Method and apparatus for reporting beam failure related information
The method optimizes beam failure recovery reporting by prioritizing TRP-specific information in MAC CE and using a 1-byte bitmap when needed, addressing inefficiencies in existing mechanisms and ensuring comprehensive reporting.
Patent Information
- Application Number
- JP2024546506
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-10
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2042-02-10
AI Technical Summary
Existing beam failure recovery mechanisms in multi-TRP scenarios face challenges in efficiently reporting beam failure information due to variable MAC CE sizes and insufficient grant resources, leading to incomplete or ambiguous reporting of beam failure recovery information.
The proposed solution involves generating a beam failure recovery MAC CE that prioritizes TRP-specific beam failure information by ordering bytes in ascending BFD-RS set identifiers or serving cell indices, and using a 1-byte bitmap when UL-SCH resources are insufficient for a 4-byte bitmap, ensuring complete and unambiguous reporting.
This approach allows for efficient reporting of beam failure information across multiple TRPs, meeting grant size requirements while ensuring maximum beam failure recovery information is included, even in scenarios with limited UL-SCH resources.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of communications. [Background technology]
[0002] In Rel-15 NR, several MIMO (multiple input multiple output) features are included to facilitate the use of a large number of antenna units in the sub-6 GHz and above-6 GHz frequency bands at the base station side.
[0003] Rel-16 NR enhances Rel-15 NR by introducing an enhanced Type II codebook based on Discrete Fourier Transform (DFT) compression; support for multi-Transmission Reception Point (TRP) transmissions (especially for Enhanced Mobile Broadband (eMBB) and the Physical Downlink Shared Channel (PDSCH)); enhanced multi-beam steering (including reduced latency and / or measurement reconfiguration overhead for multiple Quasi Co-Location (QCL)); secondary cell (SCell) beam failure recovery (BFR); L1-SINR; low Peak to Average Power Ratio (PAPR) reference signals; and features to ensure full uplink power transmission.
[0004] As NR is in the process of commercialization, actual deployment scenarios can identify various aspects that need further enhancement, such as inter-cell beam management (ICBM), including: Rel-16 reduces overhead and / or latency, and for high-speed vehicular scenarios over FR2 (e.g., terminal equipment traveling at high speeds on highways), latency and overhead must be reduced more aggressively, including reducing the occurrence of beam failure events, not only for intra-cell but also for inter-cell L1 and L2 layer mobility; In Rel-16, enhancements to ensure panel-specific uplink (UL) beam selection are being studied, but there was insufficient time to complete this work, which offers some potential for increased UL coverage, including mitigating UL coverage losses due to meeting maximum permissible exposure (MPE) rules; Channels other than PDSCH can benefit from multi-TRP transmission (and multi-panel reception), including inter-cell multi-TRP operation. This includes several new multi-TRP use cases, such as high-density uplink deployments within a macrocell and / or heterogeneous network type deployment scenarios; Due to the use of multi-scenario SRS, the channel sounding reference signal (SRS) can and should be further enhanced, at least for capacity and coverage purposes; and Rel-16 supports enhanced Type II Channel State Information (CSI), but it is felt that there is room for further enhancements, including CSI designed for the NC-JT use case of multi-TRP / panel and exploiting some heterogeneity in channel statistics, e.g., angle and latency, primarily targeted at FR1 Frequency Division Duplex (FDD) deployments.
[0005] Rel-17 supports enhanced multi-TRP deployments, targeting FR1 and FR2, mainly including the following aspects: a. Using multiple TRPs and / or multiple panels, determining and defining characteristics that improve the reliability and robustness of channels other than PDSCH (i.e., PDCCH, PUSCH, and PUCCH) using Rel-16 reliability as a baseline; b. Determine and define enhancements related to Quasi Co-Location (QCL) / transmission configuration indication (TCI) to ensure inter-cell multi-TRP operation, assuming multi-DCI (Downlink Control Information) and multi-PDSCH reception based on the Rel-15 / 16 TCI architecture; c. Evaluate and define beam management enhancements, if necessary, for simultaneous multi-TRP transmission with multi-panel reception; and d. Enhanced to support HST-SFN deployment scenarios, i.e. i. Determine and define a solution for the QCL assumption of a demodulation reference signal (DMRS), for example, multiple QCL assumptions for the same DMRS port, i.e., DMRS port(s), with the goal of DL-only transmission; and ii. Evaluate and define the QCL / QCL-like relationship between downlink (DL) and uplink (UL) signals (including application types and associated needs) by reusing the unified TCI architecture if proven to be superior to the benefits of the Rel-16 HST enhanced baseline.
[0006] According to above a, to improve channel reliability and robustness, Rel-17 supports TRP-specific beam failure detection and recovery for multi-TRP deployed scenarios.
[0007] It should be noted that the introduction of the above background art is intended to clearly and completely explain the technical solutions of the present invention and to facilitate understanding by those skilled in the art, and these technical solutions described in the background art of the present invention should not be construed as being known to those skilled in the art. Summary of the Invention [Problem to be solved by the invention]
[0008] The beam failure information of the secondary cell is carried by a beam failure recovery (BFR) MAC CE and transmitted to a serving network device (e.g., a serving gNB). The BFR MAC CE includes a BFR MAC CE or a truncated BFR MAC CE. The BFR MAC CE and the truncated BFR MAC CE are identified by a MAC header that carries a logical channel identifier (LCID) / eLCID.
[0009] The size of the BFR MAC CE and the Truncated BFR MAC CE is variable. They contain one bitmap and beam failure recovery information arranged according to the ascending order of the serving cell index, i.e., the candidate beam availability indication (AC) bytes (octets) of the secondary cell indicated by the bitmap.
[0010] For BFR MAC CE, if beam failure has been detected by such MAC entity and the highest serving cell index ServCellIndex of a secondary cell for which candidate beam evaluation has already been completed is less than 8, a 1-byte bitmap is used, otherwise a 4-byte bitmap is used. One MAC PDU contains at most one BFR MAC CE.
[0011] For a Truncated BFR MAC CE, if a beam failure has been detected by such MAC entity and the highest serving cell index ServCellIndex of a secondary cell for which candidate beam evaluation has already been completed is less than 8, or if a beam failure has been detected in a special cell and this special cell is indicated to be in one Truncated BFR MAC CE and the Logical Channel Optimization Process (LCP) result is "the UL-SCH resources cannot accommodate the 4-byte bitmap of the Truncated BFR MAC CE plus its subheader", then a 1-byte bitmap shall be used, otherwise a 4-byte bitmap shall be used.
[0012] The field definitions in BFR MAC CE are as follows:
[0013] SP: This field indicates the beaming failure detection of the special cell of this MAC entity. Only when BFR MAC CE or Truncated BFR MAC CE is included in one MAC PDU and is part of the random access procedure, the SP field is set to 1 to indicate the beaming failure of the special cell, otherwise it is set to 0; Ci (for BFR MAC CE): This field indicates the detection of beam failure for the secondary cell with serving cell index ServCellIndex i and the presence of one byte containing its AC field. When Ci field is set to 1, it indicates that beam failure has been detected for the secondary cell with ServCellIndex i, evaluation of candidate beams has already been completed, and a byte containing its AC field is present. When Ci field is set to 0, it indicates that beam failure has not been detected for the secondary cell with ServCellIndex i, or that beam failure has been detected but evaluation of candidate beams has not been completed, and a byte containing its AC field is not present. The bytes containing the AC field are present in ascending order of ServCellIndex; Ci (for Truncated BFR MAC CE): This field indicates beam failure detection for the secondary cell with ServCellIndex i. When Ci is set to 1, it indicates that beam failure has been detected for the secondary cell with ServCellIndex i, candidate beam evaluation has already been completed, and a byte containing the AC field may exist. When Ci is set to 0, it indicates that beam failure has not been detected for the secondary cell with ServCellIndex i, or that beam failure has been detected but candidate beam evaluation has not been completed, and a byte containing the AC field does not exist. If present, the bytes containing the AC field appear in ascending order of ServCellIndex. Maximize the number of included bytes containing the AC field (which may be 0) without exceeding the size of the available grant; AC: This field indicates the presence of the Candidate RS ID field in this byte. If this AC field is set to 1, the Candidate RS ID field is present. If this AC field is set to 0, the R bits are present; Candidate RS ID: This field is set to the index of the SSB or CSI-RS. The length of this field is 6 bits; and R: Reserved bit, set to 0.
[0014] Figure 1 shows a BFR MAC CE or a truncated BFR MAC CE including a 1-byte bitmap, and Figure 2 shows a BFR MAC CE or a truncated BFR MAC CE including a 4-byte bitmap. The meaning of each field of the BFR MAC CE or the truncated BFR MAC CE shown in Figures 1 and 2 is as described above.
[0015] Multi-TRP operation supports beam failure detection for a single BFD-RS pair per TRP, and supports simultaneous deployment of cell-specific BFRs and TRP-specific BFRs on different CCs.
[0016] TRP specific beam failure recovery triggers include: For each serving cell for which beam failure detection is configured, the MAC entity does the following: If multiple BFD-RS pairs are configured for this serving cell, for each BFD-RS pair for this serving cell, the MAC entity shall: When a beam failure instance indication for one BFD-RS pair is received from a lower layer, Starts or restarts the beam failure detection timer beamFailureDetectionTimer; and Add 1 to BFI_COUNTER; If BFI_COUNTER is greater than or equal to beamFailureInstanceMaxCount, Trigger a BFR for this BFD-RS pair in this serving cell; If BFR has been triggered and not completed successfully in both BFD-RS pairs of this serving cell, If this serving cell is a special cell (SpCell), Initiate a random access procedure on this special cell; If this serving cell is a special cell and the random access procedure initiated for beam failure recovery of the two BFD-RS pairs of this special cell is completed successfully, Set the BFI_COUNTER of each BFD-RS pair in the special cell to 0; and The beam failure recovery procedure is considered to have been completed successfully; If the beamFailureDetectionTimer for this BFD-RS pair has expired or higher layers have reconfigured the beamFailureDetectionTimer, beamFailureInstanceMaxCount, or any reference signal for beam failure detection for this serving cell or this BFD-RS pair, set BFI_COUNTER to 0; When receiving one PDCCH addressed to the C-RNTI, indicate a new transmission uplink grant for one of the HARQ processes for transmitting an Enhanced BFR MAC CE or a Truncated Enhanced BFR MAC CE including beam failure recovery information for this BFD-RS set of this serving cell, or set BFI_COUNTER to 0 if the secondary cell is deactivated; When one MAC PDU is transmitted and this PDU contains one Enhanced BFR MAC CE or Truncated Enhanced BFR MAC CE, and it contains beam failure recovery information of one BFD-RS of a secondary cell, all triggered BFRs of this BFD-RS of this secondary cell are canceled.
[0017] For an Enhanced BFR MAC CE or a Truncated Enhanced BFR MAC CE, the MAC entity does the following: 1> If the beam failure recovery procedure determines that one BFR for at least one secondary cell has already been triggered and not canceled, then the beam evaluation for the secondary cell has already been completed: 2> If the UL-SCH resource is available for one new transmission and the LCP result is "this UL-SCH resource can accommodate the BFR MAC CE plus its subheader", 3> Instruct the multiplexing and assembly process to generate BFR MAC CE; 2> Otherwise, if the UL-SCH resource is available for one new transmission and the LCP result is "this UL-SCH resource can accommodate the Truncated BFR MAC CE plus its subheader", 3> Instruct the multiplexing and assembly process to generate a truncated BFR MAC CE, 2> Otherwise, trigger SR for secondary cell beam failure recovery for each secondary cell for which BFR has been triggered and not canceled and for which candidate beam evaluation has already been completed; 1> If the beam failure recovery procedure determines that at least one BFR in the BFD-RS pair of one secondary cell has already been triggered and not canceled, the beam evaluation of the secondary cell has already been completed; or 1> If the beam failure recovery procedure determines that at least one BFR in only one BFD-RS pair of one special cell has already been triggered and not canceled, then the beam evaluation of the special cell has already been completed: 2> If the UL-SCH resource is available for one new transmission and the LCP result is "this UL-SCH resource can accommodate the Enhanced BFR MAC CE plus its subheader", 3> Instruct the multiplexing and assembly process to generate Enhanced BFR MAC CE; 2> Otherwise, if the UL-SCH resource is available for one new transmission and the LCP result is "this UL-SCH resource can accommodate the Truncated Enhanced BFR MAC CE plus its subheader", 3> Instruct the multiplexing and assembly process to generate a truncated enhanced BFR MAC CE; 2> Otherwise, trigger SR for beam failure recovery for each BFD-RS pair for which BFR has been triggered and not canceled and candidate beam evaluation has already been completed; When one MAC PDU is transmitted and this PDU contains one Enhanced BFR MAC CE or Truncated Enhanced BFR MAC CE containing beam failure information of a BFD-RS set of one serving cell, all triggered BFRs of this BFD-RS set of this secondary cell can be canceled.
