an SRS, an aperiodic SRS, etc. In this case, the network device 110 may receive 204 a signal from the terminal device 120 based on the determined time offset T.

[0057] In some embodiments, PDCCH repetitions transmitted from the network device 110 to the terminal device 120 may be used for scheduling PDSCH repetitions / transmissions / receptions / candidates. In some embodiments, for example, in a multi-TRP / multi-panel communication scenario such as that shown in FIG. 1B, the network device 110 may configure multiple transmission configuration indication (TCI) states for the terminal device 120 for multi-TRP / multi-panel communication. As used herein, a TCI state may refer to a reference signal (RS) set and a parameter that configures a quasi-co-location (QCL) relationship between the RSs in the RS set and the DMRS ports for the PDSCH. In some embodiments, different TCI states may be used for different PDCCH repetitions / transmissions / receptions and / or PDSCH repetitions / transmissions / receptions. In some embodiments, the TCI state used for the last one of the PDCCH repetitions / transmissions / receptions and the TCI state used for the first one of the PDSCH repetitions / transmissions / receptions may be quasi-co-located for a certain QCL type, may be the same, or may be associated with the same TRP. In this way, the overhead of beam switching for PDCCH repetitions and PDSCH repetitions can be reduced.

[0058] In some embodiments, if the terminal device 120 is configured with the higher layer parameter tci-PresentInDCI set as “enabled” for the control resource set (CORESET) that schedules the PDSCH, the terminal device 120 may assume that a TCI field is present in the DCI of the PDCCH transmitted in the CORESET. If tci-PresentInDCI is not configured for the CORESET that schedules the PDSCH, or the PDSCH is scheduled by DCI format 1_0, and the time offset between the reception of the DCI or last PDCCH potential repetition / candidate in duration D, M slots, or B repetitions and the corresponding PDSCH is greater than or equal to a threshold timeDurationForQCL, where the threshold is determined based on reported UE capabilities, then, to determine the quasi-co-location of PDSCH antenna ports, the terminal device 120 may assume that the TCI state or QCL assumption for the PDSCH is the same as the TCI state or QCL assumption applied to the CORESET used for PDCCH communication.

[0059] In some embodiments, when tci-PresentInDCI is set to "enabled," the TCI field in the DCI of the scheduling component carrier refers to the activated TCI state of the scheduled component carrier or DL ​​bandwidth portion (BWP), and when the PDSCH is scheduled by DCI format 1_1, the terminal device 120 may use TCI-State according to the value of the "Transmission Configuration Indication" field in the PDCCH detected in the DCI to determine the quasi-co-location of the PDSCH antenna ports. If the time offset between the reception of the DCI or potential repetition / candidate of the last PDCCH in duration D, M slots, or B repetitions and the corresponding PDSCH is greater than or equal to a threshold timeDurationForQCL (where the threshold is based on the reported UE capabilities), the terminal device 120 may assume that the DMRS port of the PDSCH of the serving cell is quasi-co-located with respect to the RS in the TCI state and the QCL type parameter given by the indicated TCI state. If the terminal device 120 is configured with a single-slot PDSCH, the indicated TCI state should be based on the activated TCI state in the slot with a scheduled PDSCH. If the terminal device 120 is configured with a multi-slot PDSCH, the indicated TCI state should be based on the activated TCI state in the slot with a scheduled PDSCH. The terminal device 120 may also assume that the activated TCI state is the same across slots with scheduled PDSCHs. If the terminal device 120 is configured with a CORESET associated with a search space set for cross-carrier scheduling, the terminal device 120 may expect tci-PresentInDci to be set as "enabled" for CORESET.If one or more TCI states configured for a serving cell scheduled by a search space set include “QCL-TypeD”, the terminal device 120 may expect the time offset between a detected PDCCH or a potential repetition / candidate of the last PDCCH and the corresponding PDSCH for a duration D, M slots, or B repetitions in the search space set to be greater than or equal to a threshold timeDurationForQCL.

