A method and apparatus used in a node for wireless communication
By configuring different compensation amounts according to the type and conditions of HARQ-ACK in the 5G system, the problem of inconsistent PUSCH resource allocation when services of different priorities are reused within the UE is solved, achieving efficient resource utilization and flexible communication.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-09-25
- Publication Date
- 2026-04-10
AI Technical Summary
In 5G systems, how can we determine the time-frequency resources for HARQ-ACK transmission on the PUSCH in scenarios where services of different priorities are reused within a user equipment (UE), especially when high-priority and low-priority services overlap, to avoid inconsistencies in the understanding of resource allocation between the communicating parties and improve system spectrum efficiency and reuse flexibility?
The time-frequency resource pool is determined by receiving signaling, and the number of time-frequency resource particles is configured with different compensation amounts according to the type and conditions of HARQ-ACK, so as to ensure that the HARQ-ACK of high-priority services is transmitted in the reserved resource pool and avoid inconsistencies in the understanding of resource allocation.
This effectively avoids inconsistencies in resource allocation, improves system spectrum efficiency and reuse flexibility, and enhances communication reliability.
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Figure CN116471674B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to a transmission method and apparatus in a wireless communication system, in particular to a transmission method and apparatus of a wireless signal in a wireless communication system supporting a cellular network. BACKGROUND
[0002] In the 5G system, eMBB (Enhance Mobile Broadband) and URLLC (Ultra Reliable and Low Latency Communication) are two typical service types. In the 3GPP (3rd Generation Partner Project) NR (New Radio) Release 15, a new MCS (Modulation and Coding Scheme) table has been defined for the lower target BLER (Block Error Rate) requirement (10^-5) of URLLC service. In order to support higher requirements of URLLC service, such as higher reliability (for example: target BLER is 10^-6), lower latency (for example: 0.5-1ms), etc., in the 3GPP NR Release 16, the DCI (Downlink Control Information) signaling can indicate whether the scheduled service is low priority or high priority, wherein the high priority corresponds to the URLLC service and the low priority corresponds to the eMBB service. When a low priority transmission overlaps with a high priority transmission in the time domain, the high priority transmission is executed and the low priority transmission is abandoned.
[0003] The WI (Work Item) of URLLC enhancement of NR Release 17 has been passed in the 3GPP RAN plenary. Among them, the multiplexing of different services within the UE (User Equipment) is a key point to be studied. SUMMARY
[0004] After multiplexing of different priority traffics is introduced in a UE, the UE can multiplex high priority UCI (Uplink Control Information) or low priority UCI onto a PUSCH (Physical Uplink Shared CHannel) of a given priority for transmission; different offset factors (e.g., beta-offset) are used to perform multiplexing of HARQ-ACK (Hybrid Automatic Repeat reQuest Acknowledgement) of different priorities. In the above scenario, when the number of HARQ-ACK information bits to be reported is small, how to determine the time-frequency resources reserved for the HARQ-ACK information bits to be reported is a key problem to be solved.
[0005] To solve the above problem, a solution is disclosed in the present application. It should be noted that, in the case of no conflict, the embodiments in the user equipment of the present application and the features in the embodiments can be applied to the base station, and vice versa. In the case of no conflict, the embodiments of the present application and the features in the embodiments can be arbitrarily combined with each other.
[0006] As an embodiment, the explanation of the terminology in the present application is referred to the definition of the specification protocol TS36 series of 3GPP.
[0007] As an embodiment, the explanation of the terminology in the present application is referred to the definition of the specification protocol TS38 series of 3GPP.
[0008] As an embodiment, the explanation of the terminology in the present application is referred to the definition of the specification protocol TS37 series of 3GPP.
[0009] As an embodiment, the explanation of the terminology in the present application is referred to the definition of the specification protocol of IEEE (Institute of Electrical and Electronics Engineers).
[0010] The present application discloses a method in a first node used for wireless communication, characterized in that, comprising:
[0011] receiving first signaling;
[0012] sending a first signal in a first time-frequency resource pool, the first signal carrying a first bit block;
[0013] The first signaling is used to determine the first time-frequency resource pool; the first bit block includes K HARQ-ACK information bits, and K is a positive integer; the first bit block includes at least one of the first type of HARQ-ACK or the second type of HARQ-ACK; the first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, the same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources occupied by the modulation symbols generated by the first bit block when transmitted in the first reserved resource pool; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource particles included in the first reserved resource pool.
[0014] As an embodiment, the problem to be solved by the present application includes: after introducing multiplexing of different priority services in a UE, how to determine the time-frequency resources reserved for potential HARQ-ACK transmission on a PUSCH.
[0015] As an embodiment, the problem to be solved by the present application includes: after introducing multiple configurations of offsets (such as beta-offset values) used to determine the transmission resources occupied by HARQ-ACK, how to determine the offset used to calculate the reserved resources.
[0016] As an embodiment, the characteristics of the above method include: different multiplexing scenarios correspond to different offsets (such as different beta-offset values); and the offset determined according to the type of transmitted HARQ-ACK is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool.
[0017] As an embodiment, the characteristics of the above method include: the offset used to determine the number of time-frequency resource particles included in the first reserved resource pool is irrelevant to the type of transmitted HARQ-ACK.
[0018] As an embodiment, the characteristics of the above method include: there is a multiplexing scenario in which two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool, respectively.
[0019] As an embodiment, the above method has the advantage of avoiding the misunderstanding between the two parties of communication due to the loss of DCI and the like.
[0020] As an embodiment, the above method has the advantage of avoiding the misunderstanding between the two parties of communication due to the loss of DCI and the like.
[0021] As an embodiment, the above method has the advantage of improving the spectral efficiency of the system.
[0022] As an embodiment, the above method has the advantage of enhancing the flexibility of multiplexing.
[0023] According to an aspect of the present application, the above method is characterized in that it comprises:
[0024] The first signal carries a second block of bits, and the second block of bits includes a transport block (TB).
[0025] According to an aspect of the present application, the above method is characterized in that,
[0026] The first condition includes that the first block of bits includes the second type of HARQ-ACK.
[0027] According to an aspect of the present application, the above method is characterized in that,
[0028] When the first condition is met, the two different compensation amounts are a first compensation amount and a second compensation amount; the first compensation amount is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and the second compensation amount is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0029] According to an aspect of the present application, the above method is characterized in that,
[0030] The first condition is satisfied; the second condition set includes N mutually exclusive conditions, N is a positive integer greater than 1; the first compensation amount set includes N mutually different compensation amounts, and the second compensation amount set includes at least one compensation amount; for any positive integer j not greater than N, when the jth condition in the second condition set is satisfied: the jth compensation amount in the first compensation amount set is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and a compensation amount different from the jth compensation amount in the first compensation amount set in the second compensation amount set is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0031] According to an aspect of the present application, the above method is characterized in that,
[0032] The first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool and the first time-frequency resource pool overlap in the time domain.
[0033] According to an aspect of the present application, the above method is characterized in that,
[0034] The first type of HARQ-ACK corresponds to a first priority, and the second type of HARQ-ACK corresponds to a second priority.
[0035] The present application discloses a method used in a second node for wireless communication, characterized by comprising:
[0036] Sending first signaling;
[0037] Receiving a first signal in a first time-frequency resource pool, the first signal carrying a first bit block;
[0038] The first signaling is used to determine the first time-frequency resource pool; the first bit block includes K HARQ-ACK information bits, and K is a positive integer; the first bit block includes at least one of first type HARQ-ACK or second type HARQ-ACK; the first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, a same compensation quantity is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different compensation quantities are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool, respectively; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources occupied by transmission of modulation symbols generated by the first bit block in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
[0039] According to an aspect of the present application, the above method is characterized in that it comprises:
[0040] The first signal carries a second bit block, and the second bit block includes a transport block (TB).
[0041] According to an aspect of the present application, the above method is characterized in that,
[0042] The first condition includes that the first bit block includes the second type HARQ-ACK.
[0043] According to an aspect of the present application, the above method is characterized in that,
[0044] When the first condition is met: the two different compensation quantities are a first compensation quantity and a second compensation quantity, respectively; the first compensation quantity is used to determine the number of the time-frequency resource particles included in the first time-frequency resource sub-pool, and the second compensation quantity is used to determine the number of the time-frequency resource particles included in the first reserved resource pool.
[0045] According to an aspect of the present application, the above method is characterized in that,
[0046] The first condition is satisfied; the second condition set includes N mutually exclusive conditions, N being a positive integer greater than 1; the first compensation amount set includes N mutually different compensation amounts, and the second compensation amount set includes at least one compensation amount; for any positive integer j not greater than N, when the jth condition in the second condition set is satisfied: the jth compensation amount in the first compensation amount set is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and a compensation amount in the second compensation amount set different from the jth compensation amount in the first compensation amount set is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0047] According to an aspect of the present application, the above method is characterized in that,
[0048] The first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool overlaps with the first time-frequency resource pool in the time domain.
[0049] According to an aspect of the present application, the above method is characterized in that,
[0050] The first type of HARQ-ACK corresponds to a first priority, and the second type of HARQ-ACK corresponds to a second priority.
[0051] The present application discloses a first node device used for wireless communication, characterized by comprising:
[0052] The first receiver receives the first signaling;
[0053] The first transmitter transmits the first signal in the first time-frequency resource pool, and the first signal carries the first bit block;
[0054] The first signaling is used to determine the first time-frequency resource pool; the first bit block includes K HARQ-ACK information bits, and K is a positive integer; the first bit block includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK; the first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, a same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, the first time-frequency resource sub-pool includes time-frequency resources occupied by transmission of modulation symbols generated by the first bit block in the first reserved resource pool; and the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
[0055] The application discloses a second node device used for wireless communication, which is characterized by comprising:
[0056] a second transmitter, which transmits first signaling;
[0057] a second receiver, which receives first signals in a first time-frequency resource pool, wherein the first signals carry first bit blocks;
[0058] The first signaling is used to determine the first time-frequency resource pool; the first bit block includes K HARQ-ACK information bits, and K is a positive integer; the first bit block includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK; the first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, a same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, the first time-frequency resource sub-pool includes time-frequency resources occupied by transmission of modulation symbols generated by the first bit block in the first reserved resource pool; and the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
[0059] As an embodiment, the method in the present application has the following advantages:
[0060] - avoids the inconsistency in understanding of resource allocation between the two parties of communication;
[0061] - uses different compensation amounts in different scenarios to complete the resource allocation between data and control information, taking into account the flexibility of scheduling and the reliability of communication;
[0062] - improves the system spectrum efficiency;
[0063] - enhances the flexibility of multiplexing. BRIEF DESCRIPTION OF DRAWINGS
[0064] Other features, objects, and advantages of the present application will become more apparent from the following detailed description of non-limiting embodiments thereof as read in conjunction with the accompanying drawings:
[0065] Figure 1 A flow chart of the process of a first node according to an embodiment of the present application is shown;
[0066] Figure 2 A schematic diagram of a network architecture according to an embodiment of the present application is shown;
[0067] Figure 3 A schematic diagram of a wireless protocol architecture of a user plane and a control plane according to an embodiment of the present application is shown;
[0068] Figure 4 A schematic diagram of a first communication device and a second communication device according to an embodiment of the present application is shown;
[0069] Figure 5 A flow chart of signal transmission according to an embodiment of the present application is shown;
[0070] Figure 6 A schematic diagram of the flow of determining how to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool according to an embodiment of the present application is shown;
[0071] Figure 7 A schematic diagram of the relationship between the first compensation amount and the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the relationship between the second compensation amount and the number of time-frequency resource particles included in the first reserved resource pool according to an embodiment of the present application is shown;
[0072] Figure 8 A schematic diagram of the relationship between the second condition set and the number of time-frequency resource particles included in the first time-frequency resource sub-pool according to an embodiment of the present application is shown;
[0073] Figure 9 Fig. 1 shows a schematic diagram of the relationship between a first time-frequency resource pool and a first air interface resource pool according to an embodiment of the present application;
[0074] Figure 10 Fig. 2 shows a schematic diagram of the relationship between a first type of HARQ-ACK and a first priority and the relationship between a second type of HARQ-ACK and a second priority according to an embodiment of the present application;
[0075] Figure 11 Fig. 3 shows a structural block diagram of a processing device in a first node device according to an embodiment of the present application;
[0076] Figure 12 Fig. 4 shows a structural block diagram of a processing device in a second node device according to an embodiment of the present application. DETAILED DESCRIPTION
[0077] The technical solutions of the present application will be further described in detail below with reference to the accompanying drawings. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other arbitrarily without conflict.
[0078] Example 1
[0079] Embodiment 1 illustrates a processing flowchart of a first node according to an embodiment of the present application, as shown in Fig. 1. Figure 1
[0080] In embodiment 1, the first node in the present application receives a first signaling in step 101; and transmits a first signal in a first time-frequency resource pool in step 102.
[0081] In the embodiment 1, the first signal carries a first block of bits; the first signaling is used to determine the first time-frequency resource pool; the first block of bits includes K HARQ-ACK information bits, the K is a positive integer; the first block of bits includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK; a first condition is a condition related to the type of HARQ-ACK included in the first block of bits; when the first condition is not satisfied, a same offset is used to determine both the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is satisfied, two different offsets are respectively used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources occupied by transmission of modulation symbols generated by the first block of bits in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
[0082] As an embodiment, the first signal includes a wireless signal.
[0083] As an embodiment, the first signal includes a radio frequency signal.
[0084] As an embodiment, the first signal includes a baseband signal.
[0085] As an embodiment, the first signaling is dynamically configured.
[0086] As an embodiment, the first signaling includes layer 1 (L1) signaling.
[0087] As an embodiment, the first signaling includes layer 1 (L1) control signaling.
[0088] As an embodiment, the first signaling includes physical layer (Physical Layer) signaling.
[0089] As an embodiment, the first signaling includes one or more fields in a physical layer signaling.
[0090] As an embodiment, the first signaling includes higher layer (Higher Layer) signaling.
[0091] As an embodiment, the first signaling includes one or more fields in a higher layer signaling.
[0092] As an embodiment, the first signaling comprises RRC (Radio Resource Control) signaling.
[0093] As an embodiment, the first signaling comprises MAC CE (Medium Access Control layer Control Element) signaling.
[0094] As an embodiment, the first signaling comprises one or more fields in a RRC signaling.
[0095] As an embodiment, the first signaling comprises one or more fields in a MAC CE signaling.
[0096] As an embodiment, the first signaling comprises DCI (Downlink Control Information).
[0097] As an embodiment, the first signaling comprises one or more fields in a DCI.
[0098] As an embodiment, the first signaling comprises SCI (Sidelink Control Information).
[0099] As an embodiment, the first signaling comprises one or more fields in a SCI.
[0100] As an embodiment, the first signaling comprises one or more fields in an IE (Information Element).
[0101] As an embodiment, the first signaling is an UpLink Grant Signaling.
[0102] As an embodiment, the first signaling is transmitted on a downlink physical layer control channel (i.e. a downlink channel that can only be used to carry physical layer signaling).
[0103] As an embodiment, the downlink physical layer control channel in the present application is a PDCCH (Physical Downlink Control CHannel).