[0018] According to the above description, the BFR MAC CE of the BFD-RS pair includes Enhanced BFR MAC CE or Truncated Enhanced BFR MAC CE. It is necessary to define how to truncate the Enhanced BFR MAC CE.
[0019] According to the conventional mechanism, the Truncated BFR MAC CE is a truncated format of the BFR MAC CE, and the truncation includes the following two aspects: (1) For a secondary cell for which beam failure has been detected and candidate beam evaluation has already been completed, the Truncated BFR MAC CE may not include the AC-domain bytes of this secondary cell. If the AC-domain bytes are included, they appear in ascending order of ServCellIndex. The number of included AC-domain bytes (which may be 0) is maximized while not exceeding the size of the available grant; and (2) When a beam failure is detected in a special cell, and this special cell is indicated to have one Truncated BFR MAC CE, and the LCP result is "the UL-SCH resources available for transmission cannot accommodate the Truncated BFR MAC CE of this 4-byte bitmap plus its header," use a 1-byte bitmap.
[0020] The inventors have discovered the following: The truncated Enhanced BFR MAC CE, i.e., the truncated format of the Enhanced BFR MAC CE, has the following problems.
[0021] In the case of (1) above, on the one hand, for a secondary cell for which beam failure has been detected and candidate beam evaluation has already been completed, the Truncated BFR MAC CE may not include bytes containing the AC region of this secondary cell, and on the other hand, the number of bytes containing the AC region (which may be 0) included is maximized without exceeding the available grant size. If a grant can accommodate only one byte containing the AC region, but beam failures have been detected in both TRPs of one secondary cell, it may not be possible to simultaneously satisfy the following two aspects, i.e., maximizing the grant size and the number of bytes containing the AC region (beam failure recovery information); Furthermore, currently, both of the two selectable Enhanced BFR MAC CE formats involve two bitmaps, and in the case of (2) above, i.e., when a beam failure is detected in a special cell and this special cell is indicated to have one Truncated BFR MAC CE, and the LCP result is that "the UL-SCH resources available for transmission cannot accommodate the Truncated BFR MAC CE of this 4-byte bitmap plus its header," it is not possible to determine which 1-byte bitmap to use.
[0022] To address one or more of the above-mentioned problems, embodiments of the present invention provide a method and apparatus for reporting beam failure-related information. [Means for solving the problem]
[0023] According to a first aspect of an embodiment of the present invention, there is provided an apparatus for reporting beam failure related information, the apparatus being for use in a terminal device, the apparatus comprising: a first generating unit for generating a Beam Failure Recovery MAC CE (BFR MAC CE) including beam failure related information; and a first sending unit for sending the beam failure recovery MAC CE to a network device to report the beam failure related information; Wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or in ascending order of serving cell index of secondary cell.
[0024] According to a second aspect of an embodiment of the present invention, there is provided a beam failure recovery information reporting device, the device being for use in a terminal device, the device comprising: a second generating unit for generating a beam failure recovery MAC CE including beam failure related information; and a second sending unit for sending the beam failure recovery MAC CE to a network device to report the beam failure related information; Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure-related information is reported using the beam failure recovery MAC CE including the 1-byte first bitmap.
[0025] According to a third aspect of an embodiment of the present invention, there is provided an apparatus for receiving beam failure related information, the apparatus being used in a network device, the apparatus comprising: a first receiving unit for receiving a beam failure recovery MAC CE including beam failure related information from a terminal device; Wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or in ascending order of serving cell index of secondary cell.
[0026] According to a fourth aspect of an embodiment of the present invention, there is provided an apparatus for receiving beam failure recovery information, the apparatus being for use in a network device, the apparatus comprising: a second receiving unit for receiving a beam failure recovery MAC CE including beam failure related information from a terminal device; Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure recovery MAC CE received by the network equipment is a beam failure recovery MAC CE including the 1-byte first bitmap.
[0027] According to a fifth aspect of an embodiment of the present invention, there is provided a terminal device, the terminal device comprising an apparatus according to the first or second aspect of the embodiment of the present invention.
[0028] According to a sixth aspect of the present invention, there is provided a network device, wherein the terminal device includes the device according to the third or fourth aspect of the present invention.
[0029] According to a seventh aspect of an embodiment of the present invention, there is provided a communication system, the communication system including a terminal device according to the fifth aspect of an embodiment of the present invention and / or a network device according to the sixth aspect of an embodiment of the present invention.
[0030] According to an eighth aspect of an embodiment of the present invention, there is provided a method for reporting beam failure related information, the method being used in a terminal device, the method comprising: generating a beam failure recovery MAC CE containing beam failure related information; and sending the beam failure recovery MAC CE to a network device to report the beam failure related information; Wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or in ascending order of serving cell index of secondary cell.
[0031] According to a ninth aspect of an embodiment of the present invention, there is provided a method for reporting beam failure recovery information, the method being used in a terminal device, the method comprising: generating a beam failure recovery MAC CE containing beam failure related information; and sending the beam failure recovery MAC CE to a network device to report the beam failure related information; Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure-related information is reported using the beam failure recovery MAC CE including the 1-byte first bitmap.
[0032] According to a tenth aspect of an embodiment of the present invention, there is provided a method for receiving beam failure related information, the method being used in a network device, the method comprising: receiving a beam failure recovery MAC CE from a terminal device, the beam failure recovery MAC CE including beam failure related information; Wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or in ascending order of serving cell index of secondary cell.
[0033] According to an eleventh aspect of an embodiment of the present invention, there is provided a method for receiving beam failure recovery information, the method being used in a network device, the method comprising: receiving a beam failure recovery MAC CE from a terminal device, the beam failure recovery MAC CE including beam failure related information; Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure recovery MAC CE received by the network equipment is a beam failure recovery MAC CE including the 1-byte first bitmap.
[0034] According to a twelfth aspect of an embodiment of the present invention, there is provided a computer-readable program, wherein when the program is executed in a beam failure related information reporting device or terminal device, the program causes the beam failure related information reporting device or terminal device to perform the beam failure related information reporting method described in the eighth or ninth aspect of an embodiment of the present invention.
[0035] According to a thirteenth aspect of an embodiment of the present invention, there is provided a storage medium storing a computer-readable program, wherein the computer-readable program causes a beam failure related information reporting device or terminal device to execute the beam failure related information reporting method described in the eighth or ninth aspect of an embodiment of the present invention.
[0036] According to a fourteenth aspect of an embodiment of the present invention, a computer-readable program is provided, wherein, when the program is executed in a beam failure related information receiving device or network equipment, the program causes the beam failure related information receiving device or network equipment to perform the beam failure related information receiving method described in the tenth or eleventh aspect of an embodiment of the present invention.
[0037] According to a fifteenth aspect of an embodiment of the present invention, a storage medium storing a computer-readable program is provided, in which the computer-readable program causes a beam failure related information receiving device or network equipment to execute the beam failure related information receiving method described in the tenth or eleventh aspect of an embodiment of the present invention. [Effects of the Invention]
[0038] The advantageous effects of an embodiment of the present invention are at least as follows: when a byte indicating TRP beam failure recovery information exists in the beam failure related information of a beam failure recovery MAC CE reported to a network device, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS set identifier or index and / or the serving cell index of the secondary cell; in this way, since the beam failure recovery information reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) of one cell, at least one TRP beam failure recovery information can be reported, and the two requirements of grant size and including maximum beam failure recovery information can also be met.
[0039] In addition, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure related information is reported using the beam failure recovery MAC CE including the 1-byte first bitmap. In this way, when the beam failure recovery MAC CE includes two bitmaps, it is possible to determine which beam failure recovery MAC CE including the 1-byte bitmap to use to report the beam failure related information.
[0040] The following description and reference to the drawings disclose in detail particular embodiments of the present invention, illustrating ways in which the principles of the present invention may be employed, but the scope of the present invention is not limited thereto, and various changes, modifications, and alternatives may be included within the scope of the appended claims.
[0041] Additionally, features described and / or illustrated with respect to one embodiment may be used in the same or similar manner in one or more other embodiments, may be combined with features in the other embodiments, or may be substituted for features in the other embodiments.
[0042] It should be noted that when used in this specification, terms such as "comprise / have" refer to the presence of a feature, element, step, or assembly, but do not exclude the presence or addition of one or more other features, elements, steps, or assemblies. [Brief explanation of the drawings]
[0043] Elements and features described in one drawing or one embodiment of the invention may be combined with elements and features shown in one or more other drawings or embodiments, and in the drawings, like reference numerals are used to indicate corresponding parts in several drawings and to indicate corresponding parts used in several embodiments.
[0044] The included drawings are used to provide a further understanding of the embodiments of the present invention, and these drawings constitute a part of this specification, illustrate embodiments of the present invention, and together with the written description, serve to explain the principles of the present invention. Also, it is apparent that the drawings described below are only for illustrating some embodiments of the present invention, and those skilled in the art can derive other drawings based on these drawings without any creative effort. [Figure 1] FIG. 10 is a diagram showing a BFR MAC CE or a Truncated BFR MAC CE including a 1-byte bitmap. [Figure 2]FIG. 10 is a diagram showing a BFR MAC CE or a Truncated BFR MAC CE including a 4-byte bitmap. [Figure 3] 1 is a diagram illustrating a communication system according to an embodiment of the present invention. [Figure 4] FIG. 1 illustrates multi-TRP operation. [Figure 5a] FIG. 1 illustrates a scenario of an embodiment of the present invention. [Figure 5b] FIG. 10 illustrates another scenario of an embodiment of the present invention. [Figure 6] A diagram showing a method for reporting beam failure related information in Example 1 of the present invention. [Figure 7] FIG. 1 is a diagram showing a (truncated) enhanced beam failure recovery MAC CE in one implementation of Example 1 of the present invention. [Figure 8] FIG. 10 is a diagram showing another (truncated) enhanced beam failure recovery MAC CE in one implementation manner of Example 1 of the present invention. [Figure 9] FIG. 10 is a diagram showing a (truncated) enhanced beam failure recovery MAC CE in another implementation manner of Example 1 of the present invention. [Figure 10] FIG. 10 is a diagram showing another (truncated) enhanced beam failure recovery MAC CE in another implementation manner of Example 1 of the present invention. [Figure 11] A diagram showing a method for reporting beam failure related information in Example 2 of the present invention. [Figure 12] FIG. 10 is a diagram illustrating a reporting device for beam failure related information in Example 3 of the present invention. [Figure 13] FIG. 10 is a diagram illustrating a reporting device for beam failure related information in Example 4 of the present invention. [Figure 14] FIG. 10 is a block diagram showing a system configuration of a terminal device according to a fifth embodiment of the present invention. [Figure 15] A diagram showing a method for receiving beam failure related information in Example 6 of the present invention. [Figure 16]A diagram showing another method for receiving beam failure related information in Example 6 of the present invention. [Figure 17] FIG. 10 is a diagram illustrating a receiving device for beam failure related information in Example 7 of the present invention. [Figure 18] FIG. 10 is a diagram illustrating another beam failure related information receiving device in Example 7 of the present invention. [Figure 19] FIG. 13 is a block diagram showing a system configuration of a network device according to an eighth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0045] The foregoing and other features of the present invention will become more apparent from a consideration of the accompanying drawings and the following description. While the specification and drawings disclose particular embodiments of the present invention, they illustrate only some of the embodiments which may employ the principles of the present invention, and it is to be understood that the present invention is not limited to the described embodiments, but rather includes all modifications, variations, and alternatives which fall within the scope of the appended claims.
[0046] In embodiments of the present invention, the term "communication network" or "wireless communication network" may refer to a network conforming to any communication standard, such as LTE (Long Term Evolution), LTE-A (LTE-Advanced), WCDMA (Wideband Code Division Multiple Access), HSPA (High-Speed Packet Access), etc.
[0047] Additionally, communications between devices in a communications system may be performed according to any level of communications protocol, including, but not limited to, 1G (generation), 2G, 2.5G, 2.75G, 3G, 4G, 4.5G, 5G, New Radio (NR), and / or other conventional or future-developed communications protocols.