[0060] In some embodiments, for both the case where tci-PresentInDCI is set to "enabled" and the case where tci-PresentInDCI is not set in RRC connected mode, if the offset between the reception of a DCI or last PDCCH potential repetition / candidate in duration D, M slots, or B repetitions and the corresponding PDSCH is below a threshold timeDurationForQCL, the terminal device 120 may assume that the DMRS port of the PDSCH of the serving cell is quasi-co-located with the RS with respect to the QCL parameter used in the PDCCH quasi-co-location indication of the CORESET associated with the monitored search space with the lowest CORESET-ID in the most recent slot in which one or more CORESETs in the active BWP of the serving cell are monitored by the terminal device 120.

[0061] 4 illustrates an example of such an embodiment. As shown in FIG. 4, for example, network device 110 may transmit PDCCH repetitions 410 and 420 for scheduling PDSCH repetitions 430 and 440 to terminal device 120. It is assumed that TCI state A is used for PDCCH repetition 410, TCI state B is used for PDCCH repetition 420, TCI state C is used for PDSCH repetition 430, and TCI state D is used for PDSCH repetition 430. In some embodiments, TCI states B and C may be quasi-colocated for a certain QCL type or associated with the same TRP to reduce beam switching overhead for PDCCH repetition 420 and PDSCH repetition 430.

[0062] It can be seen from the above that the embodiments of the present disclosure enable both the network device and the terminal device to obtain a real-time offset for corresponding communication between the network device and the terminal device from the PDCCH repetition, and since the payloads of different PDCCH repetitions are the same, it is possible to realize PDCCH repetition combinations and improve the reliability and robustness of the PDCCH.

[0063] 5 illustrates a flowchart of an example method 500 according to some embodiments of the present disclosure. Method 500 may be performed on first device 210, as shown in FIG. 2. It should be understood that process 500 may include additional blocks not shown and / or omit some blocks shown, and the scope of the present disclosure is not limited in this respect.

[0064] At block 510, the first device 210 transmits to the second device 220 multiple repetitions for a physical channel for scheduling communication between the first device 210 and the second device 220. The multiple repetitions may indicate the same offset information for the communication.

[0065] At block 520, the first device 210 determines a time offset between the repetition and the communication based on the same offset information and index information for the repetition in the plurality of repetitions.

[0066] In block 530, the first device 210 performs the communication with the second device 220 based on the time offset.

[0067] In some embodiments, performing the communication with the second device includes transmitting a signal to the second device based on the time offset.

[0068] In some embodiments, the physical channel is a PDCCH and the signal includes one of a PDSCH signal, a CSI-RS, or a TRS.

[0069] In some embodiments, performing the communication with the second device includes receiving a signal from the second device based on the time offset.

[0070] In some embodiments, the physical channel is a PDCCH and the signal includes one of a PUSCH signal, a CSI report, a HARQ feedback, or an SRS.

[0071] In some embodiments, the method 500 further includes determining an index of the iteration in the plurality of iterations, and determining the index information for the iteration based on the index.

[0072] In some embodiments, the multiple repetitions for the physical channel are transmitted from the first device to the second device in multiple slots, and the repetitions are transmitted from the first device to the second device in slots in the multiple slots. Method 500 further includes determining a relative index of the slot in the multiple slots and determining the index information for the repetition based on the relative index.

[0073] In some embodiments, the multiple repetitions are transmitted from the first device to the second device in a frame or subframe, and the repetitions are transmitted from the first device to the second device in slots of the frame or subframe. The method 500 further includes determining an index of the slot in the frame or subframe and determining the index information for the repetitions based on the index.

[0074] In some embodiments, the physical channel includes one of a PDCCH, a PDSCH, a PUCCH, a PUSCH, or a PRACH.

[0075] 6 illustrates a flowchart of an example method 600 according to some embodiments of the present disclosure. Method 600 may be performed on second device 220, as shown in FIG. 2. It should be understood that process 600 may include additional blocks not shown and / or omit some blocks shown, and the scope of the present disclosure is not limited in this respect.

[0076] In block 610, the second device 220 receives from the first device 210 a repetition for a physical channel for scheduling communication between the first device 210 and the second device 220. The first device 210 may transmit multiple repetitions for the physical channel to the second device 220, the multiple repetitions including the received repetition and indicating the same offset information for the communication.