[0104] As an embodiment, the downlink physical layer control channel in the present application is a sPDCCH (short PDCCH).
[0105] As an embodiment, the downlink physical layer control channel in the present application is NB-PDCCH (Narrow Band PDCCH).
[0106] As an embodiment, the first signaling is DCI format 0_0, and the specific definition of the DCI format 0_0 can be found in section 7.3.1.1 of 3GPP TS 38.212.
[0107] As an embodiment, the first signaling is DCI format 0_1, and the specific definition of the DCI format 0_1 can be found in section 7.3.1.1 of 3GPP TS 38.212.
[0108] As an embodiment, the first signaling is DCI format 0_2, and the specific definition of the DCI format 0_2 can be found in section 7.3.1.1 of 3GPP TS 38.212.
[0109] As an embodiment, the sentence that the first signal carries the first bit block includes: the first signal includes the output after part or all of the first bit block undergoes CRC insertion, segmentation, encoding block level CRC insertion, channel coding, rate matching, concatenation, scrambling, modulation, layer mapping, precoding, mapping to resource elements, multicarrier symbol generation, modulation and upconversion in turn.
[0110] As an embodiment, the modulation symbol generated by the first bit block includes: the output after part or all of the first bit block undergoes CRC insertion, segmentation, encoding block level CRC insertion, channel coding, rate matching, concatenation, scrambling, and modulation in turn.
[0111] As an embodiment, the first time-frequency resource pool includes a positive integer number of time-frequency resource elements.
[0112] As an embodiment, the first time-frequency resource pool includes a positive integer number of REs (Resource Elements) in the time-frequency domain.
[0113] As an embodiment, one RE occupies one subcarrier in frequency domain and one multicarrier symbol in time domain.
[0114] As an embodiment, one time-frequency resource particle in the present application is one RE.
[0115] As an embodiment, one time-frequency resource particle in the present application includes one subcarrier in frequency domain.
[0116] As an embodiment, one time-frequency resource particle in the present application includes one multicarrier symbol in time domain.
[0117] As an embodiment, the multicarrier symbol in the present application is an OFDM (Orthogonal Frequency Division Multiplexing) symbol.
[0118] As an embodiment, the multicarrier symbol in the present application is an SC-FDMA (Single Carrier-Frequency Division Multiple Access) symbol.
[0119] As an embodiment, the multicarrier symbol in the present application is a DFT-S-OFDM (Discrete Fourier Transform Spread OFDM) symbol.
[0120] As an embodiment, the first time-frequency resource pool includes a positive integer number of subcarriers in frequency domain.
[0121] As an embodiment, the first time-frequency resource pool includes a positive integer number of PRBs (Physical Resource Blocks) in frequency domain.
[0122] As an embodiment, the first time-frequency resource pool includes a positive integer number of RBs (Resource Blocks) in frequency domain.
[0123] As an embodiment, the first time-frequency resource pool includes a positive integer number of multicarrier symbols in time domain.
[0124] As an embodiment, the first time-frequency resource pool includes a positive integer number of slots in time domain.
[0125] As an embodiment, the first time-frequency resource pool includes a positive integer number of sub-slots in time domain.
[0126] As one embodiment, the first time-frequency resource pool comprises a positive integer number of milliseconds (ms) in time domain.
[0127] As one embodiment, the first time-frequency resource pool comprises a positive integer number of consecutive multicarrier symbols in time domain.
[0128] As one embodiment, the first time-frequency resource pool comprises a positive integer number of non-consecutive slots in time domain.
[0129] As one embodiment, the first time-frequency resource pool comprises a positive integer number of consecutive slots in time domain.
[0130] As one embodiment, the first time-frequency resource pool comprises a positive integer number of sub-frames in time domain.
[0131] As one embodiment, the first time-frequency resource pool is configured by physical layer signaling.
[0132] As one embodiment, the first time-frequency resource pool is configured by higher layer signaling.
[0133] As one embodiment, the first time-frequency resource pool is configured by RRC (Radio Resource Control) signaling.
[0134] As one embodiment, the first time-frequency resource pool is configured by MAC CE (Medium Access Control layer Control Element) signaling.
[0135] As one embodiment, the first time-frequency resource pool is reserved for an uplink physical layer channel.
[0136] As one embodiment, the first time-frequency resource pool comprises time-frequency resources reserved for an uplink physical layer channel.
[0137] As one embodiment, the first time-frequency resource pool comprises time-frequency resources occupied by an uplink physical layer channel.
[0138] As one embodiment, the first time-frequency resource pool is reserved for a PUSCH (Physical Uplink Shared CHannel).
[0139] As one embodiment, the first time-frequency resource pool comprises time-frequency resources reserved for a PUSCH.
[0140] As one embodiment, the first time-frequency resource pool comprises time-frequency resources occupied by a PUSCH.
[0141] As an embodiment, the first time-frequency resource pool is reserved for a PSSCH (Physical Sidelink Shared CHannel).
[0142] As an embodiment, the first signaling indicates the first time-frequency resource pool.
[0143] As an embodiment, the first signaling explicitly indicates the first time-frequency resource pool.
[0144] As an embodiment, the first signaling implicitly indicates the first time-frequency resource pool.
[0145] As an embodiment, the first signaling indicates frequency domain resources included in the first time-frequency resource pool.
[0146] As an embodiment, the first signaling indicates time domain resources included in the first time-frequency resource pool.
[0147] As an embodiment, the first signaling is used to configure periodicity related to the first time-frequency resource pool.
[0148] As an embodiment, the implicit indication in the present application includes implicit indication through a signaling format.
[0149] As an embodiment, the implicit indication in the present application includes implicit indication through RNTI (Radio Network Tempory Identity).
[0150] As an embodiment, the first signaling includes first scheduling information; the first scheduling information includes at least one of occupied time domain resources, occupied frequency domain resources, MCS (Modulation and Coding Scheme), configuration information of DMRS (DeModulation Reference Signals), HARQ (Hybrid Automatic Repeat reQuest) process number, RV (Redundancy Version), NDI (New Data Indicator), periodicity, transmission antenna port, and corresponding TCI (Transmission Configuration Indicator) state.
[0151] As one embodiment, the phrase "used by the first node" is used to include "used by a transmitter of the first signal".
[0152] As one embodiment, the phrase "used by the first node" is used to include "used by a transmitter of the first signal".
[0153] As one embodiment, the phrase "used by the first node" is used to include "used by a receiver of the first signal".
[0154] As one embodiment, the first bit block comprises HARQ-ACK comprising: an indication information of whether a signaling is correctly received, or an indication information of whether a bit block scheduled by a signaling is correctly received.
[0155] As one embodiment, the first bit block comprises HARQ-ACK comprising: an indication information of whether a signaling used for indicating Semi-Persistent Scheduling (SPS) Release is correctly received, or an indication information of whether a bit block transmitted on a PDSCH (Physical Downlink Shared CHannel) scheduled by a signaling is correctly received.
[0156] As one embodiment, the first bit block comprises HARQ-ACK.
[0157] As one embodiment, the first bit block comprises a positive integer number of bits.
[0158] As one embodiment, the first bit block comprises a positive integer number of ACKs or NACKs.
[0159] As one embodiment, the first bit block comprises a HARQ-ACK codebook.
[0160] As one embodiment, the first type of HARQ-ACK is different from the second type of HARQ-ACK.
[0161] As one embodiment, the first type of HARQ-ACK and the second type of HARQ-ACK both comprise HARQ-ACK information bit(s).
[0162] As one embodiment, the first type of HARQ-ACK comprises HARQ-ACK corresponding to one of a plurality of QoS (Quality of Service) types.
[0163] As one embodiment, the first type of HARQ-ACK comprises HARQ-ACK corresponding to URLLC traffic type.
[0164] As one embodiment, the first type of HARQ-ACK comprises HARQ-ACK corresponding to eMBB traffic type.
[0165] As one embodiment, the first type of HARQ-ACK comprises high priority HARQ-ACK.
[0166] As one embodiment, the first type of HARQ-ACK comprises low priority HARQ-ACK.
[0167] As one embodiment, the first type of HARQ-ACK comprises HARQ-ACK corresponding to priority index 1.
[0168] As one embodiment, the first type of HARQ-ACK comprises HARQ-ACK corresponding to priority index 0.
[0169] As one embodiment, the first type of HARQ-ACK comprises sidelink HARQ-ACK (SL HARQ-ACK).
[0170] As one embodiment, the second type of HARQ-ACK comprises HARQ-ACK corresponding to one QoS among a plurality of QoS types.
[0171] As one embodiment, the second type of HARQ-ACK comprises HARQ-ACK corresponding to URLLC traffic type.
[0172] As one embodiment, the second type of HARQ-ACK comprises HARQ-ACK corresponding to eMBB traffic type.
[0173] As one embodiment, the second type of HARQ-ACK comprises high priority HARQ-ACK.
[0174] As one embodiment, the second type of HARQ-ACK comprises low priority HARQ-ACK.
[0175] As one embodiment, the second type of HARQ-ACK comprises HARQ-ACK corresponding to priority index 1.
[0176] As one embodiment, the second type of HARQ-ACK comprises HARQ-ACK corresponding to priority index 0.
[0177] As one embodiment, the second type of HARQ-ACK includes sidelink HARQ-ACK.
[0178] As one embodiment, the second type of HARQ-ACK and the first type of HARQ-ACK are HARQ-ACKs for different links, respectively.
[0179] As one embodiment, the different links include uplink and sidelink.
[0180] As one embodiment, the second type of HARQ-ACK and the first type of HARQ-ACK are HARQ-ACKs for different service types, respectively.
[0181] As one embodiment, the second type of HARQ-ACK and the first type of HARQ-ACK are HARQ-ACKs of different categories, respectively.
[0182] As one embodiment, the second type of HARQ-ACK and the first type of HARQ-ACK are HARQ-ACKs of different priorities, respectively.
[0183] As one embodiment, the second type of HARQ-ACK and the first type of HARQ-ACK are HARQ-ACKs corresponding to different priority indexes, respectively.
[0184] As one embodiment, the second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0.
[0185] As one embodiment, the second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1.
[0186] As one embodiment, the first bit block includes UCI.
[0187] As one embodiment, the first signal carries at least a first one of HARQ-ACK, CSI or SR (Scheduling Request).
[0188] As one embodiment, the K is equal to 1.
[0189] As one embodiment, the K is equal to 2.
[0190] As one embodiment, the K is equal to 3.
[0191] As one embodiment, the K is equal to 4.
[0192] As one embodiment, the K is no more than 16.
[0193] As one embodiment, the K is no more than a first threshold, the first threshold being a default positive integer.
[0194] As one embodiment, the first bit block includes only one of the first type of HARQ-ACK or the second type of HARQ-ACK.
[0195] As one embodiment, the first bit block includes one or both of the first type of HARQ-ACK or the second type of HARQ-ACK.
[0196] As one embodiment, the offset in the present application is
[0197] As one embodiment, the offset in the present application is beta-offset.
[0198] As one embodiment, the offset in the present application is a beta-offset value.
[0199] As one embodiment, the offset in the present application includes β in its name.
[0200] As one embodiment, the offset in the present application includes at least one of HARQ or ACK in its name.
[0201] As one embodiment, the offset in the present application includes offset in its name.
[0202] As one embodiment, the character used to represent the offset in the present application includes β.
[0203] As one embodiment, the character used to represent the offset in the present application includes at least one of HARQ or ACK.
[0204] As one embodiment, the character used to represent the offset in the present application includes offset.
[0205] As one embodiment, the offset in the present application is a parameter used to determine a number of time-frequency resource particles included in a time-frequency resource pool.
[0206] As one embodiment, the one of the two different offsets is less than the other of the two different offsets.
[0207] As one embodiment, the first reserved resource pool is reserved for potential HARQ-ACK transmissions.
[0208] As one embodiment, the first reserved resource pool comprises time-frequency resources reserved for potential HARQ-ACK transmissions.
[0209] As one embodiment, the first time-frequency resource sub-pool comprises time-frequency resources occupied by the modulation symbols of the first bit block generation mapped into the first reserved resource pool.
[0210] As one embodiment, the first time-frequency resource sub-pool comprises the number of time-frequency resource particles greater than zero.
[0211] As one embodiment, the first reserved resource pool comprises the number of time-frequency resource particles greater than zero.
[0212] As one embodiment, the first time-frequency resource pool comprises the first reserved resource pool.
[0213] As one embodiment, the first reserved resource pool comprises time-frequency resources that are a subset of time-frequency resources comprised by the first time-frequency resource pool.
[0214] As one embodiment, the first time-frequency resource pool comprises the first time-frequency resource sub-pool.
[0215] As one embodiment, the first reserved resource pool comprises the first time-frequency resource sub-pool.
[0216] As one embodiment, the first time-frequency resource sub-pool comprises time-frequency resources that are a subset of time-frequency resources comprised by the first time-frequency resource pool.
[0217] As one embodiment, the first time-frequency resource sub-pool comprises time-frequency resources that are a subset of time-frequency resources comprised by the first reserved resource pool.
[0218] As one embodiment, the number of time-frequency resource particles comprised by the first time-frequency resource sub-pool is the number of REs comprised by the first time-frequency resource sub-pool.
[0219] As one embodiment, the number of time-frequency resource particles comprised by the first time-frequency resource sub-pool is the number of coded modulation symbols per layer that the first time-frequency resource sub-pool can carry.
[0220] As an embodiment, the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the number of coded modulation symbols per layer that the first time-frequency resource sub-pool can carry.
[0221] As an embodiment, the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not less than the number of coded modulation symbols per layer that the first time-frequency resource sub-pool can carry.
[0222] As an embodiment, the number of the time-frequency resource particles included in the first reserved resource pool is the number of REs included in the first reserved resource pool.
[0223] As an embodiment, the number of the time-frequency resource particles included in the first reserved resource pool is the number of coded modulation symbols per layer that the first reserved resource pool can carry.
[0224] As an embodiment, the number of the time-frequency resource particles included in the first reserved resource pool is equal to the number of coded modulation symbols per layer that the first reserved resource pool can carry.
[0225] As an embodiment, the number of the time-frequency resource particles included in the first reserved resource pool is not less than the number of coded modulation symbols per layer that the first reserved resource pool can carry.
[0226] As an embodiment, the coded modulation symbols per layer in the present application include: coded modulation symbols per layer for HARQ-ACK transmission, or coded modulation symbols per layer for potential HARQ-ACK transmission.
[0227] As an embodiment, the first signal carries a first part of channel state information (Channel State Information part 1, CSI part 1); the modulation symbols generated by the CSI part 1 are mapped to the time-frequency resources in the first time-frequency resource pool except the first reserved resource pool.