[0048] In an embodiment of the present invention, the term "network equipment" refers to, for example, a device in a communication system that connects a terminal device to a communication network and provides services to the terminal device. The network equipment may include, but is not limited to, a "node" and / or a "donor" under the IAB architecture, a base station (BS), an access point (AP), a transmission reception point (TRP), a broadcast transmitter, a mobile management entity (MME), a network gateway, a server, a radio network controller (RNC), a base station controller (BSC), etc.
[0049] The base station may include, but is not limited to, a Node B (NodeB or NB), an evolved Node B (eNodeB or eNB), a 5G base station (gNB), etc., and may further include a Remote Radio Head (RRH), a Remote Radio Unit (RRU), a relay, or a low-power node (e.g., femto, pico, etc.). The term "base station" may include some or all of these functions, and each base station can provide communication coverage for a specific geographical area. For example, a 5G base station gNB may include one gNB CU and one or more gNB DUs, where a CU / DU is a logical node of the gNB that has some of the functions of the gNB. The term "cell" may refer to a base station and / or the area it covers, depending on the context in which the term is used.
[0050] In the embodiments of the present invention, the term "user equipment" (UE) or "terminal equipment" (TE) refers to a device that accesses a communication network and receives services from the network, for example, via network equipment. The user equipment may be fixed or mobile, and may also be referred to as a mobile station (MS), terminal, subscriber station (SS), access terminal (AT), station, etc. For example, it is a terminal equipment served by an IAB node or an IAB donor under the IAB architecture.
[0051] Among these, user equipment may include, but is not limited to, cellular phones, personal digital assistants (PDAs), wireless modems, wireless communication devices, mobile devices, machine-type communication devices, laptop computers, cordless phones, smartphones, smart watches, digital cameras, etc.
[0052] Furthermore, for example, in a scenario such as the Internet of Things (IoT), the user equipment may also be a monitoring or measuring device or apparatus, for example, including but not limited to, a Machine Type Communication (MTC) terminal, an in-vehicle communication terminal, a Device to Device (D2D) terminal, a Machine to Machine (M2M) terminal, etc.
[0053] The following describes an example scenario of the present invention, but the present invention is not limited thereto.
[0054] FIG. 3 is a diagram illustrating a communication system according to an embodiment of the present invention. It illustrates an example of a terminal device and a network device. As shown in FIG. 3, a communication system 100 may include a network device 101 and a terminal device 102. For convenience, FIG. 3 illustrates an example of only one terminal device. The network device 101 is, for example, a network device gNB of an NR.
[0055] In an embodiment of the present invention, existing traffic (services / businesses) or future traffic may be carried between the network device 101 and the terminal device 102. For example, such traffic may include, but is not limited to, enhanced Mobile Broadband (eMBB), massive Machine Type Communication (mMTC), Ultra-Reliable and Low-Latency Communication (URLLC), etc.
[0056] For example, when the terminal device 102 detects a beam failure, it reports beam failure related information to the network device 101.
[0057] Figure 4 illustrates multi-TRP operation. As shown in Figure 4, in multi-TRP (mTRP) operation, a network device 101 serves a terminal device 102 through two TRPs, i.e., TRP1 and TRP2, and one serving cell schedules the terminal device 102 from the two TRPs, i.e., TRP1 and TRP2, to provide better PDSCH coverage, reliability, and / or data rate.
[0058] There are two different operation modes for multi-TRP: single DCI and multi-DCI. For these two modes, the RRC layer provides a configuration in which uplink and downlink operation is controlled by the physical layer and MAC. In the single DCI mode, the terminal device 102 is scheduled by TRP1 and TRP2 using the same DCI. In the multi-DCI mode, the UE is scheduled by the single DCI of TRP1 and TRP2.
[0059] 5A illustrates a scenario of an embodiment of the present invention. As shown in FIG. 5A, a network device 101 serves a terminal device 102 through two TRPs, i.e., TRP1 and TRP2, which may belong to the same cell or different cells. When TRP1 and TRP2 belong to different cells, for example, when TRP1 belongs to a serving cell and TRP2 belongs to a non-serving cell, TRP2 is associated with the serving cell to which TRP1 belongs.
[0060] In the scenario shown in Figure 5a, for example, link 1 between TRP1 and terminal equipment 102 works normally, i.e., the beam is good, so BFR will not be triggered. However, link 2 between TRP2 and terminal equipment 102 is experiencing blockage, i.e., beam blockage, in other words, beam failure is detected in TRP2, so BFR in TRP2 may need to be triggered.
[0061] 5b illustrates another scenario of an embodiment of the present invention. As shown in FIG. 5b, similar to FIG. 5a, network device 101 serves terminal device 102 through two TRPs, i.e., TRP1 and TRP2, which may belong to the same cell or different cells. When TRP1 and TRP2 belong to different cells, e.g., when TRP1 belongs to a serving cell and TRP2 belongs to a non-serving cell, TRP2 is associated with the serving cell to which TRP1 belongs.
[0062] In the scenario shown in FIG. 5b, for example, link 1 between TRP1 and terminal equipment 102 is experiencing blockage, i.e., beam blockage, and link 2 between TRP2 and terminal equipment 102 is also experiencing blockage, i.e., beam blockage; in other words, beam failures are detected in both TRP1 and TRP2, and BFRs in TRP1 and TRP2 may need to be triggered.
[0063] Various implementations of the present invention will be described below in conjunction with the drawings, which are merely examples and are not intended to limit the present invention. [Example]
[0064] An embodiment of the present invention provides a method for reporting beam failure-related information, which is applied to a terminal device, for example, the terminal device 102 in FIGS.
[0065] 6 is a diagram illustrating a method for reporting beam failure related information in embodiment 1 of the present invention. As shown in FIG. 6, the method includes the following steps:
[0066] Step 601: Generate a beam failure recovery MAC CE including beam failure related information; and Step 602: Send the beam failure recovery MAC CE to the network equipment to report the beam failure related information, wherein, when the beam failure related information of the beam failure recovery MAC CE contains a byte indicating TRP beam failure recovery information, the byte indicating TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or ascending order of serving cell index of secondary cell.
[0067] In this way, since the beam failure recovery information to be reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) in one cell, beam failure recovery information for at least one TRP can be reported, and the two requirements of grant size and including the maximum amount of beam failure recovery information can be met.
[0068] In an embodiment of the present invention, for example, when a beam failure is detected in at least one TRP out of two TRPs in a cell, the terminal equipment generates a beam failure recovery MAC CE (BFR MAC CE) including beam failure-related information and sends it to the network equipment.
[0069] In an embodiment of the present invention, the beam failure recovery MAC CE (BFR MAC CE) may be an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE). For example, the configuration of the beam failure recovery MAC CE (BFR MAC CE) can refer to the configuration of the BFR MAC CE shown in Figures 1 and 2, that is, it may include a 1-byte bitmap or a 4-byte bitmap.
[0070] In an embodiment of the present invention, the beam failure recovery MAC CE (BFR MAC CE) includes beam failure related information, and the beam failure related information includes beam failure information and may further include beam failure recovery information.
[0071] For example, the BFR MAC CE configuration shown in FIGS. 1 and 2 may include a 1-byte or 4-byte bitmap, and may further include a byte containing the AC field.
[0072] In other words, the bytes containing the AC region represent TRP beam failure recovery information, i.e., the bytes containing the AC region are dedicated to TRP (per-TPR).
[0073] For example, the Ci field indicates the beam failure detection of the TRP / BFD-RS pair of the secondary cell with serving cell index ServCellIndex i and the presence of one byte containing its AC field. When the Ci field is set to 1, it indicates that beam failure has been detected in at least one TRP of the secondary cell with ServCellIndex i, evaluation of candidate beams has already been completed, and a byte containing its AC field exists. When the Ci field is set to 0, it indicates that beam failure has not been detected in all TRPs of the secondary cell with ServCellIndex i, or that beam failure has been detected but evaluation of candidate beams has not been completed, and a byte containing its AC field does not exist.
[0074] In an embodiment of the present invention, the beam failure recovery information includes a byte indicating TRP beam failure recovery information, for example, a byte including an AC region.
[0075] In an embodiment of the present invention, the beam failure information may be referred to as a byte associated with the TRP beam failure information, for example, a byte located in a bitmap.
[0076] In an embodiment of the present invention, a beam represents a beam, which may be labeled by reference signal RS information, such as an SSB index or a CSI-RS resource ID, or may be indicated by the TCI state of a channel, such as a TCI state ID.
[0077] In embodiments of the present invention, "failure" may also refer to "need to recover" and these terms are interchangeable.
[0078] In an embodiment of the present invention, "detecting a beam failure" may refer to "triggering a beam failure recovery," and these terms are interchangeable.
[0079] In the embodiments of the present invention, the TRP, the BFD-RS set and the control resource set pool (coreset pool) are corresponding and these terms are interchangeable.
[0080] For example, one cell may have two TRPs to provide services to terminal equipment, and each TRP is configured with a set of beam failure detection reference signals, i.e., a BFD-RS set; in other words, the TRP and the BFD-RS set correspond to each other.
[0081] In an embodiment of the present invention, the byte indicating the TRP beam failure recovery information may indicate the TRP beam failure recovery information of a secondary cell, or may indicate the TRP beam failure recovery information of a special cell.
[0082] In an embodiment of the present invention, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifiers or indexes and / or in ascending order of serving cell indexes of secondary cells.
[0083] In other words, when a byte indicating TRP beam failure recovery information is present in the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifiers or indices and / or in ascending order of serving cell indices of secondary cells.
[0084] In other words, when the beam failure related information includes a byte indicating TRP beam failure recovery information, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS set identifier or index and / or the serving cell index of the secondary cell.
[0085] In an embodiment of the present invention, for example, the BFD-RS set identifier explicitly indicates a BFD-RS set, that is, it is an explicit BFD-RS set ID.
[0086] For example, when there is no explicit BFD-RS set ID, a BFD-RS set may be implicitly indicated by a BFD-RS set index. For example, for a BFD-RS, the index corresponding to a set of BFD-RSs that appears earlier, is configured earlier, or is included earlier is 0 or 1, and the index corresponding to a set of BFD-RSs that appears later, is configured later, or is included later is 1 or 2.
[0087] The specific details will be explained below.
[0088] In one implementation, when bytes indicating TRP beam failure recovery information are present, the bytes indicating TRP beam failure recovery information appear in ascending order of BFD-RS set identifiers or indexes.
[0089] For example, bytes of TRP beam failure recovery information with smaller BFD-RS pair identifiers or indexes appear earlier, and bytes of TRP beam failure recovery information with larger BFD-RS pair identifiers or indexes appear later.
[0090] For example, the TRP beam failure recovery information byte of the first BFD-RS set identifier or index appears first, and the TRP beam failure recovery information byte of the second BFD-RS set identifier or index appears later, and the first BFD-RS set identifier or index is smaller than the second BFD-RS set identifier or index.
[0091] In an embodiment of the present invention, the beam failure related information of the beam failure recovery MAC CE may include a byte indicating the TRP beam failure recovery information of the secondary cell, and may also include a byte indicating the TRP beam failure recovery information of the secondary cell and a byte indicating the TRP beam failure recovery information of the special cell.
[0092] When a byte indicating the TRP beam failure recovery information of a special cell is present, the byte indicating the TRP beam failure recovery information of the special cell appears before the byte indicating the TRP beam failure recovery information of a secondary cell.
[0093] For example, if beam failure recovery is triggered in both TRPs of a special cell and the beam failure recovery is not completed successfully, the terminal equipment initiates a random access procedure in the special cell, and the beam failure-related information is reported to the network equipment in the random access procedure. For example, the BFR MAC CE containing the beam failure-related information is carried by Msg 3, and Msg 3 may contain the TRP beam failure recovery information of only the special cell because of its relatively small size.
[0094] In another implementation scheme, when bytes indicating TRP beam failure recovery information exist, the bytes indicating TRP beam failure recovery information appear in ascending order of serving cell index (ServCellIndex).
[0095] For example, the bytes of TRP beam failure recovery information for or associated with a secondary cell with a smaller serving cell index appear earlier, and the bytes of TRP beam failure recovery information for or associated with a secondary cell with a larger serving cell index appear later.
[0096] For example, the bytes of TRP beam failure recovery information for or associated with a serving cell with a serving cell index of 1 appear first, and the bytes of TRP beam failure recovery information for or associated with a serving cell with a serving cell index of 2 appear later, and inferences can be made based on this.