[0077] At block 620, the second device 220 determines a time offset between the repetition and the communication based on the same offset information and index information for the repetition.

[0078] In block 630, the second device 220 performs the communication with the first device 210 based on the time offset.

[0079] In some embodiments, performing communication with the first device includes receiving a signal from the first device based on the time offset.

[0080] In some embodiments, the signal comprises one of a PDSCH signal, a CSI-RS, or a TRS.

[0081] In some embodiments, performing communication with the first device includes transmitting a signal to the first device based on the time offset.

[0082] In some embodiments, the signal comprises one of a PUSCH signal, a CSI report, a HARQ feedback, or an SRS.

[0083] In some embodiments, the method 600 further includes determining an index of the iteration in the plurality of iterations, and determining the index information for the iteration based on the index.

[0084] In some embodiments, the multiple repetitions for the physical channel are received from the first device in multiple slots, and the repetitions are received from the first device in slots in the multiple slots. Method 600 further includes determining a relative index of the slot in the multiple slots and determining the index information for the repetition based on the relative index.

[0085] In some embodiments, the multiple repetitions are received from the first device in a frame or subframe, and the repetitions are received from the first device in slots of the frame or subframe. The method 600 further includes determining an index of the slot in the frame or subframe and determining the index information for the repetitions based on the index.

[0086] In some embodiments, the physical channel includes one of a PDCCH, a PDSCH, a PUCCH, a PUSCH, or a PRACH.

[0087] 7 is a schematic block diagram of a device 700 suitable for implementing embodiments of the present disclosure. Device 700 can be considered another exemplary implementation of first device 210 or second device 220 shown in FIG. 2. Thus, device 700 can be implemented in or as part of first device 210 or second device 220.

[0088] As shown, device 700 includes a processor 710, a memory 720 coupled to processor 710, a suitable transmitter (TX) and receiver (RX) 740 coupled to processor 710, and a communication interface connected to the TX / RX 740. The memory 710 stores at least a portion of a program 730. The TX / RX 740 is for bidirectional communication. The TX / RX 740 has at least one antenna to facilitate communication, although in practice, access nodes described herein may 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.

[0089] Assuming that the program 730 includes program instructions, as discussed herein with reference to FIGS. 1A-6 , these program instructions are executed by the associated processor 710 to cause the device 700 to perform operations according to embodiments of the present disclosure. The embodiments herein may be implemented by computer software, hardware, or a combination of software and hardware executable by the processor 710 of the device 700. The processor 710 may be configured to perform embodiments of the present disclosure. Furthermore, the combination of the processor 710 and the memory 720 may constitute a processing means 750 suitable for performing embodiments of the present disclosure.

[0090] The memory 720 may be of any type suitable for the local technology network and may be implemented using any suitable data storage technology (e.g., but not limited to, computer-readable non-transitory storage media, semiconductor-based storage devices, magnetic storage devices and systems, optical storage devices and systems, fixed and removable memory, etc.). Although only one memory 720 is shown in the device 700, multiple physically distinct memory modules may be installed in the device 700. The processor 710 may be of any type suitable for the local technology network and may include, by way of example and not limitation, 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 configuration. The device 700 may have multiple processors, e.g., application-specific integrated circuit chips time-slaved to a clock synchronized with a master processor.

[0091] Generally, embodiments of the present disclosure may be implemented using hardware or special purpose circuits, software, logic, or any combination thereof. Some aspects may be implemented using hardware, while other aspects may be implemented using firmware or software that may be executed by a controller, microprocessor, or other computing device. While aspects of the exemplary embodiments of the present disclosure are shown and described as block diagrams, flowcharts, or illustrated by some other pictorial representation, it should be understood that the blocks, apparatus, systems, techniques, or methods described herein may be implemented using, for example, but not limited to, hardware, software, firmware, special purpose circuits or logic, general purpose hardware or controller or other computing device, or any combination thereof.