[0228] Example 2
[0229] Example 2 illustrates a diagram of a network architecture according to the present application, as shown in Figure 2. Figure 2
[0230] Figure 2 illustrates a diagram of a network architecture according to the present application. Figure 2 A diagram illustrating a network architecture 200 of a 5G NR, LTE (Long-Term Evolution), and LTE-A (Long-Term Evolution Advanced) system is shown. The 5G NR or LTE network architecture 200 can be referred to as an EPS (Evolved Packet System) 200 or some other suitable terminology. The EPS 200 can include one or more UEs (User Equipment) 201, NG-RAN (Next Generation Radio Access Network) 202, EPC (Evolved Packet Core) / 5G-CN (5G-Core Network) 210, HSS (Home Subscriber Server) 220, and Internet services 230. The EPS can interconnect with other access networks, but these are not shown for simplicity. As shown, the EPS provides packet-switched services, however those skilled in the art will readily appreciate that the various concepts presented throughout this application are applicable to packet-switched or other types of wireless communication systems. The NG-RAN includes an NR NodeB (gNB) 203 and other gNBs 204. The gNB 203 provides user and control plane protocol terminations toward the UE 201. The gNB 203 can be connected to the other gNBs 204 via an Xn interface (e.g., backhaul). The gNB 203 can also be referred to as a base station, a base transceiver station, a radio base station, a radio transceiver, a transceiver function, a basic service set (BSS), an extended service set (ESS), a TRP (Transmit Receive Point), or some other suitable terminology. The gNB 203 provides access to the EPC / 5G-CN 210 for the UE 201. Examples of UEs 201 include a cellular phone, a smart phone, a session initiation protocol (SIP) phone, a laptop, a personal digital assistant (PDA), a satellite radio, a non-tethered personal branch station, a satellite mobile communication, a global positioning system, a multimedia device, a video device, a digital audio player (e.g., MP3 player), a camera, a game console, a drone, an unmanned aerial vehicle, a narrow-band internet of things device, a machine type communication device, a land vehicle, a car, a wearable device, or any other similar functional device. Those skilled in the art will also readily appreciate that the UE 201 can be referred to as a mobile station, a subscriber station, a mobile unit, a subscriber unit, a wireless unit, a remote unit, a mobile device, a wireless device, a wirelessThe EPC / 5G-CN 210 includes a MME (Mobility Management Entity) / AMF (Authentication Management Field) / UPF (User Plane Function) 211, other MME / AMF / UPF 214, a S-GW (Service Gateway) 212, and a P-GW (Packet Date Network Gateway) 213. The MME / AMF / UPF 211 is a control node that handles signaling between the UE 201 and the EPC / 5G-CN 210. Generally, the MME / AMF / UPF 211 provides bearer and connection management. All user IP (Internet Protocal) packets are transferred through the S-GW 212, which itself connects to the P-GW 213. The P-GW 213 provides UE IP address allocation, among other functions. The P-GW 213 connects to Internet services 230. The Internet services 230 include operator corresponding Internet protocol services, which can include the Internet, an intranet, IMS (IP Multimedia Subsystem), and packet switched streaming services, among others.
[0231] As one embodiment, the UE 201 corresponds to the first node in the present application.
[0232] As one embodiment, the UE 241 corresponds to the second node in the present application.
[0233] As one embodiment, the gNB 203 corresponds to the second node in the present application.
[0234] As one embodiment, the UE 241 corresponds to the first node in the present application.
[0235] As one embodiment, the UE 201 corresponds to the second node in the present application.
[0236] Example 3
[0237] Embodiment 3 shows a schematic diagram of an embodiment of a user plane and control plane radio protocol architecture according to the present application, as shown in FIG. 3. Figure 3 Figure 3 is a schematic diagram illustrating an embodiment of a radio protocol architecture for the user plane 350 and the control plane 300, Figure 3 The radio protocol architecture for the control plane 300 between a first communication node device (UE, gNB, or RSU in V2X) and a second communication node device (gNB, UE, or RSU in V2X), or between two UEs, is shown with three layers: Layer 1, Layer 2, and Layer 3. Layer 1 (L1 layer), which is the lowest layer, implements various PHY (Physical layer) signal processing functions. The L1 layer will be referred to as the PHY 301 herein. Layer 2 (L2 layer) 305 is above the PHY 301 and is responsible for the link between the first communication node device and the second communication node device, as well as between two UEs, through the PHY 301. The L2 layer 305 includes a MAC (Medium Access Control) sublayer 302, a RLC (Radio Link Control) sublayer 303, and a PDCP (Packet Data Convergence Protocol) sublayer 304, which are terminated at the second communication node device. The PDCP sublayer 304 provides multiplexing between different radio bearers and logical channels. The PDCP sublayer 304 also provides security functions, through encryption of data packets, and handover support for the first communication node device between the second communication node devices. The RLC sublayer 303 provides segmentation and reassembly of upper layer data packets, retransmission of lost data packets, and reordering of data packets to compensate for out-of-order reception due to HARQ. The MAC sublayer 302 provides multiplexing between logical and transport channels. The MAC sublayer 302 is also responsible for allocating the various radio resources (e.g., resource blocks) in one cell among the UEs. The MAC sublayer 302 is also responsible for HARQ operations. The RRC (Radio Resource Control) sublayer 306 in Layer 3 (L3 layer) in the control plane 300 is responsible for obtaining radio resources (i.e., radio bearers) and configuring the lower layers using RRC signaling between the second communication node device and the first communication node device. The radio protocol architecture for the user plane 350 includes Layer 1 (L1 layer) and Layer 2 (L2 layer), which are substantially the same as the corresponding layers and sublayers in the control plane 300 for the physical layer 351, the PDCP sublayer 354 in the L2 layer 355, the RLC sublayer 353 in the L2 layer 355, and the MAC sublayer 352 in the L2 layer 355 for the first communication node device and the second communication node device, but the PDCP sublayer 354 also provides header compression for upper layer data packets to reduce radio transmission overhead.The L2 layer 355 in the user plane 350 also includes a SDAP (Service Data Adaptation Protocol) sublayer 356, which is responsible for the mapping between a QoS flow and a data radio bearer (DRB) to support the diversity of services. Although not illustrated, the first communication node device can have several upper layers above the L2 layer 355, including a network layer (e.g., IP layer) that terminates at a P-GW on the network side and an application layer that terminates at the other end of the connection (e.g., a remote UE, a server, etc.).
[0238] As one embodiment, the wireless protocol architecture in Figure 3 is applicable to the first node in the present application.
[0239] As one embodiment, the wireless protocol architecture in Figure 3 is applicable to the second node in the present application.
[0240] As one embodiment, the first bit block in the present application is generated at the RRC sublayer 306.
[0241] As one embodiment, the first bit block in the present application is generated at the MAC sublayer 302.
[0242] As one embodiment, the first bit block in the present application is generated at the MAC sublayer 352.
[0243] As one embodiment, the first bit block in the present application is generated at the PHY 301.
[0244] As one embodiment, the first bit block in the present application is generated at the PHY 351.
[0245] As one embodiment, the second bit block in the present application is generated at the RRC sublayer 306.
[0246] As one embodiment, the second bit block in the present application is generated at the SDAP sublayer 356.
[0247] As one embodiment, the second bit block in the present application is generated at the MAC sublayer 302.
[0248] As one embodiment, the second bit block in the present application is generated at the MAC sublayer 352.
[0249] As one embodiment, the second bit block in the present application is generated at the PHY 301.
[0250] As one embodiment, the second block of bits in the present application is generated at the PHY 351.
[0251] As one embodiment, the first signaling in the present application is generated at the RRC sublayer 306.
[0252] As one embodiment, the first signaling in the present application is generated at the MAC sublayer 302.
[0253] As one embodiment, the first signaling in the present application is generated at the MAC sublayer 352.
[0254] As one embodiment, the first signaling in the present application is generated at the PHY 301.
[0255] As one embodiment, the first signaling in the present application is generated at the PHY 351.
[0256] Example 4
[0257] Embodiment 4 shows a schematic diagram of a first communication device and a second communication device according to the present application, as shown in Figure 4 Figure 4 is a block diagram of a first communication device 410 and a second communication device 450 communicating with each other in an access network.
[0258] The first communication device 410 includes a controller / processor 475, a memory 476, a receive processor 470, a transmit processor 416, a multi-antenna receive processor 472, a multi-antenna transmit processor 471, a transmitter / receiver 418, and an antenna 420.
[0259] The second communication device 450 includes a controller / processor 459, a memory 460, a data source 467, a transmit processor 468, a receive processor 456, a multi-antenna transmit processor 457, a multi-antenna receive processor 458, a transmitter / receiver 454, and an antenna 452.
[0260] In the transmission from the first communication device 410 to the second communication device 450, at the first communication device 410, upper layer packets from the core network are provided to the controller / processor 475. The controller / processor 475 implements functionality of the L2 layer. In the transmission from the first communication device 410 to the first communication device 450, the controller / processor 475 provides header compression, ciphering, packet segmentation and reordering, multiplexing between logical and transport channels, and radio resource allocations for the second communication device 450 based on various priority metrics. The controller / processor 475 is also responsible for retransmission of lost packets, and signaling to the second communication device 450. The transmit processor 416 and the multiple antenna transmit processor 471 implement various signal processing functions for the LI layer (i.e., physical layer). The transmit processor 416 implements coding and interleaving to facilitate forward error correction (FEC) at the second communication device 450, and mapping of coded and interleaved data onto various signal constellations based on various modulation schemes (e.g., binary phase-shift keying (BPSK), quadrature phase-shift keying (QPSK), M-phase-shift keying (M-PSK), M-quadrature amplitude modulation (M-QAM)). The multiple antenna transmit processor 471 performs digital spatial pre-coding of the coded and modulated symbols, including codebook-based and non-codebook-based pre-coding, and beamforming processing, generating one or more spatial streams. The transmit processor 416 then maps to each spatial stream to a subcarrier, multiplexes the stream with reference signals (e.g., pilot) in the time and / or frequency domain, and then performs an inverse fast Fourier transform (IFFT) to generate a time-domain multicarrier symbol stream for the physical channel. The multiple antenna transmit processor 471 then performs transmit analog pre-coding / beamforming operations on the time-domain multicarrier symbol stream. Each transmitter 418 converts the baseband multicarrier symbol stream provided by the multiple antenna transmit processor 471 into a radio frequency stream, and then provides the radio frequency stream to the corresponding antenna 420.
[0261] In the transmission from the first communication device 410 to the second communication device 450, at the second communication device 450, each receiver 454 receives a signal through its respective antenna 452. Each receiver 454 recovers information modulated onto an RF carrier and converts the RF stream into a baseband multicarrier symbol stream, which is provided to the receive processor 456. The receive processor 456 and the multi-antenna receive processor 458 implement various signal processing functions of the Ll layer. The multi-antenna receive processor 458 performs receive analog precoding / beamforming operations on the baseband multicarrier symbol stream from the receivers 454. The receive processor 456 converts the baseband multicarrier symbol stream from the receive analog precoding / beamforming operations from the time domain to the frequency domain using a Fast Fourier Transform (FFT). In the frequency domain, the physical layer data signals and the reference signals are demultiplexed by the receive processor 456, where the reference signals will be used for channel estimation, and the data signals are recovered after multi-antenna detection in the multi-antenna receive processor 458 for any spatial streams destined for the second communication device 450. The symbols on each spatial stream are demodulated and recovered by the receive processor 456 and generate soft decisions. The receive processor 456 then decodes and de-interleaves the soft decisions to recover the upper layer data and control signals transmitted by the first communication device 410 on the physical channels. The upper layer data and control signals are then provided to the controller / processor 459. The controller / processor 459 implements the functions of the L2 layer. The controller / processor 459 can be associated with a memory 460 that stores program codes and data. The memory 460 can be referred to as a computer-readable medium. In the transmission from the first communication device 410 to the second communication device 450, the controller / processor 459 provides demultiplexing between transport and logical channels, packet reassembly, deciphering, header decompression, control signal processing to recover upper layer data packets from the core network. The upper layer data packets are then provided to all protocol layers above the L2 layer. Various control signals can also be provided to the L3 for L3 processing.
[0262] In the transmission from the second communication device 450 to the first communication device 410, at the second communication device 450, a data source 467 is used to provide upper layer data packets to a controller / processor 459. The data source 467 represents all protocol layers above the L2 layer. Similar to the transmit function described at the first communication device 410 in the transmission from the first communication device 410 to the second communication device 450, the controller / processor 459 implements header compression, ciphering, packet segmentation and reordering, and multiplexing between logical and transport channels based on radio resource allocations for the user plane and control plane. The controller / processor 459 is also responsible for retransmission of lost packets, and signaling to the first communication device 410. Transmit processor 468 performs modulation mapping, channel coding processing, multi-antenna transmit processor 457 performs digital multi-antenna spatial precoding, including codebook-based and non-codebook-based precoding, and beamforming processing, and then transmit processor 468 produces spatial streams that are modulated onto multi-carrier / single-carrier symbol streams, which are provided to different antennas 452 via transmitters 454 after analog precoding / beamforming operations in multi-antenna transmit processor 457. Each transmitter 454 first converts the baseband symbol stream provided by multi-antenna transmit processor 457 into a radio frequency signal, and then provides the radio frequency signal to antenna 452.
[0263] In the transmission from the second communication device 450 to the first communication device 410, the functions at the first communication device 410 are similar to the receive functions described at the second communication device 450 in the transmission from the first communication device 410 to the second communication device 450. Each receiver 418 receives a radio frequency signal through its respective antenna 420, converts the received radio frequency signal into a baseband signal, and provides the baseband signal to multi-antenna receive processor 472 and receive processor 470. Receive processor 470 and multi-antenna receive processor 472 together implement the functionality of the L1 layer. Controller / processor 475 implements the functionality of the L2 layer. Controller / processor 475 can be associated with a memory 476 that stores program codes and data. Memory 476 can be referred to as a computer readable medium. In the transmission from the second communication device 450 to the first communication device 410, controller / processor 475 provides demultiplexing between transport and logical channels, packet reassembly, deciphering, header decompression, control signal processing to recover upper layer data packets from UE 450. Upper layer data packets from controller / processor 475 can be provided to a core network.
[0264] As one embodiment, the first node in the present application comprises the second communication device 450, and the second node in the present application comprises the first communication device 410.
[0265] As one sub-em embodiment of the above-mentioned embodiments, the first node is a user equipment and the second node is a user equipment.
[0266] As one sub-em embodiment of the above-mentioned embodiments, the first node is a user equipment and the second node is a relay node.
[0267] As one sub-em embodiment of the above-mentioned embodiments, the first node is a relay node and the second node is a user equipment.
[0268] As one sub-em embodiment of the above-mentioned embodiments, the first node is a user equipment and the second node is a base station equipment.
[0269] As one sub-em embodiment of the above-mentioned embodiments, the first node is a relay node and the second node is a base station equipment.
[0270] As one sub-em embodiment of the above-mentioned embodiments, the second communication device 450 comprises at least one controller / processor; the at least one controller / processor is responsible for HARQ operation.
[0271] As one sub-em embodiment of the above-mentioned embodiments, the first communication device 410 comprises at least one controller / processor; the at least one controller / processor is responsible for HARQ operation.
[0272] As one sub-em embodiment of the above-mentioned embodiments, the first communication device 410 comprises at least one controller / processor; the at least one controller / processor is responsible for error detection using positive acknowledgement (ACK) and / or negative acknowledgement (NACK) protocol to support HARQ operation.