[0097] In an embodiment of the present invention, in the beam failure related information of the beam failure recovery MAC CE, there may be one byte indicating TRP beam failure recovery information corresponding to one serving cell index, in other words, there may be one byte including an AC field corresponding to one serving cell index.
[0098] In this way, it is allowed to provide beam failure information for only one set of BFR-RS (one TRP).
[0099] In another implementation, when bytes indicating TRP beam failure recovery information are present, the bytes indicating TRP beam failure recovery information appear in ascending order of BFD-RS pair identifiers or indices and ascending order of secondary cell serving cell indices, thus maximizing the number of included bytes (which may be 0) including the AC region for a truncated Enhanced BFR MAC CE, while not exceeding the size of the available grant.
[0100] For example, the bytes indicating TRP beam failure recovery information first appear in ascending order of the BFD-RS pair identifier or index, and then in ascending order of the serving cell index of the secondary cell. In other words, the bytes indicating TRP beam failure recovery information are sorted in two stages: in the first stage, they are sorted in ascending order of the serving cell index of the secondary cell, and in the second stage, they are sorted in ascending order of the BFD-RS pair identifier or index. For example, after all bytes indicating the TRP beam failure recovery information of or associated with the secondary cell having the smaller serving cell index appear, the bytes indicating the TRP beam failure recovery information of or associated with the secondary cell having the larger serving cell index appear.
[0101] For example, after all bytes indicating TRP beam failure recovery information of a serving cell with a serving cell index of 1 or associated with a secondary cell with a serving cell index of 1 appear, the bytes of TRP beam failure recovery information of a secondary cell with a serving cell index of 2 or associated with a secondary cell with a serving cell index of 2 appear, and it can be inferred based on this. Among them, for the serving cell index of one secondary cell, the corresponding bytes of TRP beam failure recovery information are arranged according to the ascending order of the BFD-RS pair identifier or index.
[0102] Alternatively, the bytes indicating TRP beam failure recovery information first appear in ascending order of the serving cell index of the secondary cell, and then appear in ascending order of the BFD-RS set identifier or index. In other words, the bytes indicating TRP beam failure recovery information are sorted in two stages: in the first stage, they are sorted in ascending order of the BFD-RS set identifier or index, and in the second stage, they are sorted in ascending order of the serving cell index of the secondary cell. For example, after all bytes indicating TRP beam failure recovery information with smaller BFD-RS set identifiers or indexes appear, the bytes indicating TRP beam failure recovery information with larger BFD-RS set identifiers or indexes appear.
[0103] For example, after all bytes indicating the TRP beam failure recovery information of a first BFD-RS set identifier or index appear, bytes indicating the TRP beam failure recovery information of a second BFD-RS set identifier or index appear, and the first BFD-RS set identifier or index is smaller than the second BFD-RS set identifier or index, for the first BFD-RS set identifier or index, the bytes of its corresponding TRP beam failure recovery information are arranged in ascending order of the serving cell index of the secondary cell, and for the second BFD-RS set identifier or index, the bytes of its corresponding TRP beam failure recovery information are arranged in ascending order of the serving cell index of the secondary cell.
[0104] In an embodiment of the present invention, for a special cell, when a beam failure is detected in the BFD-RS set of the special cell, the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure-related information is reported using a beam failure recovery MAC CE including a 1-byte first bitmap.
[0105] In other words, in the above case, in steps 601 and 602, the terminal equipment generates a beam failure recovery MAC CE including a 1-byte first bitmap and sends it to the network equipment.
[0106] In this way, when the beam failure recovery MAC CE includes two bitmaps, it is possible to determine which beam failure recovery MAC CE including a 1-byte bitmap to use to report beam failure related information.
[0107] In an embodiment of the present invention, the beam failure recovery MAC CE is included in one MAC PDU and can be part of the random access procedure.
[0108] For example, one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0109] In one implementation, the first bitmap indicates beam failure information associated with a first BFD-RS set.
[0110] For example, the BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0111] In this implementation, optionally, the beam failure recovery MAC CE including the one-byte first bitmap may further include a one-byte second bitmap, which is included in the next byte after the first bitmap.
[0112] For example, the second bitmap indicates beam failure information associated with a second BFD-RS set, and the BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set, e.g., the BFD-RS set identifier or index of the second BFD-RS set is greater than the BFD-RS set identifier or index of the first BFD-RS set.
[0113] The configuration of the Enhanced BFR MAC CE in this embodiment will be exemplarily described below.
[0114] The Enhanced BFR MAC CE includes two sets of serving cell bitmaps (bitmaps), where the first set of serving cell bitmaps indicates failure information associated with a first BFD-RS set and the second set of bitmaps indicates failure information associated with a second BFD-RS set.
[0115] 7 is a diagram illustrating a (truncated) enhanced beam failure recovery MAC CE in one implementation manner of the first embodiment of the present invention. As shown in FIG. 7, the enhanced beam failure recovery MAC CE includes a 1-byte first bitmap and a 1-byte second bitmap, and the second bitmap is included in the byte next to the first bitmap. The first bitmap indicates beam failure information associated with a first BFD-RS set, and the second bitmap indicates beam failure information associated with a second BFD-RS set.
[0116] For example, the first byte C i is C 1-i or C i-1 may be replaced by the second byte C i is C 2-i or C i-2 or may be of a similar type.
[0117] 8 is a diagram showing another (truncated) enhanced beam failure recovery MAC CE in one implementation manner of embodiment 1 of the present invention. As shown in Fig. 8, the enhanced beam failure recovery MAC CE includes a 4-byte first bitmap and a 4-byte second bitmap, and the second bitmap is included in the bytes next to the first bitmap. The first bitmap indicates beam failure information associated with a first BFD-RS set, and the second bitmap indicates beam failure information associated with a second BFD-RS set.
[0118] For example, the 1st to 4th bytes of C i is C 1-i or C i-1 may be replaced by the C in bytes 5-8. i is C 2-i or C i-2 or may be of a similar type.
[0119] In this implementation, in addition to the bitmap (for example, the previous two bytes in FIG. 7 or the previous eight bytes in FIG. 8), the UL resource may further include three bytes containing the AC region, among which the special cell and secondary cell C x If beam failures are detected in all two TRPs of the special cell, and 7>x>=1, the truncated Enhanced BFR MAC CE may include only bytes indicating information associated with all BFD-RS pairs of the special cell, or bytes indicating information associated with a part of the BFD-RS pairs of the special cell, and the secondary cell C x Alternatively, the BFD-RS pair of the special cell may include a byte indicating information associated with a part of the BFD-RS pair of the secondary cell C, or a byte indicating information associated with all of the BFD-RS pairs of the special cell C. x It may also contain bytes indicating information associated with some BFD-RS tuples. For example:
[0120] Option 1: Two bytes containing the AC field, the first byte indicating information associated with BFD-RS pair 1 of the special cell and the second byte indicating information associated with BFD-RS pair 2 of the special cell; Option 2-1: Two bytes containing the AC field, the first byte indicating information associated with the BFD-RS pair 1 of the special cell, and the second byte indicating information associated with the BFD-RS pair 2 of the secondary cell. x indicates the information associated with BFD-RS Pair 1; Option 2-2: Two bytes containing the AC field, the first byte indicating information associated with the BFD-RS pair 2 of the special cell, and the second byte indicating information associated with the BFD-RS pair 2 of the secondary cell. x indicates the information associated with BFD-RS tuple 2; Option 2-3: Two bytes containing the AC field, where the first byte indicates information associated with the BFD-RS pair i of the special cell, and the second byte indicates information associated with the BFD-RS pair i of the secondary cell C x indicates the information associated with BFD-RS tuple i, in which the R bit indicates BFD-RS tuple i; Option 3-1: Three bytes containing the AC field, where the first byte indicates information associated with BFD-RS pair 1 of the special cell, the second byte indicates information associated with BFD-RS pair 2 of the special cell, and the third byte indicates information associated with the secondary cell C. x indicates the information associated with BFD-RS Pair 1; Option 3-2: Three bytes containing the AC field, where the first byte indicates information associated with the BFD-RS pair 1 of the special cell, and the second byte indicates information associated with the BFD-RS pair 2 of the secondary cell. x The first byte indicates information associated with BFD-RS set 1 for the special cell, and the second byte indicates information associated with BFD-RS set 2 for the special cell.
[0121] In another implementation, the first bitmap may indicate the serving cell in which a TRP beam failure is detected.
[0122] In this other implementation scheme, optionally, the beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, which is included in the byte following the first bitmap.
[0123] For example, the second bitmap indicates the number of BFD-RS pairs for which TRP beam failure is detected in the serving cell.
[0124] For example, the number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1.
[0125] For example, 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0126] In this other implementation manner, the second bitmap indicates the number of BFD-RS pairs in which TRP beam failure is detected in the serving cell, where the serving cell may be any serving cell, or may be a serving cell in which multiple TRP / BFD-RS pairs are configured, or may be a serving cell in which TRP beam failure is detected.
[0127] For example, the serving cell is the serving cell in which a TRP beam failure is detected.
[0128] The configuration of the enhanced beam failure recovery MAC CE in this other implementation scheme will be exemplarily described below.
[0129] The Enhanced BFR MAC CE includes a set of serving cell bitmaps (bitmaps) and another set of bitmaps indicating the number of failed TRPs associated with serving cells where multi-TRP BFD / BFR is configured (beam failures are detected). The serving cell bitmap indicates the serving cells where beam failures of the BFD-RS set are detected. Optionally, one bit in the AC field indicates the failed TRP ID.
[0130] Figure 9 is a diagram of a (truncated) enhanced beam failure recovery MAC CE in another implementation of the first embodiment of the present invention. As shown in Figure 9, the first byte is a serving cell bitmap, and the second byte is another set of bitmaps, which indicate the number of failed TRPs associated with the serving cell where multi-TRP BFD / BFR is configured and beam failure is detected, among which: C i When the field is set to 1, the corresponding N fields (N fields) appear, where N represents the number of failed TRPs associated with the serving cell. i The R bit may appear when the AC field is set to 0. Optionally, a bit in the byte containing the AC field indicates a failed TRP ID, e.g., in Figure 9 the R bit in the byte containing the AC field is replaced by the TRP ID field.
[0131] Figure 10 is a diagram showing another (truncated) enhanced beam failure recovery MAC CE in another implementation of the first embodiment of the present invention. As shown in Figure 10, the first to fourth bytes are a set of serving cell bitmaps, and the fifth byte is another set of bitmaps, which represent the number of failed TRPs associated with the serving cell where multi-TRP BFD / BFR is configured and beam failure is detected, among which: C i When the range is set to 1, a corresponding N range appears, where N represents the number of failed TRPs associated with the serving cell. i The R bit may appear when the AC field is set to 0. Optionally, a bit in the byte containing the AC field indicates a failed TRP ID, e.g., in Figure 10 the R bit in the byte containing the AC field is replaced by the TRP ID field.
[0132] Also, in the enhanced beam failure recovery MAC CE shown in Figure 10, the other set of bitmaps is a 1-byte bitmap, but a multi-byte bitmap may also be used, for example, a 2-byte, 3-byte, or 4-byte bitmap may also be used.
[0133] In this alternative implementation, prior art is reused as much as possible and changes to standards are minimal, reducing costs such as testing.
[0134] As can be seen from the above embodiments, when a byte indicating TRP beam failure recovery information is present in the beam failure related information of the beam failure recovery MAC CE reported to the network device, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS pair identifier or index and / or the serving cell index of the secondary cell. In this way, since the beam failure recovery information to be reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) of one cell, at least one TRP beam failure recovery information can be reported, and the two requirements of grant size and including maximum beam failure recovery information can also be met. [Example]
[0135] An embodiment of the present invention provides a method for reporting beam failure related information, which is applied to a terminal device.
[0136] 11 is a diagram illustrating a method for reporting beam failure related information in embodiment 2 of the present invention. As shown in FIG. 11, the method includes the following steps:
[0137] Step 1101: Generate a beam failure recovery MAC CE including beam failure related information; and Step 1102: Send the beam failure recovery MAC CE to the network equipment to report the beam failure related information, whereby when a beam failure is detected in the BFD-RS set of the special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header", the beam failure related information is reported using a beam failure recovery MAC CE including a 1-byte first bitmap.
[0138] In other words, in the above case, in steps 1101 and 1102, the terminal equipment generates a beam failure recovery MAC CE including a 1-byte first bitmap and sends it to the network equipment.