[0092] The present disclosure further provides at least one computer program product tangibly stored on a computer-readable, non-transitory storage medium. The computer program product includes computer-executable instructions, such as instructions included in program modules. The instructions execute on a target real or virtual processor device to perform, for example, the processes or methods described above with reference to FIG. 5 and / or FIG. 6. Typically, 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 among program modules as desired. The machine-readable instructions of the program modules may be executed in local or distributed devices. In distributed devices, the program modules may reside in both local and remote storage media.

[0093] Program code for carrying out the methods of the present disclosure may be written in any combination of one or more programming languages. The program code may be provided to a processor or controller of a general-purpose computer, a special-purpose computer, or other programmable data processing apparatus, and when executed by the processor or controller, the functions / operations specified in the flowcharts and / or block diagrams are performed. The program code may run entirely on the machine, partially on the machine, as a separate software package, partially on the machine and partially on a remote machine, or entirely on a remote machine or server.

[0094] The above-described program code may be embodied on a machine-readable medium, which may be any tangible medium that contains or stores a program used by or in connection 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 foregoing. Even more specific examples of machine-readable storage media include one or more wires, a portable computer diskette, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable-writeable 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 foregoing.

[0095] Although operations have been described in a particular order, it should not be understood that performing these operations in the particular order or sequence shown, or performing all of the operations shown, is required to achieve desired results. In some situations, multitasking and parallel processing may be advantageous. Similarly, while the above discussion includes several specific implementation details, 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 described in the context of individual embodiments may also be implemented in combination in a single embodiment. Conversely, various features described in the context of a single embodiment may also be implemented in multiple embodiments separately or in any suitable subcombination.

[0096] Although the present disclosure has been described in language specific to structural features and / or methodological acts, it is to be understood that the present disclosure, as defined by the appended claims, is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims.

Claims

1. 1. A communication method performed by a base station, comprising: Two Physical Downlink Control Channel (PDCCH) candidates for repetition transmitted in one slot, a first PDCCH candidate starting from a first symbol, wherein a first control resource set (CORESET) for the first PDCCH candidate is associated with a first transmission configuration indication (TCI) state; a second PDCCH candidate that is later in time than the first PDCCH candidate and starts from a second symbol, wherein a second CORESET for the second PDCCH candidate is associated with a second TCI state; and transmitting, to a user equipment (UE), downlink control information (DCI) formats for the two PDCCH candidates, including: transmitting a physical downlink shared channel (PDSCH) to the user equipment based on the second TCI state; Including, The start symbol of the PDSCH defined with reference to the second symbol is based on information indicating an offset for the PDSCH included in the DCI format. method.

2. Each DCI format in the two PDCCH candidates includes the same information indicating an offset for the PDSCH. The method of claim 1.

3. The time offset between the second PDCCH candidate and the PDSCH is compared by the UE with a value of timeDurationForQCL. The method of claim 1.

4. The DCI format does not include a TCI field, and the time offset is equal to or greater than the value of timeDurationForQCL. The method of claim 3.

5. If a TCI field is present in the DCI format and the time offset is greater than or equal to the value of timeDurationForQCL, the demodulation reference signal (DMRS) port of the PDSCH is assumed to be quasi-collocated with respect to one or more reference signals (RSs) in a TCI state and one or more quasi-collocation (QCL) type parameters given by the TCI state indicated in the TCI field. The method of claim 3.

6. 1. A communication method performed by a user equipment (UE), comprising: Two Physical Downlink Control Channel (PDCCH) candidates for repetition transmitted in one slot, a first PDCCH candidate starting from a first symbol, wherein a first control resource set (CORESET) for the first PDCCH candidate is associated with a first transmission configuration indication (TCI) state; a second PDCCH candidate that is later in time than the first PDCCH candidate and starts from a second symbol, wherein a second CORESET for the second PDCCH candidate is associated with a second TCI state; and receiving, from a base station, downlink control information (DCI) formats for the two PDCCH candidates, including: determining a start symbol of a physical downlink shared channel (PDSCH) defined based on the second symbol based on information indicating an offset for the PDSCH included in the DCI format; receiving the PDSCH from the base station based on the second TCI state; Including, method.