[0273] As an embodiment, the second communication device 450 comprises at least one processor and at least one memory including computer program codes; the at least one memory and the computer program codes are configured to, with the at least one processor, cause the second communication device 450 to perform at least the following: receiving the first signaling in the present application; transmitting the first signal in the present application in the first time-frequency resource pool in the present application, the first signal carrying the first block of bits in the present application; wherein the first signaling is used to determine the first time-frequency resource pool; the first block of bits comprises K HARQ-ACK information bits, K being a positive integer; the first block of bits comprises at least one of the first type of HARQ-ACK in the present application or the second type of HARQ-ACK in the present application; the first condition in the present application is a condition related to the type of HARQ-ACK included in the first block of bits; when the first condition is not satisfied, a same offset is used to determine both the number of time-frequency resource particles included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource particles included in the first reserved resource pool in the present application; when the first condition is satisfied, two different offsets are respectively used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource particles included in the first reserved resource pool in the present application; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources in which modulation symbols generated by the first block of bits are transmitted; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource particles included in the first reserved resource pool.
[0274] As a sub-embodiment of the above-mentioned embodiment, the second communication device 450 corresponds to the first node in the present application.
[0275] As an embodiment, the second communication device 450 comprises: a memory storing a computer readable program, the computer readable program, when executed by at least one processor, generates actions comprising: receiving the first signaling in the present application; transmitting the first signal in the present application in the first time-frequency resource pool in the present application, the first signal carrying the first bit block in the present application; wherein the first signaling is used to determine the first time-frequency resource pool; the first bit block comprises K HARQ-ACK information bits, K is a positive integer; the first bit block comprises at least one of the first type of HARQ-ACK in the present application or the second type of HARQ-ACK in the present application; the first condition in the present application is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, the same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource particles included in the first reserved resource pool in the present application; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource particles included in the first reserved resource pool in the present application; the first reserved resource pool is reserved for transmitting HARQ-ACK information bits, the first time-frequency resource sub-pool includes the time-frequency resources occupied by the transmission of the modulation symbols generated by the first bit block in the first reserved resource pool; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource particles included in the first reserved resource pool.
[0276] As a sub-embodiment of the above embodiment, the second communication device 450 corresponds to the first node in the present application.
[0277] As an embodiment, the first communication device 410 comprises at least one processor and at least one memory including computer program code; the at least one memory and the computer program code configured to, with the at least one processor, cause the first communication device 410 to perform at least the following: transmitting the first signaling in the present application; receiving the first signal in the present application in the first time-frequency resource pool in the present application, the first signal carrying the first block of bits in the present application; wherein the first signaling is used to determine the first time-frequency resource pool; the first block of bits comprises K HARQ-ACK information bits, K being a positive integer; the first block of bits comprises at least one of the first type of HARQ-ACK in the present application or the second type of HARQ-ACK in the present application; the first condition in the present application is a condition related to the type of HARQ-ACK included in the first block of bits; when the first condition is not satisfied, a same offset is used to determine both the number of time-frequency resource elements included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource elements included in the first reserved resource pool in the present application; when the first condition is satisfied, two different offsets are used to determine respectively the number of time-frequency resource elements included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource elements included in the first reserved resource pool in the present application; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, the first time-frequency resource sub-pool includes time-frequency resources in which modulation symbols generated by the first block of bits are transmitted; the number of time-frequency resource elements included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource elements included in the first reserved resource pool.
[0278] As a sub-embodiment of the above-mentioned embodiment, the first communication device 410 corresponds to the second node in the present application.
[0279] As one embodiment, the first communication device 410 comprises: a memory storing a computer readable program, the computer readable program, when executed by at least one processor, generates actions comprising: transmitting the first signaling in the present application; receiving the first signal in the present application in the first time-frequency resource pool in the present application, the first signal carries the first bit block in the present application; wherein the first signaling is used to determine the first time-frequency resource pool; the first bit block comprises K HARQ-ACK information bits, K is a positive integer; the first bit block comprises at least one of the first type of HARQ-ACK in the present application or the second type of HARQ-ACK in the present application; the first condition in the present application is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, the same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource particles included in the first reserved resource pool in the present application; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool in the present application and the number of time-frequency resource particles included in the first reserved resource pool in the present application; the first reserved resource pool is reserved for transmitting HARQ-ACK information bits, the first time-frequency resource sub-pool includes the time-frequency resources occupied by the transmission of the modulation symbol generated by the first bit block in the first reserved resource pool; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource particles included in the first reserved resource pool.
[0280] As one sub-embodiment of the above-mentioned embodiment, the first communication device 410 corresponds to the second node in the present application.
[0281] As one embodiment, at least one of {the antenna 452, the receiver 454, the multi-antenna receiving processor 458, the receiving processor 456, the controller / processor 459, the memory 460, the data source 467} is used to receive the first signaling in the present application.
[0282] As one embodiment, at least one of {the antenna 420, the transmitter 418, the multi-antenna transmitting processor 471, the transmitting processor 416, the controller / processor 475, the memory 476} is used to transmit the first signaling in the present application.
[0283] As an embodiment, at least one of {the antenna 452, the transmitter 454, the multi-antenna transmit processor 458, the transmit processor 468, the controller / processor 459, the memory 460, the data source 467} is configured to transmit the first signal in the first time-frequency resource pool in the present application.
[0284] As an embodiment, at least one of {the antenna 420, the receiver 418, the multi-antenna receive processor 472, the receive processor 470, the controller / processor 475, the memory 476} is configured to receive the first signal in the first time-frequency resource pool in the present application.
[0285] Example 5
[0286] Embodiment 5 illustrates a flow chart of wireless signal transmission according to an embodiment of the present application, as shown in FIG. 5. Figure 5 In FIG. 5, the first node U1 and the second node U2 communicate through an air interface. Figure 5
[0287] The first node U1 receives the first signaling in step S511; and transmits the first signal in the first time-frequency resource pool in step S512.
[0288] The second node U2 transmits the first signaling in step S521; and receives the first signal in the first time-frequency resource pool in step S522.
[0289] In Embodiment 5, the first signal carries a first block of bits; the first signaling is used to determine the first time-frequency resource pool; the first block of bits includes K HARQ-ACK information bits, K being a positive integer; the first block of bits includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK; a first condition is a condition related to the type of HARQ-ACK included in the first block of bits; when the first condition is not satisfied, a same offset is used to determine both the number of time-frequency resource elements included in the first time-frequency resource sub-pool and the number of time-frequency resource elements included in the first reserved resource pool; when the first condition is satisfied, two different offsets are respectively used to determine the number of time-frequency resource elements included in the first time-frequency resource sub-pool and the number of time-frequency resource elements included in the first reserved resource pool; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources in which modulation symbols generated by the first block of bits are transmitted; the number of time-frequency resource elements included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource elements included in the first reserved resource pool; the first signal carries a second block of bits, and the second block of bits includes a transport block; the first condition includes that the first block of bits includes the second type of HARQ-ACK; a first air interface resource pool is reserved for at least one bit sub-block included in the first block of bits; the first air interface resource pool overlaps with the first time-frequency resource pool in the time domain; the first type of HARQ-ACK corresponds to a first priority, and the second type of HARQ-ACK corresponds to a second priority.
[0290] As a sub-embodiment of Embodiment 5, when the first condition is satisfied: the two different offsets are respectively a first offset and a second offset; the first offset is used to determine the number of time-frequency resource elements included in the first time-frequency resource sub-pool, and the second offset is used to determine the number of time-frequency resource elements included in the first reserved resource pool.
[0291] As a sub-example of Example 5, the first condition is satisfied; the second condition set includes N mutually exclusive conditions, the N is a positive integer greater than 1; the first compensation quantity set includes not less than the N mutually different compensation quantities, the second compensation quantity set includes at least one compensation quantity; for any positive integer j not greater than the N, when the jth condition in the second condition set is satisfied: the jth compensation quantity in the first compensation quantity set is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and a compensation quantity different from the jth compensation quantity in the first compensation quantity set in the second compensation quantity set is used to determine the number of time-frequency resource particles included in the first reservation resource pool.
[0292] As an example, the first node U1 is the first node in the present application.
[0293] As an example, the second node U2 is the second node in the present application.
[0294] As an example, the first node U1 is a UE.
[0295] As an example, the second node U2 is a base station.
[0296] As an example, the second node U2 is a UE.
[0297] As an example, the air interface between the second node U2 and the first node U1 is a Uu interface.
[0298] As an example, the air interface between the second node U2 and the first node U1 includes a cellular link.
[0299] As an example, the air interface between the second node U2 and the first node U1 is a PC5 interface.
[0300] As an example, the air interface between the second node U2 and the first node U1 includes a sidelink.
[0301] As an example, the air interface between the second node U2 and the first node U1 includes a wireless interface between a base station device and a user equipment.
[0302] As an example, the first time-frequency resource pool is reserved for the second bit block.
[0303] As an example, the first signaling includes scheduling information of the second bit block.
[0304] As an embodiment, the first signaling comprises scheduling information of the second block of bits.
[0305] As an embodiment, the first signal carrying the second block of bits comprises: the first signal comprises an output after all or part of bits in the second block of bits sequentially undergoes CRC addition, segmentation, code block level CRC addition, channel coding, rate matching, concatenation, scrambling, modulation, layer mapping, precoding, mapping to resource elements, multicarrier symbol generation, modulation upconversion.
[0306] As an embodiment, the first signal comprises an output after all or part of bits in the first block of bits and the second block of bits sequentially undergoes CRC addition, segmentation, code block level CRC addition, channel coding, rate matching, concatenation, scrambling, modulation, layer mapping, precoding, mapping to resource elements, multicarrier symbol generation, modulation upconversion.
[0307] As an embodiment, the second block of bits comprises a positive integer number of bits.
[0308] As an embodiment, the first signal carrying the second block of bits comprises one CB (Code Block).
[0309] As an embodiment, the first signal carrying the second block of bits comprises one CBG (Code Block Group).
[0310] As an embodiment, the first condition comprises: the first block of bits comprises the second type of HARQ-ACK; the expression that the first condition is not satisfied means that the first block of bits does not comprise the second type of HARQ-ACK; the expression that the first condition is satisfied means that the first block of bits comprises the second type of HARQ-ACK.
[0311] As an embodiment, when the first block of bits does not comprise the second type of HARQ-ACK, a same compensation quantity is used to determine the number of time-frequency resource elements included in the first time-frequency resource sub-pool and the number of time-frequency resource elements included in the first reserved resource pool; when the first block of bits comprises the second type of HARQ-ACK, two different compensation quantities are respectively used to determine the number of time-frequency resource elements included in the first time-frequency resource sub-pool and the number of time-frequency resource elements included in the first reserved resource pool.
[0312] As an embodiment, the first time-frequency resource sub-pool is determined on the basis that the number of time-frequency resource elements included in the first time-frequency resource sub-pool is determined first.
[0313] As an embodiment, the first time-frequency resource sub-pool comprises time-frequency resources used to carry coded bits for HARQ-ACK in one PUSCH; the first time-frequency resource sub-pool is determined based on a process of multiplexing coded bits for HARQ-ACK described in section 6.2.7 in 3GPP TS 38.212.
[0314] As an embodiment, the first reserved resource pool is determined on the basis that the number of time-frequency resource particles included in the first reserved resource pool is determined first.
[0315] As an embodiment, the one reserved resource pool comprises time-frequency resources reserved for potential HARQ-ACK transmission; the one reserved resource pool is determined based on being described in section 6.2.7 in 3GPP TS 38.212.
[0316] As an embodiment, one of the two different compensation amounts is a compensation amount corresponding to an index indicated by the first signaling in one index set configured by higher layer signaling, and the other of the two different compensation amounts is a compensation amount corresponding to an index indicated by the first signaling in another index set configured by higher layer signaling.
[0317] As an embodiment, the first condition is not met; a domain included in the first signaling indicates the same compensation amount; and a name of the domain included in the first signaling comprises uci-OnPUSCH (or UCI-OnPUSCH).
[0318] As an embodiment, the first condition is not met; a beta_offsetindicator domain included in the first signaling indicates the same compensation amount.
[0319] As an embodiment, the first condition is met; a domain included in the first signaling indicates at least one of the two different compensation amounts; and a name of the domain included in the first signaling comprises uci-OnPUSCH (or UCI-OnPUSCH).
[0320] As an embodiment, the first condition is met; a beta_offsetindicator domain included in the first signaling indicates at least one of the two different compensation amounts.
[0321] As one embodiment, the first condition comprises: the first bit block does not include the second type of HARQ-ACK.
[0322] As one embodiment, the first condition comprises: the first bit block does not include one of the first type of HARQ-ACK or the second type of HARQ-ACK.
[0323] As one embodiment, the first condition comprises: the first bit block includes the first type of HARQ-ACK and the second type of HARQ-ACK.
[0324] As one embodiment, the first condition comprises: all conditions in a first condition set are satisfied.
[0325] As one embodiment, each condition in the first condition set is a condition related to a type of HARQ-ACK included in the first bit block.
[0326] As one embodiment, one condition in the first condition set comprises: the first bit block includes the second type of HARQ-ACK.
[0327] As one embodiment, one condition in the first condition set comprises: the first bit block includes the first type of HARQ-ACK.
[0328] As one embodiment, when the first bit block does not include the second type of HARQ-ACK, the first bit block includes the first type of HARQ-ACK.
[0329] As one embodiment, the first bit block includes only one of the first type of HARQ-ACK or the second type of HARQ-ACK; the first condition is: the first bit block includes the second type of HARQ-ACK; when the first bit block does not include the second type of HARQ-ACK, a fifth offset is used for determining both the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first bit block includes the second type of HARQ-ACK, a sixth offset is used for determining the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and a seventh offset is used for determining the number of time-frequency resource particles included in the first reserved resource pool; the fifth offset and the sixth offset are different offsets respectively, and the sixth offset and the seventh offset are different offsets respectively.
[0330] As one sub-embodiment of the above-mentioned embodiment, the seventh offset is the fifth offset.
[0331] As one sub-embodiment of the above-mentioned embodiment, the seventh compensation quantity is not the fifth compensation quantity.
[0332] As one embodiment, a compensation quantity used for determining the number of the time-frequency resource particles comprised in the first reserved resource pool is one of multiple compensation quantities, according to a category of HARQ-ACK comprised in the first bit block.
[0333] As one embodiment, the first bit block comprises only one of the first category of HARQ-ACK or the second category of HARQ-ACK; when the first bit block comprises only the former of the first category of HARQ-ACK or the second category of HARQ-ACK, a fifth compensation quantity is used for determining the number of the time-frequency resource particles comprised in the first time-frequency resource sub-pool; when the first bit block comprises only the latter of the first category of HARQ-ACK or the second category of HARQ-ACK, a sixth compensation quantity is used for determining the number of the time-frequency resource particles comprised in the first time-frequency resource sub-pool; the fifth compensation quantity is one of a fifth set of compensation quantity elements, the sixth compensation quantity is one of a sixth set of compensation quantity elements, and the fifth set of compensation quantity elements is different from the sixth set of compensation quantity elements.
[0334] As one sub-embodiment of the above-mentioned embodiment, the first signaling indicates the fifth compensation quantity in the fifth set of compensation quantity elements.
[0335] As one sub-embodiment of the above-mentioned embodiment, the first signaling indicates the sixth compensation quantity in the sixth set of compensation quantity elements.