[0139] In this way, when the beam failure recovery MAC CE includes two bitmaps, it is possible to determine which beam failure recovery MAC CE including a 1-byte bitmap to use to report beam failure related information.
[0140] In an embodiment of the present invention, the beam failure recovery MAC CE (BFR MAC CE) may be an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE). For example, the configuration of the beam failure recovery MAC CE (BFR MAC CE) can refer to the configurations of the BFR MAC CE shown in Figures 8 to 10.
[0141] In an embodiment of the present invention, the beam failure recovery MAC CE (BFR MAC CE) includes beam failure related information, and the beam failure related information includes beam failure information and may further include beam failure recovery information.
[0142] In an embodiment of the present invention, the beam failure recovery information includes a byte indicating TRP beam failure recovery information, for example, a byte including an AC region.
[0143] In an embodiment of the present invention, the beam failure information may be referred to as a byte associated with the TRP beam failure information, for example, a byte located in a bitmap.
[0144] In an embodiment of the present invention, a beam represents a beam, which may be labeled by reference signal RS information, such as an SSB index or a CSI-RS resource ID, and may be indicated by the TCI state of the channel, such as a TCI state ID.
[0145] In embodiments of the present invention, "failure" may also refer to "need to recover" and these terms are interchangeable.
[0146] In the embodiments of the present invention, the TRP, the BFD-RS set and the control resource set pool (coreset pool) are corresponding and these terms are interchangeable.
[0147] In an embodiment of the present invention, "detecting a beam failure" may also refer to "triggering a beam failure recovery," and these terms are interchangeable.
[0148] For example, one cell may have two TRPs to provide services to terminal equipment, and each TRP is configured with a set of beam failure detection reference signals, i.e., a BFD-RS set; in other words, the TRP and the BFD-RS set correspond to each other.
[0149] In an embodiment of the present invention, the beam failure recovery MAC CE may be included in one MAC PDU and may be part of a random access procedure.
[0150] For example, one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0151] In one implementation, the first bitmap indicates beam failure information associated with a first BFD-RS set.
[0152] For example, the BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0153] In this implementation, optionally, the beam failure recovery MAC CE including the one-byte first bitmap may further include a one-byte second bitmap, which is included in the byte following the first bitmap.
[0154] For example, the second bitmap indicates beam failure information associated with a second BFD-RS set, and the BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set, e.g., the BFD-RS set identifier or index of the second BFD-RS set is greater than the BFD-RS set identifier or index of the first BFD-RS set.
[0155] In this embodiment, the Enhanced BFR MAC CE includes two sets of serving cell bitmaps, where the first set of serving cell bitmaps indicates failure information associated with a first BFD-RS set, and the second set of bitmaps indicates failure information associated with a second BFD-RS set. For specific examples of the Enhanced BFR MAC CE, please refer to Figures 7 and 8 and the related content in Example 1, and redundant descriptions will be omitted here.
[0156] In this implementation, in addition to the bitmap (e.g., the previous two bytes in FIG. 7 or the previous eight bytes in FIG. 8), the UL resource can further accommodate three bytes including the AC region, among which the special cell and secondary cell C x If beam failures are detected in all two TRPs, and 7>x>=1, the truncated Enhanced BFR MAC CE may include only bytes indicating information associated with all BFD-RS pairs of the special cell, or may include bytes indicating information associated with a portion of the BFD-RS pairs of the special cell and the secondary cell C x Alternatively, the special cell may include a byte indicating information associated with all BFD-RS pairs of the special cell and a byte indicating information associated with all BFD-RS pairs of the secondary cell C x For a specific example, see the description in the first embodiment, and a duplicated description will be omitted here.
[0157] In another implementation, the first bitmap may indicate the serving cell in which a TRP beam failure is detected.
[0158] In this other implementation scheme, optionally, the beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, which is included in the byte following the first bitmap.
[0159] For example, the second bitmap indicates the number of BFD-RS pairs in which TRP beam failure is detected in the serving cell.
[0160] For example, the number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1.
[0161] For example, 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0162] In this other implementation manner, the second bitmap indicates the number of BFD-RS pairs in which TRP beam failure is detected in the serving cell, where the serving cell may be any serving cell, or a serving cell in which multiple TRP / BFD-RS pairs are configured, or a serving cell in which TRP beam failure is detected.
[0163] For example, the serving cell is the serving cell in which a TRP beam failure is detected.
[0164] In this other embodiment, the Enhanced BFR MAC CE includes one set of serving cell bitmaps and another set of bitmaps, which indicate the number of failed TRPs associated with the serving cell for which multi-TRP BFD / BFR is configured (beam failure is detected). The serving cell bitmap indicates the serving cell for which beam failure of the BFD-RS set is detected. It also includes one bit in the byte including the AC field indicating the failed TRP ID. For specific examples of the Enhanced BFR MAC CE, please refer to Figures 9 and 10 and the related content in Example 1, and redundant description will be omitted here.
[0165] In this alternative implementation, existing technology is reused as much as possible, and changes to standards are minimal, reducing costs such as testing.
[0166] As can be seen from the above embodiment, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure related information is reported using the beam failure recovery MAC CE including the 1-byte first bitmap. In this way, when the beam failure recovery MAC CE includes two bitmaps, it can be determined which beam failure recovery MAC CE including the 1-byte bitmap to use to report the beam failure related information. [Example]
[0167] An embodiment of the present invention provides a reporting device for beam failure-related information, which is applied to a terminal device. The principle of solving the problem by the device is the same as that of the method in embodiment 1, so that the specific implementation can refer to the implementation of the method in embodiment 1, and the same or related redundant description will be omitted here.
[0168] 12 is a diagram illustrating a reporting device for beam failure related information according to a third embodiment of the present invention. As shown in FIG. 12, the device 1200 includes:
[0169] A first generating unit 1201: generates a beam failure recovery MAC CE (BFR MAC CE) including beam failure related information; and First transmitting unit 1202: Sends the beam failure recovery MAC CE to a network device to report the beam failure related information, wherein, when the beam failure related information of the beam failure recovery MAC CE contains a byte indicating TRP beam failure recovery information, the byte indicating TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or ascending order of serving cell index of secondary cell.
[0170] In an embodiment of the present invention, when a byte indicating TRP beam failure recovery information exists, the byte indicating TRP beam failure recovery information may appear in ascending order of BFD-RS set identifier or index, where the byte indicating TRP beam failure recovery information with a smaller BFD-RS set identifier or index appears earlier, and the byte indicating TRP beam failure recovery information with a larger BFD-RS set identifier or index appears later.
[0171] For example, if beam failure recovery has been triggered in all two TRPs of a special cell and the beam failure recovery has not been completed successfully, the terminal equipment initiates a random access procedure in the special cell, and the beam failure-related information is reported to the network equipment in the random access procedure.
[0172] In an embodiment of the present invention, when bytes indicating TRP beam failure recovery information are present, the bytes indicating TRP beam failure recovery information may appear in ascending order of the serving cell index of the secondary cells, in which the bytes indicating TRP beam failure recovery information of the secondary cells with smaller serving cell indexes or associated with the secondary cells with smaller serving cell indexes appear earlier, and the bytes indicating TRP beam failure recovery information of the secondary cells with larger serving cell indexes or associated with the secondary cells with larger serving cell indexes appear later.
[0173] In an embodiment of the present invention, in the beam failure related information of the beam failure recovery MAC CE, there may be one byte indicating TRP beam failure recovery information corresponding to one serving cell index.
[0174] In an embodiment of the present invention, when a byte indicating TRP beam failure recovery information exists, the byte indicating TRP beam failure recovery information may appear in ascending order of the BFD-RS set identifier or index and the serving cell index of the secondary cell in ascending order, whereby the byte indicating TRP beam failure recovery information first appears in ascending order of the BFD-RS set identifier or index and then appears in ascending order of the serving cell index of the secondary cell, or the byte indicating TRP beam failure recovery information first appears in ascending order of the serving cell index of the secondary cell and then appears in ascending order of the BFD-RS set identifier or index.
[0175] For example, the bytes indicating TRP beam failure recovery information appearing first in ascending order of the BFD-RS set identifier or index and then in ascending order of the serving cell index of the secondary cell includes the bytes indicating the TRP beam failure recovery information of the secondary cell with the larger serving cell index or associated with the secondary cell with the larger serving cell index appearing after all the bytes indicating the TRP beam failure recovery information of the secondary cell with the smaller serving cell index or associated with the secondary cell with the smaller serving cell index have appeared.
[0176] For example, the bytes indicating TRP beam failure recovery information appear first in ascending order of the serving cell index of the secondary cell and then in ascending order of the BFD-RS set identifier or index, including the bytes indicating the TRP beam failure recovery information with a larger BFD-RS set identifier or index appearing after all the bytes indicating the TRP beam failure recovery information with a smaller BFD-RS set identifier or index have appeared.
[0177] For example, the byte indicating the TRP beam failure recovery information indicates the TRP beam failure recovery information of the secondary cell.
[0178] In an embodiment of the present invention, when a beam failure is detected in a BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure-related information is reported using a beam failure recovery MAC CE including a 1-byte first bitmap.
[0179] In an embodiment of the present invention, the first bitmap may indicate beam failure information associated with a first BFD-RS set.
[0180] For example, the BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0181] In an embodiment of the present invention, the beam failure recovery MAC CE including the one-byte first bitmap may further include a one-byte second bitmap, which is included in the next byte of the first bitmap.
[0182] In an embodiment of the present invention, the second bitmap may indicate beam failure information associated with a second BFD-RS set, and the BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set.
[0183] In an embodiment of the present invention, the first bitmap may indicate a serving cell in which a TRP beam failure is detected.
[0184] In an embodiment of the present invention, the beam failure recovery MAC CE including the one-byte first bitmap may further include a one-byte second bitmap, which is included in the next byte of the first bitmap.
[0185] In an embodiment of the present invention, the second bitmap may indicate the number of BFD-RS pairs in which TRP beam failure is detected in the serving cell.
[0186] For example, the number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1.
[0187] For example, 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0188] For example, the serving cell is the serving cell in which a TRP beam failure is detected.
[0189] For example, the beam failure recovery MAC CE is included in one MAC PDU and is part of the random access procedure.
[0190] For example, one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0191] In an embodiment of the present invention, the beam failure recovery MAC CE may be an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE).
[0192] In the embodiment of the present invention, for the specific functions of each unit described above, please refer to the description of the relevant steps in the first embodiment, and the duplicated description will be omitted here.
[0193] As can be seen from the above embodiments, when a byte indicating TRP beam failure recovery information is present in the beam failure related information of the beam failure recovery MAC CE reported to the network device, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS pair identifier or index and / or the serving cell index of the secondary cell. In this way, since the beam failure recovery information to be reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) of one cell, at least one TRP beam failure recovery information can be reported, and the two requirements of grant size and including maximum beam failure recovery information can also be met. [Example]
[0194] An embodiment of the present invention provides a reporting device for beam failure-related information, which is applied to a terminal device. The principle of solving the problem by the device is the same as that of the method in embodiment 2, so that the specific implementation can refer to the implementation of the method in embodiment 2, and the duplicated description of the same or related content will be omitted here.
[0195] 13 is a diagram illustrating a reporting device for beam failure related information according to a fourth embodiment of the present invention. As shown in FIG. 13, the device 1300 includes:
[0196] A second generating unit 1301: generates a beam failure recovery MAC CE including beam failure related information; and A second sending unit 1302: sends the beam failure recovery MAC CE to a network device to report the beam failure related information.
[0197] Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure-related information is reported using the beam failure recovery MAC CE including the 1-byte first bitmap.
[0198] In an embodiment of the present invention, the first bitmap may indicate beam failure information associated with a first BFD-RS set.
[0199] For example, the BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0200] In an embodiment of the present invention, the beam failure recovery MAC CE including the 1-byte first bitmap may further include a 1-byte second bitmap, which is included in the byte next to the first bitmap.
[0201] In an embodiment of the present invention, the second bitmap may indicate beam failure information associated with a second BFD-RS set, and the BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set.
[0202] In an embodiment of the present invention, the first bitmap may indicate a serving cell in which a TRP beam failure is detected.
[0203] In an embodiment of the present invention, the beam failure recovery MAC CE including the 1-byte first bitmap may further include a 1-byte second bitmap, which is included in the byte next to the first bitmap.