7. Each DCI format in the two PDCCH candidates includes the same information indicating an offset for the PDSCH. The method of claim 6.

8. comparing a time offset between the second PDCCH candidate and the PDSCH with a value of timeDurationForQCL; The method of claim 6 further comprising:

9. 9. The method of claim 8, wherein a TCI field is not present in the format of the DCI, and the time offset is greater than or equal to the value of the timeDurationForQCL.

10. If a TCI field is present in the format of the DCI and the time offset is equal to or greater than the value of the timeDurationForQCL, a demodulation reference signal (DMRS) port of the PDSCH is configured to receive one or more reference signals (RSs) in the TCI state, Assume that the TCI fields are quasi-collocated with respect to one or more quasi-collocation (QCL) type parameters given by the TCI status indicated in the TCI field. The method of claim 8 further comprising:

11. Two Physical Downlink Control Channel (PDCCH) candidates for repetition transmitted in one slot, a first PDCCH candidate starting from a first symbol, wherein a first control resource set (CORESET) for the first PDCCH candidate is associated with a first transmission configuration indication (TCI) state; a second PDCCH candidate that is later in time than the first PDCCH candidate and starts from a second symbol, wherein a second CORESET for the second PDCCH candidate is associated with a second TCI state; and means for receiving, from a base station, a downlink control information (DCI) format for the two PDCCH candidates, the DCI format comprising: means for determining a start symbol of a physical downlink shared channel (PDSCH), the start symbol being defined based on the second symbol, based on information indicating an offset for the PDSCH, the information being included in the DCI format; means for receiving the PDSCH from the base station based on the second TCI state. User equipment.

12. Each DCI format in the two PDCCH candidates includes the same information indicating an offset for the PDSCH.

12. The user device of claim 11.

13. The user equipment of claim 11 , further comprising means for comparing a time offset between the second PDCCH candidate and the PDSCH with a value of timeDurationForQCL.

14. The user equipment of claim 13 , wherein the DCI format does not include a TCI field, and the time offset is greater than or equal to the value of timeDurationForQCL.

15. 14. The user equipment of claim 13, further comprising: means for assuming, if a TCI field is present in the DCI format and the time offset is greater than or equal to the value of timeDurationForQCL, that a demodulation reference signal (DMRS) port of the PDSCH is quasi-collocated with respect to one or more reference signals (RSs) in a TCI state and one or more quasi-collocation (QCL) type parameters given by the TCI state indicated in the TCI field.

16. A base station, Two Physical Downlink Control Channel (PDCCH) candidates for repetition transmitted in one slot, a first PDCCH candidate starting from a first symbol, wherein a first control resource set (CORESET) for the first PDCCH candidate is associated with a first transmission configuration indication (TCI) state; a second PDCCH candidate that is later in time than the first PDCCH candidate and starts from a second symbol, wherein a second CORESET for the second PDCCH candidate is associated with a second TCI state; and means for transmitting, to a user equipment (UE), downlink control information (DCI) formats for the two PDCCH candidates, including: means for transmitting a Physical Downlink Shared Channel (PDSCH) to the user equipment based on the second TCI state; and The start symbol of the PDSCH defined with reference to the second symbol is based on information indicating an offset for the PDSCH included in the DCI format. Base station.

17. Each of the DCI formats in the two PDCCH candidates includes the same information indicating an offset for the PDSCH.

17. The base station of claim 16.

18. The time offset between the second PDCCH candidate and the PDSCH is compared by the UE with a value of timeDurationForQCL.

17. The base station of claim 16.

19. The DCI format does not include a TCI field, and the time offset is equal to or greater than the value of timeDurationForQCL.

20. The base station of claim 18.

20. If a TCI field is present in the DCI format and the time offset is greater than or equal to the value of timeDurationForQCL, the demodulation reference signal (DMRS) port of the PDSCH is assumed to be quasi-collocated with respect to one or more reference signals (RSs) in a TCI state and one or more quasi-collocation (QCL) type parameters given by the TCI state indicated in the TCI field.

20. The base station of claim 18. End

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