[0336] As one sub-embodiment of the above-mentioned embodiment, the first signaling determines the fifth compensation quantity in the fifth set of compensation quantity elements by indicating a compensation quantity index.
[0337] As one sub-embodiment of the above-mentioned embodiment, the first signaling indicates the sixth compensation quantity in the sixth set of compensation quantity elements.
[0338] As one sub-embodiment of the above-mentioned embodiment, the first signaling determines the sixth compensation quantity in the sixth set of compensation quantity elements by indicating a compensation quantity index.
[0339] As one embodiment, when the first bit block comprises only the former one of both the first type HARQ-ACK or the second type HARQ-ACK, a fifth offset quantity is used to determine the number of the time-frequency resource particles comprised by the first time-frequency resource sub-pool; when the first bit block comprises only the latter one of both the first type HARQ-ACK or the second type HARQ-ACK, a sixth offset quantity is used to determine the number of the time-frequency resource particles comprised by the first time-frequency resource sub-pool; when the first bit block comprises both the first type HARQ-ACK and the second type HARQ-ACK, an eighth offset quantity is used to determine the number of the time-frequency resource particles comprised by the first time-frequency resource sub-pool; the fifth offset quantity is one offset quantity in a fifth offset quantity element set, the sixth offset quantity is one offset quantity in a sixth offset quantity element set, and the fifth offset quantity element set is different from the sixth offset quantity element set.
[0340] As one sub-embodiment of the above-mentioned embodiment, the first signaling indicates the fifth offset quantity in the fifth offset quantity element set.
[0341] As one sub-embodiment of the above-mentioned embodiment, the first signaling indicates the sixth offset quantity in the sixth offset quantity element set.
[0342] As one sub-embodiment of the above-mentioned embodiment, the eighth offset quantity is one offset quantity in an eighth offset quantity element set; and the eighth offset quantity element set is different from at least one of the fifth offset quantity element set or the sixth offset quantity element set.
[0343] As one sub-embodiment of the above-mentioned embodiment, the first signaling indicates the eighth offset quantity in the eighth offset quantity element set.
[0344] As one sub-embodiment of the above-mentioned embodiment, the first signaling indicates the eighth offset quantity in the eighth offset quantity element set.
[0345] As one sub-embodiment of the above-mentioned embodiment, the first signaling determines the fifth offset quantity in the fifth offset quantity element set by indicating an offset quantity index.
[0346] As one sub-embodiment of the above-mentioned embodiment, the first signaling determines the sixth offset quantity in the sixth offset quantity element set by indicating an offset quantity index.
[0347] As one sub-embodiment of the above-mentioned embodiment, the first signaling determines the eighth offset quantity in the eighth offset quantity element set by indicating an offset quantity index.
[0348] As one embodiment, the English names in the present application do not distinguish between upper and lower case.
[0349] As one embodiment, different HARQ-ACK categories correspond to different compensation-related configurations.
[0350] As one sub-embodiment of the above embodiment, the compensation-related configuration includes a UCI-OnPUSCH (or uci-OnPUSCH) configuration.
[0351] As one sub-embodiment of the above embodiment, the compensation-related configuration includes the compensation configuration in the present application.
[0352] As one embodiment, the features used in the method in the first node further include receiving a signaling group.
[0353] As one embodiment, the features used in the method in the second node further include sending a signaling group.
[0354] As one embodiment, one value determined by one signaling group corresponds to multiple different compensations related to multiple different compensation configurations.
[0355] As one sub-embodiment of the above embodiment, the meaning of the sentence that one value determined by one signaling group corresponds to multiple different compensations related to multiple different compensation configurations includes that the one value determined by the one signaling group corresponds to different compensations in the multiple different compensation configurations based on a mapping relationship.
[0356] As one sub-embodiment of the above embodiment, the meaning of the sentence that one value determined by one signaling group corresponds to multiple different compensations related to multiple different compensation configurations includes that the one value determined by the one signaling group corresponds to different compensation indexes in the multiple different compensation configurations based on a mapping relationship.
[0357] As one sub-embodiment of the above embodiment, the meaning of the sentence that one value determined by one signaling group corresponds to multiple different compensations related to multiple different compensation configurations includes that the one value determined by the one signaling group corresponds to at least two different compensations in the multiple different compensation configurations based on a mapping relationship.
[0358] As one sub-embodiment of the above embodiment, the meaning of the sentence that one value determined by one signaling group corresponds to multiple different compensations related to multiple different compensation configurations includes that the one value determined by the one signaling group corresponds to at least two different compensation indexes in the multiple different compensation configurations based on a mapping relationship.
[0359] As one subembodiment of the above embodiment, the one value determined by the one signaling group corresponds to at least two compensation amounts greater than zero among the multiple different compensation amounts related to the multiple different compensation amount configurations.
[0360] As one subembodiment of the above embodiment, when the first condition is not satisfied, the same compensation amount is one of the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group; when the first condition is satisfied, the two different compensation amounts are two compensation amounts among the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group.
[0361] As one subembodiment of the above embodiment, when the first condition is satisfied, the two different compensation amounts are two compensation amounts among the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group, and the compensation amount used for determining the number of time-frequency resource particles included in the first reserved resource pool among the two different compensation amounts is the maximum compensation amount among the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group.
[0362] As one subembodiment of the above embodiment, when the first condition is satisfied, the two different compensation amounts are two compensation amounts among the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group, and the compensation amount used for determining the number of time-frequency resource particles included in the first reserved resource pool among the two different compensation amounts is the minimum compensation amount among the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group.
[0363] As one subembodiment of the above embodiment, the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group include compensation amounts in the first compensation amount set.
[0364] As one subembodiment of the above embodiment, the multiple different compensation amounts related to the multiple different compensation amount configurations corresponding to the one value determined by the one signaling group include compensation amounts in the second compensation amount set.
[0365] As one embodiment, the compensation amount index in the present application is one-to-one corresponding to the compensation amount in the present application.
[0366] As an embodiment, the multiple values determined by the one signaling group correspond to multiple different compensation amounts related to multiple different compensation amount configurations.
[0367] As a sub-embodiment of the above embodiment, the meaning that the multiple values determined by the one signaling group correspond to multiple different compensation amounts related to multiple different compensation amount configurations respectively includes that the multiple values determined by the one signaling group correspond to different compensation amounts in the multiple different compensation amount configurations respectively based on a mapping relationship.
[0368] As a sub-embodiment of the above embodiment, the meaning that the multiple values determined by the one signaling group correspond to multiple different compensation amounts related to multiple different compensation amount configurations respectively includes that the multiple values determined by the one signaling group correspond to different compensation amount indexes in the multiple different compensation amount configurations respectively based on a mapping relationship.
[0369] As a sub-embodiment of the above embodiment, the meaning that the multiple values determined by the one signaling group correspond to multiple different compensation amounts related to multiple different compensation amount configurations respectively includes that the multiple values determined by the one signaling group correspond to at least two different compensation amounts in the multiple different compensation amount configurations based on a mapping relationship.
[0370] As a sub-embodiment of the above embodiment, the meaning that the multiple values determined by the one signaling group correspond to multiple different compensation amounts related to multiple different compensation amount configurations respectively includes that the multiple values determined by the one signaling group correspond to at least two different compensation amount indexes in the multiple different compensation amount configurations based on a mapping relationship.
[0371] As a sub-embodiment of the above embodiment, the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group related to the multiple different compensation amount configurations include at least two compensation amounts greater than zero.
[0372] As a sub-embodiment of the above embodiment, when the first condition is not satisfied, the one compensation amount is one of the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group related to the multiple different compensation amount configurations; when the first condition is satisfied, the two different compensation amounts are two compensation amounts in the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group related to the multiple different compensation amount configurations.
[0373] As a sub-embodiment of the above-mentioned embodiment, when the first condition is satisfied, the two different compensation amounts are two of the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group in relation to the multiple different compensation amount configurations, and the one of the two different compensation amounts used to determine the number of the time-frequency resource particles included in the first reserved resource pool is the largest one of the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group in relation to the multiple different compensation amount configurations.
[0374] As a sub-embodiment of the above-mentioned embodiment, when the first condition is satisfied, the two different compensation amounts are two of the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group in relation to the multiple different compensation amount configurations, and the one of the two different compensation amounts used to determine the number of the time-frequency resource particles included in the first reserved resource pool is the smallest one of the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group in relation to the multiple different compensation amount configurations.
[0375] As a sub-embodiment of the above-mentioned embodiment, the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group in relation to the multiple different compensation amount configurations include the compensation amounts in the first compensation amount set.
[0376] As a sub-embodiment of the above-mentioned embodiment, the multiple different compensation amounts corresponding to the multiple values determined by the one signaling group in relation to the multiple different compensation amount configurations include the compensation amounts in the second compensation amount set.
[0377] As an embodiment, one signaling group is used to determine multiple different compensation amounts; when the first condition is not satisfied, the multiple different compensation amounts determined by the one signaling group include the same compensation amount; when the first condition is satisfied, the multiple different compensation amounts determined by the one signaling group include the two different compensation amounts.
[0378] As an embodiment, the one signaling group in the present application includes one or more signaling.
[0379] As an embodiment, the one signaling group in the present application includes the first signaling.
[0380] As an embodiment, the one signaling group in the present application includes a signaling other than the first signaling.
[0381] As an embodiment, the one signaling group in the present application includes and only includes the first signaling.
[0382] As an embodiment, the one signaling group in the present application indicates multiple different compensation amounts.
[0383] As an embodiment, the one signaling group in the present application indicates multiple different compensation amount indexes.
[0384] As an embodiment, one signaling in the one signaling group in the present application comprises a DCI.
[0385] As an embodiment, one signaling in the one signaling group in the present application comprises one or more fields in a DCI.
[0386] As an embodiment, one signaling in the one signaling group in the present application comprises a higher layer signaling.
[0387] As an embodiment, one signaling in the one signaling group in the present application comprises one or more fields in a higher layer signaling.
[0388] As an embodiment, one signaling in the one signaling group in the present application comprises an RRC signaling.
[0389] As an embodiment, one signaling in the one signaling group in the present application comprises a MAC CE signaling.
[0390] As an embodiment, one signaling in the one signaling group in the present application comprises one or more fields in an RRC signaling.
[0391] As an embodiment, one signaling in the one signaling group in the present application comprises one or more fields in a MAC CE signaling.
[0392] As an embodiment, one signaling in the one signaling group in the present application is used to activate transmission of configured grant.
[0393] As an embodiment, one signaling in the one signaling group in the present application is used to activate transmission of Type 1 configured grant.
[0394] As an embodiment, one signaling in the one signaling group in the present application is used to activate transmission of Type 2 configured grant.
[0395] As an embodiment, the first signaling comprises a second field; a value of the second field in the first signaling corresponds to multiple different compensation amounts related to multiple different compensation amount configurations.
[0396] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes that the value of the second field in the first signaling corresponds to different compensation amounts in the plurality of different compensation amount configurations based on a mapping relationship.
[0397] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes that the value of the second field in the first signaling corresponds to different compensation amount indexes in the plurality of different compensation amount configurations based on a mapping relationship.
[0398] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes that the value of the second field in the first signaling corresponds to at least two different compensation amounts in the plurality of different compensation amount configurations based on a mapping relationship.
[0399] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes that the value of the second field in the first signaling corresponds to at least two different compensation amount indexes in the plurality of different compensation amount configurations based on a mapping relationship.
[0400] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes that the plurality of different compensation amount configurations include D different compensation amount configurations, for any two different integers r and t not greater than D, the value of the second field in the first signaling corresponds to different compensation amounts in the rth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship and the value of the second field in the first signaling corresponds to different compensation amounts in the tth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship; the D is a positive integer greater than 1.
[0401] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes: the plurality of different compensation amount configurations include D different compensation amount configurations, for any two different positive integers r and t not greater than the D, the value of the second field in the first signaling corresponds to a compensation amount index in the rth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship is different from the value of the second field in the first signaling corresponds to a compensation amount index in the tth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship; the D is a positive integer greater than 1.
[0402] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes: the plurality of different compensation amount configurations include D different compensation amount configurations, for any two different positive integers r and t not greater than the D, the value of the second field in the first signaling corresponds to a compensation amount in the rth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship is different from the value of the second field in the first signaling corresponds to a compensation amount in the tth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship; the D is a positive integer greater than 1.
[0403] As one sub-embodiment of the above-mentioned embodiment, the sentence that the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations includes: the plurality of different compensation amount configurations include D different compensation amount configurations, for any two different positive integers r and t not greater than the D, the value of the second field in the first signaling corresponds to a compensation amount index in the rth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship is different from the value of the second field in the first signaling corresponds to a compensation amount index in the tth compensation amount configuration in the plurality of different compensation amount configurations based on a mapping relationship; the D is a positive integer greater than 1.
[0404] As one sub-embodiment of the above-mentioned embodiment, the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations, all of which are compensation amounts greater than zero.
[0405] As one sub-embodiment of the above-mentioned embodiment, the value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations, at least two of which are compensation amounts greater than zero.
[0406] As one subembodiment of the above embodiment, when the first condition is not satisfied, the same one of the plurality of different compensation amounts corresponding to the value of the second field in the first signaling is one of the plurality of different compensation amounts related to the plurality of different compensation amount configurations; when the first condition is satisfied, the two different compensation amounts corresponding to the value of the second field in the first signaling are two of the plurality of different compensation amounts related to the plurality of different compensation amount configurations.
[0407] As one subembodiment of the above embodiment, when the first condition is satisfied, the two different compensation amounts corresponding to the value of the second field in the first signaling are two of the plurality of different compensation amounts related to the plurality of different compensation amount configurations, and the one of the two different compensation amounts used to determine the number of time-frequency resource particles included in the first reserved resource pool is the largest one of the plurality of different compensation amounts related to the plurality of different compensation amount configurations corresponding to the value of the second field in the first signaling.
[0408] As one subembodiment of the above embodiment, when the first condition is satisfied, the two different compensation amounts corresponding to the value of the second field in the first signaling are two of the plurality of different compensation amounts related to the plurality of different compensation amount configurations, and the one of the two different compensation amounts used to determine the number of time-frequency resource particles included in the first reserved resource pool is the smallest one of the plurality of different compensation amounts related to the plurality of different compensation amount configurations corresponding to the value of the second field in the first signaling.
[0409] As one subembodiment of the above embodiment, the plurality of different compensation amounts related to the plurality of different compensation amount configurations corresponding to the value of the second field in the first signaling includes a compensation amount in the first set of compensation amounts.
[0410] As one subembodiment of the above embodiment, the plurality of different compensation amounts related to the plurality of different compensation amount configurations corresponding to the value of the second field in the first signaling includes a compensation amount in the second set of compensation amounts.
[0411] As one embodiment, the second field is a beta_offset indicator field.
[0412] As one embodiment, a name of the second field includes at least one of beta or offset.
[0413] As one embodiment, the value of the second field is equal to one of a plurality of values.
[0414] As one embodiment, the value of the second field is equal to one of 0 or 1.
[0415] As one embodiment, the value of the second field is equal to one of 00, 01, 10 or 11.
[0416] As one embodiment, the value of the second field is equal to one of 000, 001, 010, 011, 100, 101, 110 or 111.