[0204] In an embodiment of the present invention, the second bitmap may indicate the number of BFD-RS pairs in which TRP beam failure is detected in the serving cell.
[0205] For example, the number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1.
[0206] For example, 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0207] For example, the serving cell is the serving cell in which a TRP beam failure is detected.
[0208] For example, the beam failure recovery MAC CE is included in one MAC PDU and is part of the random access procedure.
[0209] For example, one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0210] In an embodiment of the present invention, the beam failure recovery MAC CE may be an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE).
[0211] In the embodiment of the present invention, the specific functions of each unit mentioned above can be referred to the description of the relevant steps in the second embodiment, and the duplicated description will be omitted here.
[0212] As can be seen from the above embodiment, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure related information is reported using the beam failure recovery MAC CE including the 1-byte first bitmap. In this way, when the beam failure recovery MAC CE includes two bitmaps, it can be determined which beam failure recovery MAC CE including the 1-byte bitmap to use to report the beam failure related information. [Example]
[0213] An embodiment of the present invention provides a terminal device, which includes the beam failure related information reporting device according to the third or fourth embodiment.
[0214] Fig. 14 is a block diagram showing a system configuration of a terminal device according to a fifth embodiment of the present invention. As shown in Fig. 14, a terminal device 1400 may include a processor 1410 and a memory 1420, and the memory 1420 is connected to the processor 1410. Note that this figure is merely an example, and other types of configurations may be used to supplement or replace the configurations to realize telecommunication functions or other functions.
[0215] In one implementation, the functionality of the beam failure related information reporter can be integrated into the processor 1410 .
[0216] For example, the processor 1410 may be configured as follows: generate a beam failure recovery MAC CE including beam failure related information; and send the beam failure recovery MAC CE to a network device to report the beam failure related information, wherein, when the beam failure related information of the beam failure recovery MAC CE includes a byte indicating TRP beam failure recovery information, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifiers or indexes and / or in ascending order of serving cell indexes of secondary cells.
[0217] Alternatively, the processor 1410 may be configured as follows: generate a beam failure recovery MAC CE including beam failure-related information; and send the beam failure recovery MAC CE to a network device to report the beam failure-related information, wherein, when a beam failure is detected in a BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including a 4-byte first bitmap plus its header," report the beam failure-related information using a beam failure recovery MAC CE including a 1-byte first bitmap.
[0218] In another implementation, the beam failure related information reporting device may be located separately from the processor 1410, for example, the beam failure related information reporting device may be configured as a chip connected to the processor 1410, and the functions of the device may be realized under the control of the processor 1410.
[0219] As shown in Fig. 14, the terminal device 1400 may further include a communication module 1430, an input unit 1440, a display 1450, a power supply 1460, etc. It is not necessary for the terminal device 1400 to include all of the components shown in Fig. 14. The terminal device 1400 may also include components not shown in Fig. 14, but reference can be made to related art for this information.
[0220] As shown in FIG. 14, the processor 1410, which may be referred to as a controller or operational control, may include a microprocessor or other processing and / or logic device, and the processor 1410 can receive inputs and control the operation of each component of the terminal device 1400.
[0221] The memory 1420 may include one or more of a buffer, flash memory, HDD, removable medium, volatile memory, non-volatile memory, or other suitable device, and may store various data and may further store programs for information processing. The processor 1410 executes the programs stored in the memory 1420 to store or process information. Note that the functions of the other components are similar to those of the conventional components, and therefore detailed descriptions thereof will be omitted here. Each component of the terminal device 1400 may be realized by dedicated hardware, firmware, software, or a combination thereof, all of which are within the scope of the present invention.
[0222] As can be seen from the above embodiments, when a byte indicating TRP beam failure recovery information is present in the beam failure related information of the beam failure recovery MAC CE reported to the network device, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS pair identifier or index and / or the serving cell index of the secondary cell. In this way, since the beam failure recovery information to be reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) of one cell, at least one TRP beam failure recovery information can be reported, and the two requirements of grant size and including maximum beam failure recovery information can also be met.
[0223] In addition, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure related information is reported using the beam failure recovery MAC CE including the 1-byte first bitmap. In this way, when the beam failure recovery MAC CE includes two bitmaps, it is possible to determine which beam failure recovery MAC CE including the 1-byte bitmap to use to report the beam failure related information. [Example]
[0224] An embodiment of the present invention provides a method for receiving beam failure-related information, which is applied to a network device. The method corresponds to the method for reporting beam failure-related information described in embodiment 1 or embodiment 2. For specific details, please refer to the descriptions in embodiment 1 and embodiment 2, and redundant descriptions will be omitted here.
[0225] 15 is a diagram illustrating a method for receiving beam failure related information in embodiment 6 of the present invention. As shown in FIG. 15, the method includes the following steps:
[0226] Step 1501: Receive a beam failure recovery MAC CE including beam failure related information from a terminal device.
[0227] Wherein, when the beam failure related information of the beam failure recovery MAC CE includes a byte indicating TRP beam failure recovery information, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS pair identifier or index and / or the serving cell index of the secondary cell. For example, when the beam failure related information of the beam failure recovery MAC CE includes a byte indicating the TRP beam failure recovery information of a special cell, the byte indicating the TRP beam failure recovery information of the special cell appears before the byte indicating the TRP beam failure recovery information of the secondary cell.
[0228] In addition, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the terminal equipment reports the beam failure-related information using the beam failure recovery MAC CE including the 1-byte first bitmap, i.e., the beam failure recovery MAC CE received by the network equipment is the beam failure recovery MAC CE including the 1-byte first bitmap.
[0229] 16 is a diagram illustrating another method for receiving beam failure related information in embodiment 6 of the present invention. As shown in FIG. 16, the method includes the following steps:
[0230] Step 1601: Receive a beam failure recovery MAC CE including beam failure related information from a terminal device.
[0231] Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure recovery MAC CE received by the network device is a beam failure recovery MAC CE including the 1-byte first bitmap.
[0232] For example, the first bitmap indicates beam failure information associated with a first BFD-RS set.
[0233] For example, the first bitmap indicates a serving cell in which a TRP beam failure is detected.
[0234] In the embodiment of the present invention, the specific contents of the beam failure recovery MAC CE and the beam failure related information can be referred to in the description of the first and second embodiments, and the duplicated description will be omitted here.
[0235] As can be seen from the above embodiments, when a byte indicating TRP beam failure recovery information is present in the beam failure related information of the beam failure recovery MAC CE reported to the network device, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS pair identifier or index and / or the serving cell index of the secondary cell. In this way, since the beam failure recovery information to be reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) of one cell, at least one TRP beam failure recovery information can be reported, and the two requirements of grant size and including maximum beam failure recovery information can also be met. [Example]
[0236] An embodiment of the present invention provides a receiving device for beam failure-related information, which is applied to network equipment. The principle of solving the problem by the device is similar to that of the method in Example 6, so that the specific implementation can refer to the implementation of the method in Example 6, and the same or related redundant description will be omitted here.
[0237] 17 is a diagram illustrating a receiving apparatus for beam failure related information according to a seventh embodiment of the present invention. As shown in FIG. 17, the apparatus 1700 includes:
[0238] First receiving unit 1701: receives a beam failure recovery MAC CE including beam failure related information from a terminal device.
[0239] Wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS set identifier or index and / or the serving cell index of the secondary cell.
[0240] For example, when the beam failure related information of the beam failure recovery MAC CE includes a byte indicating the TRP beam failure recovery information of a special cell, the byte indicating the TRP beam failure recovery information of the special cell appears before the byte indicating the TRP beam failure recovery information of a secondary cell.
[0241] In addition, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the terminal equipment reports the beam failure-related information using the beam failure recovery MAC CE including the 1-byte first bitmap, i.e., the beam failure recovery MAC CE received by the network equipment is the beam failure recovery MAC CE including the 1-byte first bitmap.
[0242] 18 is a diagram illustrating another beam failure related information receiving apparatus according to the seventh embodiment of the present invention. As shown in FIG. 18, the apparatus 1800 includes:
[0243] A second receiving unit 1801: receives a beam failure recovery MAC CE including beam failure related information from a terminal device.
[0244] Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including the 4-byte first bitmap plus its header," the beam failure recovery MAC CE received by the network device is a beam failure recovery MAC CE including the 1-byte first bitmap.
[0245] For example, the first bitmap indicates beam failure information associated with a first BFD-RS set.
[0246] For example, the first bitmap indicates the serving cell in which a TRP beam failure is detected.
[0247] In the embodiment of the present invention, the specific contents of the beam failure recovery MAC CE and the beam failure related information can be referred to in the description of the first and second embodiments, and the duplicated description will be omitted here.
[0248] As can be seen from the above embodiments, when a byte indicating TRP beam failure recovery information is present in the beam failure related information of the beam failure recovery MAC CE reported to the network device, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS pair identifier or index and / or the serving cell index of the secondary cell. In this way, since the beam failure recovery information to be reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) of one cell, at least one TRP beam failure recovery information can be reported, and the two requirements of grant size and including maximum beam failure recovery information can also be met. [Example]
[0249] An embodiment of the present invention provides a network device, which includes a beam failure related information receiving device according to the seventh embodiment.
[0250] 19 is a block diagram showing a system configuration of a network device according to an eighth embodiment of the present invention. As shown in Fig. 19, a network device 1900 may include a processor 1910 and a memory 1920, and the memory 1920 is connected to the processor 1910. The memory 1920 can store various data and can also store an information processing program 1930, and can execute the program 1930 under the control of the processor 1910 to receive various information transmitted from a terminal device and transmit various information to the terminal device.
[0251] In one implementation, the function of the receiving device for beam failure-related information can be integrated into the processor 1910. Wherein, the processor 1910 may be configured as follows: receive a beam failure recovery MAC CE including beam failure-related information from a terminal device, where, when the beam failure-related information of the beam failure recovery MAC CE has a byte indicating TRP beam failure recovery information, the byte indicating TRP beam failure recovery information appears in ascending order of BFD-RS set identifiers or indexes and / or ascending order of serving cell indexes of secondary cells.
[0252] Alternatively, the processor 1910 may be configured as follows: receive a beam failure recovery MAC CE including beam failure-related information from a terminal device, in which beam failure is detected in a BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header," then the beam failure recovery MAC CE received by the network device is a beam failure recovery MAC CE including a 1-byte first bitmap.
[0253] In another implementation manner, the receiving device for beam failure-related information may be located separately from the processor 1910, for example, the receiving device for beam failure-related information may be configured as a chip connected to the processor 1910, and the functions of the device may be realized under the control of the processor 1910.
[0254] 19, the network device 1900 may further include a transceiver 1940, an antenna 1950, etc., and since the functions of these components are similar to those of the conventional devices, detailed description thereof will be omitted here. Note that the network device 1900 does not need to include all the components shown in Fig. 19. The network device 1900 may further include components not shown in Fig. 19, but reference can be made to the prior art for this.
[0255] As can be seen from the above embodiments, when a byte indicating TRP beam failure recovery information is present in the beam failure related information of the beam failure recovery MAC CE reported to the network device, the byte indicating the TRP beam failure recovery information appears in ascending order of the BFD-RS pair identifier or index and / or the serving cell index of the secondary cell. In this way, since the beam failure recovery information to be reported is dedicated to the TRP, when beam failures are detected in multiple TRPs (e.g., two TRPs) of one cell, at least one TRP beam failure recovery information can be reported, and the two requirements of grant size and including maximum beam failure recovery information can also be met. [Example]
[0256] An embodiment of the present invention provides a communication system, which includes the terminal device according to embodiment 5 and / or the network device according to embodiment 8. For specific details, please refer to the descriptions in embodiments 1 to 8.
[0257] For example, the configuration of the communication system can be seen in FIG. 3. As shown in FIG. 3, the communication system 100 includes a network device 101 and a terminal device 102, the terminal device 102 is the same as the terminal device described in Example 5, and the network device 101 is the same as the network device described in Example 8, and detailed description thereof will be omitted here.
[0258] The above-described devices and methods may be realized by software or hardware, or by a combination of hardware and software. The present invention further relates to a computer-readable program as described below, which, when executed by a logic component, causes the logic component to realize the above-described devices or components, or to perform each of the above-described methods or steps. The logic component may be, for example, an FPGA (Field Programmable Gate Array), a microprocessor, or a processing unit used in a computer. The present invention also relates to a storage medium, such as a hard disk, magnetic disk, optical hard disk, DVD, or flash memory, that stores the above-described program.