[0417] As one embodiment, the value of the second field is equal to an integer between Q1 and Q2; the Q1 is a non-negative integer, and the Q2 is a positive integer greater than the Q1.
[0418] As one embodiment, the compensation configuration in the present application comprises configuration related to mapping.
[0419] As one embodiment, the compensation configuration in the present application comprises part or all of a mapping table.
[0420] As one embodiment, the name of the compensation configuration in the present application comprises at least one of UCI or OnPUSCH.
[0421] As one embodiment, the name of the compensation configuration in the present application comprises at least one of beta or Offsets.
[0422] As one embodiment, the compensation configuration in the present application comprises part or all of UCI-OnPUSCH configuration.
[0423] As one embodiment, the compensation configuration in the present application comprises part or all of a configuration in a name comprising UCI-OnPUSCH.
[0424] As one embodiment, the plurality of different compensation configurations in the present application comprises part or all of a plurality of different UCI-OnPUSCH configurations.
[0425] As one embodiment, the plurality of different compensation configurations in the present application comprises part or all of a plurality of different betaOffsets configurations in a UCI-OnPUSCH configuration.
[0426] As an embodiment, the multiple different compensation quantities configured in the present application include some or all of the multiple different betaOffsets configurations in the multiple different UCI-OnPUSCH configurations.
[0427] As an embodiment, the multiple different compensation quantities configured in the present application include some or all of the multiple different configurations including betaOffsets in the multiple different configurations including UCI-OnPUSCH.
[0428] As an embodiment, the multiple different compensation quantities configured in the present application include some or all of the multiple different configurations including betaOffsets in the multiple different configurations including UCI-OnPUSCH.
[0429] As an embodiment, the multiple different compensation quantities configured in the present application include some or all of the multiple different configurations including betaOffsets in the multiple different configurations including UCI-OnPUSCH.
[0430] As an embodiment, the first signaling is used to configure multiple different compensation quantities.
[0431] As a sub-embodiment of the above-mentioned embodiment, the first signaling configures the multiple different compensation quantities by configuring indexes of the multiple different compensation quantities.
[0432] As a sub-embodiment of the above-mentioned embodiment, the multiple different compensation quantities configured by the first signaling include at least two compensation quantities greater than zero.
[0433] As a sub-embodiment of the above-mentioned embodiment, when the first condition is not satisfied, the same compensation quantity is one of the multiple different compensation quantities configured by the first signaling; when the first condition is satisfied, the two different compensation quantities are two compensation quantities in the multiple different compensation quantities configured by the first signaling.
[0434] As a sub-embodiment of the above-mentioned embodiment, when the first condition is satisfied, the two different compensation quantities are two compensation quantities in the multiple different compensation quantities configured by the first signaling; the compensation quantity used to determine the number of time-frequency resource particles included in the first reserved resource pool among the two different compensation quantities is the largest compensation quantity in the multiple different compensation quantities configured by the first signaling.
[0435] As a sub-embodiment of the above-mentioned embodiment, when the first condition is satisfied, the two different compensation amounts are two compensation amounts in the multiple different compensation amounts of the first signaling configuration; the compensation amount in the two different compensation amounts used for determining the number of the time-frequency resource particles included in the first reserved resource pool is the smallest compensation amount in the multiple different compensation amounts of the first signaling configuration.
[0436] As an embodiment, the first signaling is used for activating transmission of a Configured Grant (CG).
[0437] As an embodiment, the first signaling is used for activating transmission of a Type 1 Configured Grant.
[0438] As an embodiment, the first signaling is used for activating transmission of a Type 2 Configured Grant.
[0439] As an embodiment, one signaling in one signaling group includes D fields; for any two different positive integers r and t not greater than D, the value of the rth field in the D fields in the one signaling in the one signaling group is different from the value of the th field in the D fields in the one signaling in the one signaling group based on a mapping relationship in a corresponding compensation amount in the rth compensation amount configuration in the D different compensation amount configurations; D is a positive integer greater than 1.
[0440] As an embodiment, one signaling in one signaling group includes D fields; for any two different positive integers r and t not greater than D, the value of the rth field in the D fields in the one signaling in the one signaling group is different from the value of the th field in the D fields in the one signaling in the one signaling group based on a mapping relationship in a corresponding compensation amount index in the rth compensation amount configuration in the D different compensation amount configurations; D is a positive integer greater than 1.
[0441] As an embodiment, the one signaling group in the present application includes the D signaling in the present application.
[0442] As an embodiment, D signaling respectively comprises D fields; for any two different positive integers r and t not greater than the D, the value of a field included in the rth signaling of the D signaling based on a mapping relationship in the corresponding compensation amount of the rth compensation amount configuration of the D different compensation amount configurations is different from the value of a field included in the th signaling of the D signaling based on a mapping relationship in the corresponding compensation amount of the th compensation amount configuration of the D different compensation amount configurations; the D is a positive integer greater than 1.
[0443] As an embodiment, D signaling respectively comprises D fields; for any two different positive integers r and t not greater than the D, the value of a field included in the rth signaling of the D signaling based on a mapping relationship in the corresponding compensation amount of the rth compensation amount configuration of the D different compensation amount configurations is different from the value of a field included in the th signaling of the D signaling based on a mapping relationship in the corresponding compensation amount of the th compensation amount configuration of the D different compensation amount configurations; the D is a positive integer greater than 1.
[0444] As an embodiment, one signaling in one signaling group comprises D fields; there are two different positive integers r and t not greater than the D, the value of the rth field in the D fields in the one signaling in the one signaling group based on a mapping relationship in the corresponding compensation amount of the rth compensation amount configuration of the D different compensation amount configurations is different from the value of the th field in the D fields in the one signaling in the one signaling group based on a mapping relationship in the corresponding compensation amount of the th compensation amount configuration of the D different compensation amount configurations; the D is a positive integer greater than 1.
[0445] As an embodiment, one signaling in one signaling group comprises D fields; there are two different positive integers r and t not greater than the D, the value of the rth field in the D fields in the one signaling in the one signaling group based on a mapping relationship in the corresponding compensation amount of the rth compensation amount configuration of the D different compensation amount configurations is different from the value of the th field in the D fields in the one signaling in the one signaling group based on a mapping relationship in the corresponding compensation amount of the th compensation amount configuration of the D different compensation amount configurations; the D is a positive integer greater than 1.
[0446] As an embodiment, the D signaling respectively comprises D fields; there are two different positive integers r and t not greater than the D, the value of one field in the rth signaling among the D signaling based on a mapping relationship in the corresponding compensation amount in the rth compensation amount configuration among the D different compensation amount configurations is different from the value of one field in the tth signaling among the D signaling based on a mapping relationship in the corresponding compensation amount in the tth compensation amount configuration among the D different compensation amount configurations; the D is a positive integer greater than 1.
[0447] As an embodiment, the D signaling respectively comprises D fields; there are two different positive integers r and t not greater than the D, the value of one field in the rth signaling among the D signaling based on a mapping relationship in the corresponding compensation amount index in the rth compensation amount configuration among the D different compensation amount configurations is different from the value of one field in the tth signaling among the D signaling based on a mapping relationship in the corresponding compensation amount index in the tth compensation amount configuration among the D different compensation amount configurations; the D is a positive integer greater than 1.
[0448] As an embodiment, the D signaling respectively comprises one or more fields in one DCI.
[0449] As an embodiment, the D signaling respectively comprises one or more fields in one DCI.
[0450] As an embodiment, one of the D signaling comprises one DCI.
[0451] As an embodiment, one of the D signaling comprises one or more fields in one DCI.
[0452] As an embodiment, one of the D signaling comprises higher layer signaling.
[0453] As an embodiment, one of the D signaling comprises one or more fields in one higher layer signaling.
[0454] As an embodiment, one of the D signaling comprises RRC signaling.
[0455] As an embodiment, one of the D signaling comprises MAC CE signaling.
[0456] As an embodiment, one of the D signaling comprises one or more fields in one RRC signaling.
[0457] As an embodiment, one of the D signaling comprises one or more fields in a MAC CE signaling.
[0458] As an embodiment, one of the D signaling is used to activate transmission of configured grant.
[0459] As an embodiment, one of the D signaling is used to activate transmission of Type 1 configured grant.
[0460] As an embodiment, one of the D signaling is used to activate transmission of Type 2 configured grant.
[0461] As an embodiment, the value of one of the D fields is equal to one of a plurality of values.
[0462] As an embodiment, the value of one of the D fields is equal to one of 0 or 1.
[0463] As an embodiment, the value of one of the D fields is equal to one of 00, 01, 10 or 11.
[0464] As an embodiment, the value of one of the D fields is equal to one of 000, 001, 010, 011, 100, 101, 110 or 111.
[0465] As an embodiment, the value of one of the D fields is equal to an integer between Q1 and Q2; Q1 is a non-negative integer, and Q2 is a positive integer greater than Q1.
[0466] As an embodiment, CG-UCI-OnPUSCH is configured as dynamic.
[0467] As an embodiment, CG-UCI-OnPUSCH is configured as semiStatic.
[0468] As an embodiment, one of the compensation quantity configurations in the present application comprises a set of compensation quantity elements.
[0469] As an embodiment, one of the compensation quantity configurations in the present application comprises a set of compensation quantity indices.
[0470] As an embodiment, one of the compensation quantity configurations in the present application comprises a set of compensation quantity indices corresponding to a set of compensation quantity elements.
[0471] As an embodiment, one of the compensation quantity configurations in the present application comprises a configuration of a set of compensation quantity elements.
[0472] As an embodiment, the compensation quantity configuration in this application comprises configuration of a set of compensation quantity indexes.
[0473] As an embodiment, the compensation quantity configuration in this application comprises configuration of a set of compensation quantity indexes corresponding to a set of compensation quantity elements.
[0474] As an embodiment, the first signaling is used to determine a plurality of different compensation quantities; when the first condition is not satisfied, the plurality of different compensation quantities determined by the first signaling comprises the same compensation quantity; when the first condition is satisfied, the plurality of different compensation quantities determined by the first signaling comprises the two different compensation quantities.
[0475] As an embodiment, the first signaling indicates a plurality of different compensation quantities.
[0476] As an embodiment, the first signaling indicates a plurality of different compensation quantities in a plurality of different sets of compensation quantity elements.
[0477] As an embodiment, the first signaling indicates a plurality of different compensation quantity indexes.
[0478] As an embodiment, the first signaling indicates a plurality of different compensation quantity indexes in a plurality of different sets of compensation quantity indexes corresponding to a plurality of different sets of compensation quantity elements respectively.
[0479] As an embodiment, a set of compensation quantity elements in this application corresponds to a set of compensation quantity indexes.
[0480] As an embodiment, there is a one-to-one mapping relationship between a set of compensation quantity elements in this application and a set of compensation quantity indexes.
[0481] As an embodiment, a set of compensation quantity indexes in this application comprises a plurality of offset indexes.
[0482] As an embodiment, the number of offset indexes in a set of offset indexes in this application is no more than 32.
[0483] As an embodiment, a set of offset indexes in this application comprises 2 or 4 offset indexes.
[0484] As an embodiment, a set of offset indexes in this application is a set of indexes related to BetaOffsets configuration.
[0485] As an embodiment, a set of offset indexes in this application is a set of indexes corresponding to the betaOffsetACK-Index1 field.
[0486] As an embodiment, the set of compensation elements in the present application is a set including multiple compensation amounts.
[0487] As an embodiment, the set of compensation elements in the present application includes multiple compensation amounts.
[0488] As an embodiment, the set of compensation elements in the present application includes no more than 32 compensation amounts.
[0489] As an embodiment, the set of compensation elements in the present application includes 2 or 4 compensation amounts.
[0490] As an embodiment, the set of compensation elements in the present application includes multiple compensation amounts corresponding to multiple compensation index in a set of compensation index.
[0491] As an embodiment, the set of compensation elements in the present application is configured by higher layer signaling.
[0492] As an embodiment, the set of compensation elements in the present application is configured by RRC signaling.
[0493] As an embodiment, the two different compensation amounts in the present application include: one compensation amount determined from one set of compensation elements (according to the corresponding compensation index) and another compensation amount determined from another set of compensation elements.
[0494] As an embodiment, the compensation amount in the present application is a compensation amount used for HARQ-ACK information.
[0495] As an embodiment, the set of compensation elements in the present application includes compensation amounts all of which are compensation amounts used for HARQ-ACK information.
[0496] As an embodiment, the second field in one signaling indicates the index of the compensation amount in the present application in the set of compensation index in the present application.
[0497] As a sub-embodiment of the above embodiment, the one signaling is the first signaling.
[0498] As a sub-embodiment of the above embodiment, the one signaling is a DCI.
[0499] As a sub-embodiment of the above embodiment, the one signaling includes one or more fields in a DCI.
[0500] As one subembodiment of the above embodiment, the second field is a beta_offset indicator field.
[0501] As one subembodiment of the above embodiment, the name of the second field includes at least one of beta or offset.
[0502] As one embodiment, in the present application, the number of the time-frequency resource particles included in the first reserved resource pool is smaller than each of the D resource quantities included in a first resource quantity set, and the D resource quantities in the first resource quantity set are respectively related to D parameters included in a first parameter set; the D is a positive integer greater than 1.
[0503] As one subembodiment of the above embodiment, the D parameters in the first parameter set respectively correspond to the D different offset configurations in the present application.
[0504] As one subembodiment of the above embodiment, the D parameters in the first parameter set are respectively configured in the D different offset configurations in the present application.
[0505] As one subembodiment of the above embodiment, the D parameters in the first parameter set are respectively configured in the configurations of UCI-OnPUSCH included in the D names; and the D different offset configurations in the present application are also respectively configured in the configurations of UCI-OnPUSCH included in the D names.
[0506] As one subembodiment of the above embodiment, the D parameters in the first parameter set are all scaling parameters configured by higher layer signaling.
[0507] As one subembodiment of the above embodiment, the D parameters in the first parameter set are all scaling parameters configured by RRC signaling.
[0508] As one subembodiment of the above embodiment, the D resource quantities in the first resource quantity set are respectively equal to the results of rounding up the results of multiplying the values of the D parameters in the first parameter set by a resource quantity; and the resource quantity is equal to the number of time-frequency resource particles on one or more multicarrier symbols that can be used for UCI transmission.
[0509] Example 6
[0510] Embodiment 6 illustrates a schematic diagram of a flow of determining the number of time-frequency resource particles included in the first time-frequency resource subpool and the number of time-frequency resource particles included in the first reserved resource pool according to one embodiment of the present application, as shown in FIG. 6.Figure 6 is shown.
[0511] In embodiment 6, the first node in the present application determines in step S61 whether the first condition is satisfied; if yes, it proceeds to step S63 to determine that two different compensation amounts are respectively used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; otherwise, it proceeds to step S62 to determine that the same compensation amount is used to determine both the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool.
[0512] As a sub-embodiment of embodiment 6, when the first condition is satisfied: one of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and the other of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0513] As an embodiment, when the first condition is satisfied: one of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and the other of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0514] As an embodiment, the first condition is satisfied; one of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and the other of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first reserved resource pool; the one of the two different compensation amounts is used or not used to determine the number of time-frequency resource particles included in the first reserved resource pool, and the other of the two different compensation amounts is not used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool.
[0515] As a sub-embodiment of the above-mentioned embodiment, in the process of performing calculation to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, the one of the two different compensation amounts is used as input.
[0516] As a sub-embodiment of the above-mentioned embodiment, in the process of performing calculation to determine the number of time-frequency resource particles included in the first reserved resource pool, the other of the two different compensation amounts is used as input.
[0517] As an embodiment, the first condition is not satisfied; the first number of time-frequency resource particles included in the first time-frequency resource sub-pool is determined using a first intermediate quantity; the first intermediate quantity is linearly related to the same one compensation quantity.
[0518] As an embodiment, the first condition is not satisfied; the first number of time-frequency resource particles included in the first time-frequency resource sub-pool is equal to a result of upward rounding of a first intermediate quantity; the first intermediate quantity is linearly related to the same one compensation quantity.
[0519] As an embodiment, the first condition is not satisfied; the first number of time-frequency resource particles included in the first time-frequency resource sub-pool is equal to a minimum value of both a result of upward rounding of a first intermediate quantity and a result of upward rounding of a second intermediate quantity; the first intermediate quantity is linearly related to the same one compensation quantity.
[0520] As an embodiment, the first intermediate quantity is equal to a first number of bits multiplied by the same one compensation quantity multiplied by a first resource quantity divided by a first payload quantity.
[0521] As an embodiment, the first intermediate quantity is equal to a first number of bits multiplied by the same one compensation quantity divided by a first code rate divided by a first modulation order.
[0522] As an embodiment, the first condition is not satisfied; the first number of time-frequency resource particles included in the first time-frequency resource sub-pool is equal to a minimum value of both a result of upward rounding of a first intermediate quantity and a result of upward rounding of a second intermediate quantity; the first intermediate quantity is equal to a first number of bits multiplied by the same one compensation quantity multiplied by a first resource quantity divided by a first payload quantity.
[0523] As an embodiment, the first number of bits in the present application is equal to the K.
[0524] As an embodiment, the first number of bits in the present application is equal to the K plus a number of CRC bits.
[0525] As an embodiment, the first resource quantity in the present application is equal to a number of time-frequency resource particles on one or more multicarrier symbols that can be used for UCI transmission.
[0526] As an embodiment, the first payload quantity in the present application is equal to a payload size of uplink data.
[0527] As an embodiment, the first payload quantity in the present application is equal to a number of bits included in UL-SCH transmitted on a first PUSCH.
[0528] As an embodiment, the first PUSCH in the present application is one PUSCH.
[0529] As an embodiment, the first time-frequency resource pool in the present application is reserved for the first PUSCH in the present application.
[0530] As an embodiment, the first time-frequency resource pool in the present application comprises time-frequency resources reserved for the first PUSCH in the present application.
[0531] As an embodiment, the first time-frequency resource pool in the present application comprises time-frequency resources occupied by the first PUSCH in the present application.
[0532] As an embodiment, the first condition is not satisfied; the first time-frequency resource sub-pool comprises the number of time-frequency resource particles equal to the minimum of the first intermediate quantity rounded up and the second intermediate quantity rounded up; the first intermediate quantity is equal to the first bit quantity multiplied by the same compensation quantity divided by the first code rate divided by the first modulation order.
[0533] As an embodiment, the first code rate in the present application is the code rate of the first PUSCH.
[0534] As an embodiment, the first modulation order in the present application is the modulation order of the first PUSCH.
[0535] As an embodiment, the first signaling is used to determine the first code rate.
[0536] As an embodiment, the first signaling is used to determine the first modulation order.
[0537] As an embodiment, the MCS indicated by the first signaling is used to determine the first code rate.
[0538] As an embodiment, the MCS indicated by the first signaling is used to determine the first modulation order.
[0539] As an embodiment, the second intermediate quantity in the present application is equal to the first parameter multiplied by the second resource quantity.
[0540] As an embodiment, the second intermediate quantity in the present application is linearly related to the first parameter.
[0541] As an embodiment, the second resource quantity in the present application is equal to the number of time-frequency resource particles on one or more multicarrier symbols that can be used for UCI transmission.
[0542] As an embodiment, the first parameter in the present application is configured by higher layer signaling.
[0543] As an embodiment, the first parameter in the present application is configured by a higher layer parameter.
[0544] As an embodiment, the first condition is not satisfied; a third intermediate quantity is used to determine the number of the time-frequency resource particles included in the first reserved resource pool; the third intermediate quantity is linearly related to the same compensation quantity.
[0545] As an embodiment, the first condition is not satisfied; the number of the time-frequency resource particles included in the first reserved resource pool is equal to the result of upward rounding of a third intermediate quantity; the third intermediate quantity is linearly related to the same compensation quantity.
[0546] As an embodiment, the first condition is not satisfied; the number of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a third intermediate quantity and a fourth intermediate quantity; the third intermediate quantity is linearly related to the same compensation quantity.
[0547] As an embodiment, the third intermediate quantity is equal to the second bit quantity multiplied by the same compensation quantity multiplied by the first resource quantity divided by the first load quantity.
[0548] As an embodiment, the third intermediate quantity is equal to the second bit quantity multiplied by the same compensation quantity divided by the first code rate divided by the first modulation order.
[0549] As an embodiment, the first condition is not satisfied; the number of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a third intermediate quantity and a fourth intermediate quantity; the third intermediate quantity is equal to the second bit quantity multiplied by the same compensation quantity multiplied by the first resource quantity divided by the first load quantity.
[0550] As an embodiment, the first condition is not satisfied; the number of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a third intermediate quantity and a fourth intermediate quantity; the third intermediate quantity is equal to the second bit quantity multiplied by the same compensation quantity divided by the first code rate divided by the first modulation order.
[0551] As an embodiment, the fourth intermediate quantity in the present application is equal to the second intermediate quantity in the present application.
[0552] As an embodiment, the second bit quantity in the present application is not less than the K.
[0553] As one embodiment, the second number of bits in the present application is greater than the K.
[0554] As one embodiment, the second number of bits in the present application is equal to 2.
[0555] As one embodiment, the second number of bits in the present application is equal to a predefined value.
[0556] As one embodiment, the second number of bits in the present application is equal to a value in a number set, the number set comprising a plurality of values.
[0557] As one sub-embodiment of the above embodiment, the number set is predefined.
[0558] As one sub-embodiment of the above embodiment, the number set is configured by higher layer signaling.
[0559] As one embodiment, the first condition is satisfied; one of two different compensation amounts is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, the other of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first reserved resource pool; a fifth intermediate quantity is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, the fifth intermediate quantity is linearly related to the one of the two different compensation amounts; a seventh intermediate quantity is used to determine the number of time-frequency resource particles included in the first reserved resource pool, the seventh intermediate quantity is linearly related to the other of the two different compensation amounts.
[0560] As one embodiment, the first condition is satisfied; one of two different compensation amounts is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, the other of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first reserved resource pool; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the result of rounding up a fifth intermediate quantity, the fifth intermediate quantity is linearly related to the one of the two different compensation amounts; the number of time-frequency resource particles included in the first reserved resource pool is equal to the result of rounding up a seventh intermediate quantity, the seventh intermediate quantity is linearly related to the other of the two different compensation amounts.
[0561] As one embodiment, the fifth intermediate quantity is equal to a fifth number of bits multiplied by the one of the two different compensation amounts multiplied by a fifth resource quantity divided by a fifth load quantity.
[0562] As one embodiment, the seventh intermediate quantity is equal to the seventh bit quantity multiplied by the other one of the two different compensation quantities multiplied by the fifth resource quantity divided by the fifth load quantity.
[0563] As one embodiment, the fifth intermediate quantity is equal to the fifth bit quantity multiplied by the one of the two different compensation quantities divided by the fifth code rate divided by the fifth modulation order.
[0564] As one embodiment, the seventh intermediate quantity is equal to the seventh bit quantity multiplied by the other one of the two different compensation quantities divided by the fifth code rate divided by the fifth modulation order.
[0565] As one embodiment, the first condition is satisfied; one of the two different compensation quantities is used to determine the quantity of the time-frequency resource particles included in the first time-frequency resource sub-pool, the other one of the two different compensation quantities is used to determine the quantity of the time-frequency resource particles included in the first reserved resource pool; the quantity of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a fifth intermediate quantity and a sixth intermediate quantity, the fifth intermediate quantity is linearly related to the one of the two different compensation quantities; the quantity of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a seventh intermediate quantity and an eighth intermediate quantity, the seventh intermediate quantity is linearly related to the other one of the two different compensation quantities.
[0566] As one embodiment, the first condition is satisfied; one of the two different compensation quantities is used to determine the quantity of the time-frequency resource particles included in the first time-frequency resource sub-pool, the other one of the two different compensation quantities is used to determine the quantity of the time-frequency resource particles included in the first reserved resource pool; the quantity of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a fifth intermediate quantity and a sixth intermediate quantity, the fifth intermediate quantity is equal to the fifth bit quantity multiplied by the one of the two different compensation quantities multiplied by the fifth resource quantity divided by the fifth load quantity; the quantity of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a seventh intermediate quantity and an eighth intermediate quantity, the seventh intermediate quantity is equal to the seventh bit quantity multiplied by the other one of the two different compensation quantities multiplied by the fifth resource quantity divided by the fifth load quantity.
[0567] As an embodiment, the first condition is satisfied; one of two different compensation amounts is used to determine the number of time-frequency resource particles that the first time-frequency resource sub-pool comprises, the other of the two different compensation amounts is used to determine the number of time-frequency resource particles that the first reservation resource pool comprises; the number of time-frequency resource particles that the first time-frequency resource sub-pool comprises is equal to the minimum of the results of the upward rounding of a fifth intermediate quantity and the upward rounding of a sixth intermediate quantity, the fifth intermediate quantity is equal to a fifth bit quantity multiplied by the one of the two different compensation amounts divided by a fifth code rate divided by a fifth modulation order; the number of time-frequency resource particles that the first reservation resource pool comprises is equal to the minimum of the results of the upward rounding of a seventh intermediate quantity and the upward rounding of an eighth intermediate quantity, the seventh intermediate quantity is equal to a seventh bit quantity multiplied by the other of the two different compensation amounts divided by the fifth code rate divided by the fifth modulation order.
[0568] As an embodiment, the fifth bit quantity in the present application is equal to the K.
[0569] As an embodiment, the fifth bit quantity in the present application is equal to the K plus the number of CRC bits.
[0570] As an embodiment, the fifth bit quantity in the present application is equal to the first bit quantity in the present application.
[0571] As an embodiment, the fifth resource quantity in the present application is equal to the number of time-frequency resource particles on one or more multi-carrier symbols that can be used for UCI transmission.
[0572] As an embodiment, the fifth resource quantity in the present application is equal to the first resource quantity in the present application.
[0573] As an embodiment, the fifth payload quantity in the present application is equal to the payload size of uplink data.
[0574] As an embodiment, the fifth payload quantity in the present application is equal to the number of bits that the UL-SCH transmitted on the first PUSCH comprises.
[0575] As an embodiment, the fifth payload quantity in the present application is equal to the first payload quantity in the present application.
[0576] As an embodiment, the fifth code rate in the present application is the code rate of the first PUSCH.
[0577] As an embodiment, the fifth modulation order in the present application is the modulation order of the first PUSCH.
[0578] As one embodiment, the first signaling is used to determine the fifth code rate.
[0579] As one embodiment, the first signaling is used to determine the fifth modulation order.
[0580] As one embodiment, the first signaling indicates an MCS which is used to determine the fifth code rate.
[0581] As one embodiment, the first signaling indicates an MCS which is used to determine the fifth modulation order.
[0582] As one embodiment, the fifth code rate in the present application is equal to the first code rate in the present application.
[0583] As one embodiment, the fifth modulation order in the present application is equal to the first modulation order in the present application.
[0584] As one embodiment, the sixth intermediate quantity in the present application is equal to the sixth parameter multiplied by the sixth resource quantity.
[0585] As one embodiment, the sixth intermediate quantity in the present application is linearly related to the sixth parameter.
[0586] As one embodiment, the sixth resource quantity in the present application is equal to the number of time-frequency resource elements on one or more multicarrier symbols that can be used for UCI transmission.
[0587] As one embodiment, the sixth parameter in the present application is configured by higher layer signaling.
[0588] As one embodiment, the sixth parameter in the present application is configured by a higher layer parameter scaling.
[0589] As one embodiment, the sixth intermediate quantity in the present application is equal to the second intermediate quantity in the present application.
[0590] As one embodiment, the sixth intermediate quantity in the present application is not equal to the second intermediate quantity in the present application.
[0591] As one embodiment, the sixth resource quantity in the present application is equal to the second resource quantity in the present application.
[0592] As one embodiment, the sixth parameter in the present application is equal to the first parameter in the present application.
[0593] As one embodiment, the sixth parameter in the present application is not equal to the first parameter in the present application.
[0594] As an embodiment, the sixth parameter in the present application corresponds to the first parameter in the present application respectively.
[0595] As an embodiment, the eighth intermediate quantity in the present application is equal to the sixth intermediate quantity in the present application.
[0596] As an embodiment, the eighth intermediate quantity in the present application is not equal to the sixth intermediate quantity in the present application.
[0597] As an embodiment, the eighth intermediate quantity in the present application is equal to the eighth parameter multiplied by the sixth resource quantity.
[0598] As an embodiment, the eighth intermediate quantity in the present application is linearly related to the eighth parameter.
[0599] As an embodiment, the eighth resource quantity in the present application is equal to the number of time-frequency resource particles on one or more multi-carrier symbols that can be used for UCI transmission.
[0600] As an embodiment, the eighth parameter in the present application is configured by higher layer signaling.
[0601] As an embodiment, the eighth parameter in the present application is configured by a higher layer parameter scaling.
[0602] As an embodiment, the eighth parameter in the present application is equal to the sixth parameter in the present application.
[0603] As an embodiment, the eighth parameter in the present application is not equal to the sixth parameter in the present application.
[0604] As an embodiment, the seventh bit quantity in the present application is not less than the K.
[0605] As an embodiment, the seventh bit quantity in the present application is greater than the K.
[0606] As an embodiment, the seventh bit quantity in the present application is equal to 2.
[0607] As an embodiment, the seventh bit quantity in the present application is equal to a predefined value.
[0608] As an embodiment, the seventh bit quantity in the present application is equal to a value in a number set, and the number set includes multiple values.
[0609] As a sub-embodiment of the above-mentioned embodiment, the number set is predefined.
[0610] As a sub-embodiment of the above-mentioned embodiment, the one quantity set is configured by higher layer signaling.
[0611] As one embodiment, the seventh bit quantity in the present application is equal to the second bit quantity in the present application.
[0612] As one embodiment, the seventh bit quantity in the present application is not equal to the second bit quantity in the present application.
[0613] Example 7
[0614] Embodiment 7 illustrates a schematic diagram of the relationship between the first compensation quantity and the quantity of time-frequency resource particles included in the first time-frequency resource sub-pool and the relationship between the second compensation quantity and the quantity of time-frequency resource particles included in the first reserved resource pool according to one embodiment of the present application, as shown in FIG. 7. Figure 7
[0615] In embodiment 7, the first condition in the present application is satisfied; the first compensation quantity is used to determine the quantity of time-frequency resource particles included in the first time-frequency resource sub-pool, and the second compensation quantity is used to determine the quantity of time-frequency resource particles included in the first reserved resource pool.