[0259] Furthermore, one or more combinations of the functional blocks illustrated in the figures and / or one or more combinations of the functional blocks may be implemented as a general purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic component, a discrete gate or transistor logic component, a discrete hardware assembly, or any other suitable combination for performing the functions described herein. Also, one or more combinations of the functional blocks illustrated in the figures and / or one or more combinations of the functional blocks may be further implemented as a combination of computing devices, such as a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors communicatively coupled with a DSP, or any other configuration.
[0260] Although the preferred embodiments of the present invention have been described above, the present invention is not limited to these embodiments, and any modifications to the present invention that do not depart from the spirit of the present invention fall within the technical scope of the present invention.
[0261] Furthermore, the following additional notes are disclosed regarding the above-mentioned embodiments.
[0262] (Appendix 1) (Appendix 1) A reporting device for beam failure related information, the device being used in a terminal device, the device comprising: a first generating unit for generating a Beam Failure Recovery MAC CE (BFR MAC CE) including beam failure related information; and a first sending unit for sending the beam failure recovery MAC CE to a network device to report the beam failure related information; Wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifiers or indexes and / or in ascending order of serving cell indexes of secondary cells, device.
[0263] (Appendix 2) 10. The apparatus of claim 1, When a byte indicating TRP beam failure recovery information is present, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS pair identifier or index; Wherein, when the BFD-RS pair identifier or index is small, the byte indicating the TRP beam failure recovery information appears first, and when the BFD-RS pair identifier or index is large, the byte indicating the TRP beam failure recovery information appears later, device.
[0264] (Appendix 3) 3. The apparatus of claim 1 or 2, When the beam failure related information of the beam failure recovery MAC CE includes a byte indicating the TRP beam failure recovery information of a special cell, the byte indicating the TRP beam failure recovery information of the special cell appears before the byte indicating the TRP beam failure recovery information of a secondary cell.
[0265] (Appendix 4) 4. The apparatus of claim 3, When beam failure recovery is triggered in two TRPs of a special cell and the beam failure recovery is not completed successfully, the terminal equipment initiates a random access procedure in the special cell, and the beam failure-related information is reported to the network equipment in the random access procedure.
[0266] (Appendix 5) 5. The apparatus of any one of claims 1, 3 and 4, comprising: When a byte indicating TRP beam failure recovery information is present, the byte indicating the TRP beam failure recovery information appears in ascending order of serving cell index of secondary cells; Among them, the byte indicating the TRP beam failure recovery information of the secondary cell with a smaller serving cell index or associated with a secondary cell with a smaller serving cell index appears first, and the byte indicating the TRP beam failure recovery information of the secondary cell with a larger serving cell index or associated with a secondary cell with a larger serving cell index appears later.
[0267] (Appendix 6) 10. The apparatus of claim 1 or 5, In the beam failure related information of the beam failure recovery MAC CE, there is one byte indicating the TRP beam failure recovery information corresponding to one serving cell index, device.
[0268] (Appendix 7) 5. The apparatus of any one of claims 1-4, When a byte indicating TRP beam failure recovery information is present, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS pair identifier or index and in ascending order of serving cell index of secondary cell; Wherein, the byte indicating the TRP beam failure recovery information first appears in ascending order of the BFD-RS pair identifier or index, and then in ascending order of the serving cell index of the secondary cell; or The bytes indicating the TRP beam failure recovery information appear first in ascending order of the serving cell index of the secondary cell, and then in ascending order of the BFD-RS set identifier or index, according to the device.
[0269] (Appendix 8) 8. The apparatus of claim 7, The bytes indicating the TRP beam failure recovery information first appear in ascending order of the BFD-RS pair identifier or index, and then in ascending order of the serving cell index of the secondary cell, The device includes: after all bytes indicating the TRP beam failure recovery information of a secondary cell having a smaller serving cell index or associated with a secondary cell having a smaller serving cell index appear, a byte indicating the TRP beam failure recovery information of a secondary cell having a larger serving cell index or associated with a secondary cell having a larger serving cell index appears.
[0270] (Appendix 9) 8. The apparatus of claim 7, The bytes indicating the TRP beam failure recovery information first appear in ascending order of the serving cell index of the secondary cell, and then in ascending order of the BFD-RS pair identifier or index, The device includes: after all bytes indicating the TRP beam failure recovery information with a smaller BFD-RS set identifier or index appear, a byte indicating the TRP beam failure recovery information with a larger BFD-RS set identifier or index appears.
[0271] (Appendix 10) An apparatus according to any one of appendices 1-2 and 5-9, The byte indicating the TRP beam failure recovery information indicates the TRP beam failure recovery information of a secondary cell, the device.
[0272] (Appendix 11) 11. The apparatus of any one of claims 1-10, An apparatus for reporting beam failure-related information using a beam failure recovery MAC CE including a 1-byte first bitmap when a beam failure is detected in a BFD-RS set of a special cell, the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of a logical channel optimization process (LCP) is that "UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header."
[0273] (Appendix 12) 12. The apparatus of claim 11, The first bitmap indicates beam failure information associated with a first BFD-RS set, the device.
[0274] (Appendix 13) 13. The apparatus of claim 12, further comprising: The BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0275] (Appendix 14) 14. The apparatus of any one of claims 11-13, comprising: The beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte next to the first bitmap.
[0276] (Appendix 15) 15. The apparatus of claim 14, The second bitmap indicates beam failure information associated with a second BFD-RS set, and a BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set.
[0277] (Appendix 16) 12. The apparatus of claim 11, The first bitmap indicates a serving cell in which a TRP beam failure is detected, the device.
[0278] (Appendix 17) 17. The apparatus of claim 16, further comprising: The beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte next to the first bitmap.
[0279] (Appendix 18) 18. The apparatus of claim 17, The second bitmap indicates the number of BFD-RS pairs in which a TRP beam failure is detected in the serving cell, the device.
[0280] (Appendix 19) 19. The apparatus of claim 18, further comprising: The number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1, the device.
[0281] (Appendix 20) 19. The apparatus of claim 18, 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or A device, wherein 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0282] (Appendix 21) 21. The apparatus of any one of clauses 18-20, comprising: The serving cell is a serving cell in which a TRP beam failure is detected, the device.
[0283] (Appendix 22) 22. The apparatus of any one of clauses 11-21, comprising: The beam failure recovery MAC CE is included in one MAC PDU and is part of a random access procedure, the device.
[0284] (Appendix 22a) 23. The apparatus of claim 22, further comprising: An apparatus, wherein one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0285] (Appendix 23) 23. The apparatus of any one of clauses 1-22, comprising: The apparatus, wherein the beam failure recovery MAC CE is an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE).
[0286] (Appendix 24) A beam failure recovery information reporting device, the device being used in a terminal device, the device comprising: a second generating unit for generating a beam failure recovery MAC CE including beam failure related information; and a second sending unit for sending the beam failure recovery MAC CE to a network device to report the beam failure related information; An apparatus for reporting beam failure-related information using a beam failure recovery MAC CE including a 1-byte first bitmap when a beam failure is detected in a BFD-RS set of a special cell, the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of a logical channel optimization process (LCP) is that "UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header."
[0287] (Appendix 25) 25. The apparatus of claim 24, The first bitmap indicates beam failure information associated with a first BFD-RS set, the device.
[0288] (Appendix 26) 26. The apparatus of claim 25, The BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0289] (Appendix 27) 27. The apparatus of any one of clauses 25-26, comprising: The beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte next to the first bitmap.
[0290] (Appendix 28) 28. The apparatus of claim 27, The second bitmap indicates beam failure information associated with a second BFD-RS set, and a BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set.
[0291] (Appendix 29) 25. The apparatus of claim 24, The first bitmap indicates a serving cell in which a TRP beam failure is detected, the device.
[0292] (Appendix 30) 29. The apparatus of claim 29, The beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte next to the first bitmap.
[0293] (Appendix 31) 31. The apparatus of claim 30, The second bitmap indicates the number of BFD-RS pairs in which a TRP beam failure is detected in the serving cell, the device.
[0294] (Appendix 32) 32. The apparatus of claim 31, The number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1, the device.
[0295] (Appendix 33) 33. The apparatus of claim 32, further comprising: 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or A device, wherein 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0296] (Appendix 34) 34. The apparatus of any one of clauses 31-33, comprising: The serving cell is a serving cell in which a TRP beam failure is detected, the device.
[0297] (Appendix 35) 35. The apparatus of any one of clauses 25-34, comprising: The beam failure recovery MAC CE is included in one MAC PDU and is part of a random access procedure, the device.
[0298] (Appendix 35a) 36. The apparatus of claim 35, An apparatus, wherein one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0299] (Appendix 36) 36. The apparatus of any one of clauses 25-35, comprising: The apparatus, wherein the beam failure recovery MAC CE is an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE).
[0300] (Appendix 37) A receiving apparatus for beam failure related information, the apparatus being used in a network device, the apparatus comprising: a first receiving unit for receiving a beam failure recovery MAC CE including beam failure related information from a terminal device; Wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifiers or indexes and / or in ascending order of serving cell indexes of secondary cells, device.
[0301] (Appendix 38) 38. The apparatus of claim 37, When the beam failure related information of the beam failure recovery MAC CE includes a byte indicating the TRP beam failure recovery information of a special cell, the byte indicating the TRP beam failure recovery information of the special cell appears before the byte indicating the TRP beam failure recovery information of a secondary cell.
[0302] (Appendix 39) 1. A beam failure recovery information receiving apparatus, the apparatus being used in a network device, the apparatus comprising: a second receiving unit for receiving a beam failure recovery MAC CE including beam failure related information from a terminal device; Among them, when a beam failure is detected in the BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of the logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate the beam failure recovery MAC CE including a 4-byte first bitmap plus its header," the beam failure recovery MAC CE received by the network equipment is a beam failure recovery MAC CE including a 1-byte first bitmap, the device.
[0303] (Appendix 40) 39. The apparatus of claim 39, The first bitmap indicates beam failure information associated with a first BFD-RS set, the device.
[0304] (Appendix 41) 39. The apparatus of claim 39, The first bitmap indicates a serving cell in which a TRP beam failure is detected, the device.
[0305] (Appendix 42) A terminal device including the apparatus of any one of appendices 1-36.
[0306] (Appendix 43) 10. A network device comprising the device of any one of clauses 37-41.
[0307] (Appendix 44) 44. A communication system including a terminal device according to claim 42 and / or a network device according to claim 43.
[0308] (Appendix 2) (Appendix 1) A method for reporting beam failure related information, the method being used in a terminal device, the method comprising: generating a beam failure recovery MAC CE containing beam failure related information; and sending the beam failure recovery MAC CE to a network device to report the beam failure related information; wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or in ascending order of serving cell index of secondary cell.
[0309] (Appendix 2) 2. The method of claim 1, comprising: When a byte indicating TRP beam failure recovery information is present, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS pair identifier or index; Wherein, when the BFD-RS pair identifier or index is small, the byte indicating the TRP beam failure recovery information appears first, and when the BFD-RS pair identifier or index is large, the byte indicating the TRP beam failure recovery information appears later.
[0310] (Appendix 3) 10. The method according to claim 1 or 2, A method in which, when the beam failure related information of the beam failure recovery MAC CE includes a byte indicating the TRP beam failure recovery information of a special cell, the byte indicating the TRP beam failure recovery information of the special cell appears before the byte indicating the TRP beam failure recovery information of a secondary cell.
[0311] (Appendix 4) 4. The method of claim 3, A method in which, when beam failure recovery is triggered in two TRPs of a special cell and the beam failure recovery is not completed successfully, the terminal equipment initiates a random access procedure in the special cell, and the beam failure-related information is reported to the network equipment in the random access procedure.
[0312] (Appendix 5) 5. The method of any one of appendices 1, 3 and 4, comprising: When a byte indicating TRP beam failure recovery information is present, the byte indicating the TRP beam failure recovery information appears in ascending order of serving cell index of secondary cells; A method in which the byte indicating the TRP beam failure recovery information of a secondary cell with a smaller serving cell index or associated with a secondary cell with a smaller serving cell index appears earlier, and the byte indicating the TRP beam failure recovery information of a secondary cell with a larger serving cell index or associated with a secondary cell with a larger serving cell index appears later.
[0313] (Appendix 6) 6. The method according to claim 1 or 5, A method in which, in the beam failure related information of the beam failure recovery MAC CE, there is one byte indicating the TRP beam failure recovery information corresponding to one serving cell index.
[0314] (Appendix 7) 5. The method according to any one of claims 1 to 4, comprising: When a byte indicating TRP beam failure recovery information is present, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS pair identifier or index and in ascending order of serving cell index of secondary cell; Wherein, the byte indicating the TRP beam failure recovery information first appears in ascending order of the BFD-RS pair identifier or index, and then in ascending order of the serving cell index of the secondary cell; or A method in which the bytes indicating the TRP beam failure recovery information appear first in ascending order of the serving cell index of the secondary cell, and then in ascending order of the BFD-RS set identifier or index.
[0315] (Appendix 8) 8. The method of claim 7, The bytes indicating the TRP beam failure recovery information first appear in ascending order of the BFD-RS pair identifier or index, and then in ascending order of the serving cell index of the secondary cell, A method comprising the appearance of a byte indicating the TRP beam failure recovery information of a secondary cell having a larger serving cell index or associated with a secondary cell having a larger serving cell index after all bytes indicating the TRP beam failure recovery information of a secondary cell having a smaller serving cell index or associated with a secondary cell having a smaller serving cell index have appeared.
[0316] (Appendix 9) 8. The method of claim 7, The bytes indicating the TRP beam failure recovery information first appear in ascending order of the serving cell index of the secondary cell, and then in ascending order of the BFD-RS pair identifier or index, A method comprising the appearance of a byte indicating the TRP beam failure recovery information having a larger BFD-RS set identifier or index after all bytes indicating the TRP beam failure recovery information having a smaller BFD-RS set identifier or index have appeared.
[0317] (Appendix 10) A method according to any one of appendices 1-2 and 5-9, comprising: A method in which the byte indicating the TRP beam failure recovery information indicates the TRP beam failure recovery information of a secondary cell.
[0318] (Appendix 11) 11. The method according to any one of claims 1 to 10, comprising: A method for reporting beam failure-related information using a beam failure recovery MAC CE including a 1-byte first bitmap when a beam failure is detected in a BFD-RS set of a special cell, the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of a logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header."
[0319] (Appendix 12) 12. The method of claim 11, The method, wherein the first bitmap indicates beam failure information associated with a first BFD-RS set.
[0320] (Appendix 13) 13. The method of claim 12, The BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0321] (Appendix 14) 14. The method according to any one of claims 11-13, comprising: A method wherein the beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte following the first bitmap.
[0322] (Appendix 15) 15. The method of claim 14, The method, wherein the second bitmap indicates beam failure information associated with a second BFD-RS set, and a BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set.
[0323] (Appendix 16) 12. The method of claim 11, The method, wherein the first bitmap indicates a serving cell in which a TRP beam failure is detected.
[0324] (Appendix 17) 17. The method of claim 16, A method wherein the beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte following the first bitmap.
[0325] (Appendix 18) 18. The method of claim 17, The second bitmap indicates the number of BFD-RS pairs in which a TRP beam failure is detected in the serving cell.
[0326] (Appendix 19) 19. The method of claim 18, The method, wherein the number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1.
[0327] (Appendix 20) 19. The method of claim 18, 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or A method in which 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0328] (Appendix 21) 21. The method according to any one of claims 18-20, comprising: The method, wherein the serving cell is a serving cell in which a TRP beam failure is detected.
[0329] (Appendix 22) 22. The method according to any one of claims 11-21, comprising: The beam failure recovery MAC CE is included in one MAC PDU and is part of a random access procedure.
[0330] (Appendix 22a) 23. The method of claim 22, A method in which one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0331] (Appendix 23) 23. The method according to any one of claims 1-22, comprising: The beam failure recovery MAC CE is an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE).
[0332] (Appendix 24) A method for reporting beam failure recovery information, the method being used in a terminal device, the method comprising: generating a beam failure recovery MAC CE containing beam failure related information; and sending the beam failure recovery MAC CE to a network device to report the beam failure related information; Among these, when a beam failure is detected in a BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of a logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header," the method reports the beam failure-related information using a beam failure recovery MAC CE including a 1-byte first bitmap.
[0333] (Appendix 25) 25. The method of claim 24, The method, wherein the first bitmap indicates beam failure information associated with a first BFD-RS set.
[0334] (Appendix 26) 26. The method of claim 25, The BFD-RS set identifier or index of the first BFD-RS set is 0, 1, or 2.
[0335] (Appendix 27) 27. The method according to any one of claims 24-26, comprising: A method wherein the beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte following the first bitmap.
[0336] (Appendix 28) 28. The method of claim 27, The method, wherein the second bitmap indicates beam failure information associated with a second BFD-RS set, and a BFD-RS set identifier or index of the second BFD-RS set is different from the BFD-RS set identifier or index of the first BFD-RS set.
[0337] (Appendix 29) 25. The method of claim 24, The method, wherein the first bitmap indicates a serving cell in which a TRP beam failure is detected.
[0338] (Appendix 30) 29. The method of claim 29, A method wherein the beam failure recovery MAC CE including the one-byte first bitmap further includes a one-byte second bitmap, the second bitmap being included in the byte following the first bitmap.
[0339] (Appendix 31) 31. The method of claim 30, The second bitmap indicates the number of BFD-RS pairs in which a TRP beam failure is detected in the serving cell.
[0340] (Appendix 32) 32. The method of claim 31, The method, wherein the number of BFD-RS pairs of the TRP beam failure is 1 or 2 and is indicated by 0 or 1.
[0341] (Appendix 33) 33. The method of claim 32, 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2, or A method in which 1 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 1, and 0 indicates that the number of BFD-RS pairs in which the TRP beam failure is detected is 2.
[0342] (Appendix 34) 34. The method according to any one of claims 31-33, comprising: The method, wherein the serving cell is a serving cell in which a TRP beam failure is detected.
[0343] (Appendix 35) 35. The method according to any one of claims 25-34, comprising: The beam failure recovery MAC CE is included in one MAC PDU and is part of a random access procedure.
[0344] (Appendix 35a) 36. The method of claim 35, A method in which one MAC PDU includes at most one beam failure recovery MAC CE (BFR MAC CE) and / or one enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE).
[0345] (Appendix 36) 26. The method according to any one of claims 24-35, comprising: The beam failure recovery MAC CE is an enhanced beam failure recovery MAC CE (Enhanced BFR MAC CE) or an enhanced truncated beam failure recovery MAC CE (Enhanced Truncated BFR MAC CE).
[0346] (Appendix 37) 1. A method for receiving beam failure related information, the method being used in a network device, the method comprising: receiving a beam failure recovery MAC CE from a terminal device, the beam failure recovery MAC CE including beam failure related information; wherein, when a byte indicating TRP beam failure recovery information exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the TRP beam failure recovery information appears in ascending order of BFD-RS set identifier or index and / or in ascending order of serving cell index of secondary cell.
[0347] (Appendix 38) 38. The method of claim 37, A method in which, when the beam failure related information of the beam failure recovery MAC CE includes a byte indicating the TRP beam failure recovery information of a special cell, the byte indicating the TRP beam failure recovery information of the special cell appears before the byte indicating the TRP beam failure recovery information of a secondary cell.
[0348] (Appendix 39) 1. A method for receiving beam failure recovery information, the method being used in a network device, the method comprising: receiving a beam failure recovery MAC CE from a terminal device, the beam failure recovery MAC CE including beam failure related information; wherein, when a beam failure is detected in a BFD-RS set of a special cell, and the BFD-RS set of the special cell is indicated to be in the beam failure recovery MAC CE, and the result of a logical channel optimization process (LCP) is that "the UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header," the beam failure recovery MAC CE received by the network equipment is a beam failure recovery MAC CE including a 1-byte first bitmap.
[0349] (Appendix 40) 39. The method of claim 39, The method, wherein the first bitmap indicates beam failure information associated with a first BFD-RS set.
[0350] (Appendix 41) 39. The method of claim 39, The method, wherein the first bitmap indicates a serving cell in which a TRP beam failure is detected.
Claims
1. A device for reporting beam failure-related information for use in a terminal device, comprising: a first processor that generates a beam failure recovery MAC CE (BFR MAC CE) that includes beam failure related information; and a first transmitter for transmitting the beam failure recovery MAC CE to a network device to report the beam failure related information; When a byte (octet) indicating beam failure recovery information of a BFD-RS set exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating the beam failure recovery information of the BFD-RS set appears in ascending order of the serving cell index of the secondary cell, or in ascending order of the BFD-RS set identifier or index and the serving cell index of the secondary cell, 1. An apparatus for reporting beam failure-related information using a beam failure recovery MAC CE including a 1-byte first bitmap and a 1-byte second bitmap, when a random access procedure is initiated due to beam failure recovery being triggered for two BFD-RS sets of a special cell, the BFD-RS sets of the special cell are indicated in the beam failure recovery MAC CE, and a result of a logical channel optimization process (LCP) is that "UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header," wherein the first bitmap indicates a serving cell in which beam failure of the BFD-RS set is detected.
2. The device according to claim 1, When the beam failure related information of the beam failure recovery MAC CE includes a special cell byte indicating beam failure recovery information of a BFD-RS set, the special cell byte indicating beam failure recovery information of a BFD-RS set appears before a secondary cell byte indicating beam failure recovery information of a BFD-RS set.
3. The device according to claim 1, An apparatus, wherein when beam failure recovery has been triggered for all two BFD-RS sets of a special cell and the beam failure recovery has not been completed successfully, the terminal equipment initiates a random access procedure in the special cell, and the beam failure-related information is reported to the network equipment in the random access procedure.
4. The device according to claim 1, When a byte indicating beam failure recovery information of a BFD-RS set is present, the byte indicating beam failure recovery information of the BFD-RS set appears in ascending order of serving cell index of the secondary cell; Here, a byte indicating beam failure recovery information of a BFD-RS set having a smaller serving cell index or associated with a secondary cell having a smaller serving cell index appears first, and a byte indicating beam failure recovery information of a BFD-RS set having a larger serving cell index or associated with a secondary cell having a larger serving cell index appears later, in this device.
5. The device of claim 1, When a byte indicating beam failure recovery information of a BFD-RS set is present, the byte indicating beam failure recovery information of the BFD-RS set appears in ascending order of BFD-RS set identifiers or indexes and ascending order of serving cell indexes of secondary cells; Wherein, after all bytes indicating beam failure recovery information of the secondary cell with the smaller serving cell index or of the BFD-RS set associated with the secondary cell with the smaller serving cell index appear, a byte indicating beam failure recovery information of the secondary cell with the larger serving cell index or of the BFD-RS set associated with the secondary cell with the larger serving cell index appears, or A device in which a byte indicating beam failure recovery information of a BFD-RS set with a large BFD-RS set identifier or index appears after all bytes indicating beam failure recovery information of a BFD-RS set with a small BFD-RS set identifier or index appear.
6. The device of claim 1, The second bitmap is contained in the next byte of the first bitmap.
7. The device of claim 6, The second bitmap indicates the number of BFD-RS sets for which beam failure of the BFD-RS set is detected in the serving cell.
8. The device of claim 7, The serving cell is a serving cell in which a beam failure of a BFD-RS set is detected.
9. The device of claim 1, The apparatus, wherein the beam failure recovery MAC CE is an Enhanced BFR MAC CE or an Enhanced Truncated BFR MAC CE.
10. An apparatus for receiving beam failure related information, for use in a network device, comprising: a first receiver for receiving a beam failure recovery MAC CE including beam failure related information from a terminal device; When a byte indicating beam failure recovery information of a BFD-RS set exists in the beam failure related information of the beam failure recovery MAC CE, the byte indicating beam failure recovery information of a BFD-RS set appears in ascending order of serving cell indexes of secondary cells, or in ascending order of BFD-RS set identifiers or indexes and in ascending order of serving cell indexes of secondary cells, 1. An apparatus for reporting beam failure-related information using a beam failure recovery MAC CE including a 1-byte first bitmap and a 1-byte second bitmap, when a random access procedure is initiated due to beam failure recovery being triggered for two BFD-RS sets of a special cell, the BFD-RS sets of the special cell are indicated in the beam failure recovery MAC CE, and a result of a logical channel optimization process (LCP) is that "UL-SCH resources available for transmission are insufficient to accommodate a beam failure recovery MAC CE including a 4-byte first bitmap plus its header," wherein the first bitmap indicates a serving cell in which beam failure of the BFD-RS set is detected.
11. A communication system, the communication system includes terminal equipment and / or network equipment; The terminal device comprises the device according to claim 1; The communication system, wherein the network equipment comprises the device of claim 10.