[0616] As one embodiment, the first compensation quantity is not greater than the second compensation quantity.
[0617] As one embodiment, the value of the first compensation quantity is less than the value of the second compensation quantity.
[0618] As one embodiment, when the first condition is satisfied: the second compensation quantity is not used to determine the quantity of time-frequency resource particles included in the first time-frequency resource sub-pool.
[0619] As one embodiment, when the first condition is satisfied: the quantity of time-frequency resource particles included in the first time-frequency resource sub-pool is irrelevant to the second compensation quantity.
[0620] As one embodiment, the expression that the second compensation quantity is not used to determine the quantity of time-frequency resource particles included in the first time-frequency resource sub-pool means that the second compensation quantity is not used in the calculation process of determining the quantity of time-frequency resource particles included in the first time-frequency resource sub-pool.
[0621] Example 8
[0622] Embodiment 8 illustrates a schematic diagram of the relationship between the second condition set and the quantity of time-frequency resource particles included in the first time-frequency resource sub-pool according to one embodiment of the present application, as shown in FIG. 8. Figure 8
[0623] In Embodiment 8, the first condition in the present application is satisfied; which one of the second condition set is satisfied is used to determine the number of time-frequency resource particles included by the first time-frequency resource sub-pool.
[0624] As one sub-embodiment of Embodiment 8, the second condition set includes N conditions that are mutually exclusive in pairs, and the N is a positive integer greater than 1; the first compensation quantity set includes N mutually different compensation quantities, and the second compensation quantity set includes at least one compensation quantity; for any positive integer j not greater than the N, when the jth condition in the second condition set is satisfied: the jth compensation quantity in the first compensation quantity set is used to determine the number of time-frequency resource particles included by the first time-frequency resource sub-pool, and a compensation quantity in the second compensation quantity set different from the jth compensation quantity in the first compensation quantity set is used to determine the number of time-frequency resource particles included by the first reserved resource pool.
[0625] As one embodiment, the first condition is satisfied; the second condition set includes N conditions that are mutually exclusive in pairs, and the first compensation quantity set includes N mutually different compensation quantities, the N being a positive integer greater than 1; the second compensation quantity set includes at least one compensation quantity; the N conditions in the second condition set respectively correspond to the N compensation quantities in the first compensation quantity set; when one condition in the second condition set is satisfied, the compensation quantity in the first compensation quantity set corresponding to the one condition in the second condition set is used to determine the number of time-frequency resource particles included by the first time-frequency resource sub-pool, and a compensation quantity in the second compensation quantity set different from the compensation quantity in the first compensation quantity set corresponding to the one condition in the second condition set is used to determine the number of time-frequency resource particles included by the first reserved resource pool.
[0626] As one sub-embodiment of the above-mentioned embodiment, the correspondence between the second condition set and the first compensation quantity set is configured by higher layer signaling or inferred based on higher layer signaling.
[0627] As one sub-embodiment of the above-mentioned embodiment, the correspondence between the second condition set and the first compensation quantity set is configured by RRC signaling or inferred based on RRC signaling.
[0628] As one sub-embodiment of the above-mentioned embodiment, the correspondence between the second condition set and the first compensation quantity set is configured by MAC CE signaling or inferred based on MAC CE signaling.
[0629] As an embodiment, each condition in the second set of conditions is a condition related to a type of HARQ-ACK included in the first bit block.
[0630] As an embodiment, there is one compensation in the second set of compensations different from all compensations in the first set of compensations.
[0631] As an embodiment, N is not greater than 2.
[0632] As an embodiment, N is greater than 2 and not greater than 2 raised to the power of u, where u is a positive integer greater than 1.
[0633] As an embodiment, one condition in the second set of conditions includes that the first bit block includes the second type of HARQ-ACK and the first bit block includes the first type of HARQ-ACK.
[0634] As an embodiment, another condition in the second set of conditions includes that the first bit block includes the second type of HARQ-ACK and the first bit block does not include the first type of HARQ-ACK.
[0635] As an embodiment, the second set of conditions includes two mutually exclusive conditions; the first of the two mutually exclusive conditions in the second set of conditions is that the first bit block includes the first type of HARQ-ACK; the second of the two mutually exclusive conditions in the second set of conditions is that the first bit block does not include the first type of HARQ-ACK.
[0636] As an embodiment, different compensations in the first set of compensations are respectively different compensations configured by RRC signaling.
[0637] As an embodiment, different compensations in the first set of compensations are respectively different compensations configured by MAC CE signaling.
[0638] As an embodiment, different compensations in the first set of compensations are respectively different compensations configured by higher layer signaling.
[0639] As an embodiment, the first signaling respectively indicates an index of different compensations in the first set of compensations in a plurality of sets of compensation indices configured by higher layer signaling.
[0640] As an embodiment, the first signaling respectively indicates an index of different compensations in the first set of compensations in a plurality of sets of compensation indices configured by RRC signaling.
[0641] As an embodiment, the first signaling indicates an index of a different compensation quantity in the first set of compensation quantities in a plurality of sets of indices of compensation quantities configured by MAC CE signaling, respectively.
[0642] As an embodiment, the second set of compensation quantities includes only one compensation quantity.
[0643] As an embodiment, the second set of compensation quantities includes a plurality of compensation quantities.
[0644] As an embodiment, one compensation quantity in the second set of compensation quantities is a compensation quantity configured by RRC signaling.
[0645] As an embodiment, one compensation quantity in the second set of compensation quantities is a compensation quantity configured by MAC CE signaling.
[0646] As an embodiment, one compensation quantity in the second set of compensation quantities is a compensation quantity configured by higher layer signaling.
[0647] As an embodiment, the first signaling indicates an index of one compensation quantity in the second set of compensation quantities in one set of indices of compensation quantities configured by higher layer signaling.
[0648] As an embodiment, the first signaling indicates an index of one compensation quantity in the second set of compensation quantities in one set of indices of compensation quantities configured by RRC signaling.
[0649] As an embodiment, the first signaling indicates an index of one compensation quantity in the second set of compensation quantities in one set of indices of compensation quantities configured by MAC CE signaling.
[0650] Example 9
[0651] Embodiment 9 illustrates a schematic diagram of a relationship between a first time-frequency resource pool, a first air interface resource pool and a first bit block according to an embodiment of the present application, as shown in FIG. 9. Figure 9
[0652] In Embodiment 9, the first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool has an overlap with the first time-frequency resource pool in time domain.
[0653] As an embodiment, the number of bit sub-blocks included in the first bit block is the same as the number of HARQ-ACK types included in the first bit block.
[0654] As an embodiment, the number of HARQ-ACK types included in each bit sub-block included in the first bit block is equal to 1.
[0655] As an embodiment, the phrase in the present application that the first air interface resource pool has overlap in time domain includes: having overlap in time domain, having overlap in frequency domain, or having no overlap in time domain and frequency domain.
[0656] As an embodiment, the phrase in the present application that the first air interface resource pool has overlap in time domain includes: having overlap in time domain, having overlap in frequency domain, or having no overlap in time domain and frequency domain.
[0657] As an embodiment, the first air interface resource pool includes a positive integer number of time-frequency resource elements in time-frequency domain.
[0658] As an embodiment, the first air interface resource pool includes a positive integer number of REs (Resource Elements) in time-frequency domain.
[0659] As an embodiment, the first air interface resource pool includes a positive integer number of subcarriers in frequency domain.
[0660] As an embodiment, the first air interface resource pool includes a positive integer number of PRBs (Physical Resource Blocks) in frequency domain.
[0661] As an embodiment, the first air interface resource pool includes a positive integer number of RBs (Resource Blocks) in frequency domain.
[0662] As an embodiment, the first air interface resource pool includes a positive integer number of multicarrier symbols in time domain.
[0663] As an embodiment, the first air interface resource pool includes a positive integer number of slots in time domain.
[0664] As an embodiment, the first air interface resource pool includes a positive integer number of sub-slots in time domain.
[0665] As an embodiment, the first air interface resource pool includes a positive integer number of milliseconds (ms) in time domain.
[0666] As an embodiment, the first air interface resource pool includes a positive integer number of consecutive multicarrier symbols in time domain.
[0667] As an embodiment, the first air interface resource pool includes a positive integer number of non-consecutive slots in time domain.
[0668] As an embodiment, the first air interface resource pool includes a positive integer number of consecutive slots in time domain.
[0669] As an embodiment, the first air interface resource pool includes a positive integer number of sub-frames in time domain.
[0670] As an embodiment, the first pool of air interface resources is configured by physical layer signaling.
[0671] As an embodiment, the first pool of air interface resources is configured by higher layer signaling.
[0672] As an embodiment, the first pool of air interface resources is configured by RRC (Radio Resource Control) signaling.
[0673] As an embodiment, the first pool of air interface resources is configured by MAC CE (Medium Access Control layer Control Element) signaling.
[0674] As an embodiment, the first pool of air interface resources is reserved for a PUCCH (Physical Uplink Control CHannel).
[0675] As an embodiment, the first pool of air interface resources comprises air interface resources reserved for a PUCCH.
[0676] As an embodiment, the first pool of air interface resources comprises air interface resources occupied by a PUCCH.
[0677] As an embodiment, the first pool of air interface resources comprises a PUCCH resource.
[0678] As an embodiment, the first pool of air interface resources comprises a PUCCH resource in a PUCCH resource set.
[0679] As an embodiment, when the first block of bits comprises only one of the first type of HARQ-ACK or the second type of HARQ-ACK: the first pool of air interface resources is reserved for the first block of bits; when the first block of bits comprises the first type of HARQ-ACK and the second type of HARQ-ACK: the first block of bits comprises a first bit sub-block and a second bit sub-block, the first bit sub-block comprises the first type of HARQ-ACK, the second bit sub-block comprises the second type of HARQ-ACK, the first pool of air interface resources is reserved for at least one of the first bit sub-block or the second bit sub-block.
[0680] Example 10
[0681] Embodiment 10 illustrates a diagram of the relationship between the first type of HARQ-ACK and the first priority and the relationship between the second type of HARQ-ACK and the second priority according to one embodiment of the present application, as shown in FIG. 10. Figure 10
[0682] In Embodiment 10, the first type of HARQ-ACK corresponds to the first priority, and the second type of HARQ-ACK corresponds to the second priority.
[0683] As one embodiment, the second bit block in the present application corresponds to one of the first priority or the second priority.
[0684] As one embodiment, the priority corresponding to the second bit block in the present application is the priority indicated by the first signaling.
[0685] As one embodiment, the first priority index in the present application and the second priority index in the present application are both priority indexes.
[0686] As one embodiment, the first priority index indicates the first priority, and the second priority index indicates the second priority.
[0687] As one embodiment, the first signaling in the present application indicates one of the first priority index or the second priority index.
[0688] As one embodiment, the first signaling in the present application includes a priority indicator field.
[0689] As one embodiment, the priority index included in the priority indicator field included in the first signaling is one of the first priority index or the second priority index.
[0690] As one embodiment, the first type of HARQ-ACK is: a bit block carried by one PDSCH transmission scheduled by a signaling indicating the first priority or a HARQ-ACK indicating whether the signaling indicating the first priority is correctly received.
[0691] As one embodiment, the second type of HARQ-ACK is: a bit block carried by one PDSCH transmission scheduled by a signaling indicating the second priority or a HARQ-ACK indicating whether the signaling indicating the second priority is correctly received.
[0692] As an embodiment, the first type of HARQ-ACK is: a bit block carried by one PDSCH transmission scheduled by a signaling indicating a first priority index or a HARQ-ACK indicating whether the signaling itself indicating the first priority index is correctly received.
[0693] As an embodiment, the second type of HARQ-ACK is: a bit block carried by one PDSCH transmission scheduled by a signaling indicating a second priority index or a HARQ-ACK indicating whether the signaling itself indicating the second priority index is correctly received.
[0694] As an embodiment, the first priority index is priority index 1 and the second priority index is priority index 0.
[0695] As an embodiment, the first priority index is priority index 0 and the second priority index is priority index 1.
[0696] Example 11
[0697] Embodiment 11 illustrates a structure block diagram of a processing apparatus in a first node device, as shown in FIG. 11. Figure 11 As shown in FIG. 11, the first node device processing apparatus 1100 includes a first receiver 1101 and a first transmitter 1102. Figure 11 As an embodiment, the first node device 1100 is a user equipment.
[0698] As an embodiment, the first node device 1100 is a user equipment.
[0699] As an embodiment, the first node device 1100 is a relay node.
[0700] As an embodiment, the first node device 1100 is a vehicle-mounted communication device.
[0701] As an embodiment, the first node device 1100 is a user equipment supporting V2X communication.
[0702] As an embodiment, the first node device 1100 is a relay node supporting V2X communication.
[0703] As an embodiment, the first receiver 1101 includes at least one of the antenna 452, the receiver 454, the multi-antenna reception processor 458, the reception processor 456, the controller / processor 459, the memory 460 and the data source 467 in the apparatus 400 in the present application. Figure 4 As an embodiment, the first receiver 1101 includes at least one of the antenna 452, the receiver 454, the multi-antenna reception processor 458, the reception processor 456, the controller / processor 459, the memory 460 and the data source 467 in the apparatus 400 in the present application.
[0704] Figure 4 at least the first five of the antenna 452, receiver 454, multi-antenna reception processor 458, reception processor 456, controller / processor 459, memory 460, and data source 467.
[0705] As one embodiment, the first receiver 1101 includes at least the first four of the antenna 452, receiver 454, multi-antenna reception processor 458, reception processor 456, controller / processor 459, memory 460, and data source 467. Figure 4 As one embodiment, the first receiver 1101 includes at least the first four of the antenna 452, receiver 454, multi-antenna reception processor 458, reception processor 456, controller / processor 459, memory 460, and data source 467.
[0706] As one embodiment, the first receiver 1101 includes at least the first four of the antenna 452, receiver 454, multi-antenna reception processor 458, reception processor 456, controller / processor 459, memory 460, and data source 467. Figure 4 As one embodiment, the first receiver 1101 includes at least the first three of the antenna 452, receiver 454, multi-antenna reception processor 458, reception processor 456, controller / processor 459, memory 460, and data source 467.
[0707] As one embodiment, the first receiver 1101 includes at least the first three of the antenna 452, receiver 454, multi-antenna reception processor 458, reception processor 456, controller / processor 459, memory 460, and data source 467. Figure 4 As one embodiment, the first receiver 1101 includes at least the first two of the antenna 452, receiver 454, multi-antenna reception processor 458, reception processor 456, controller / processor 459, memory 460, and data source 467.
[0708] As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467. Figure 4 As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467.
[0709] As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467. Figure 4 As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467.
[0710] As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467. Figure 4 As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467.
[0711] As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467. Figure 4 As one embodiment, the first transmitter 1102 includes at least one of the antenna 452, transmitter 454, multi-antenna transmitter processor 457, transmission processor 468, controller / processor 459, memory 460, and data source 467.
[0712] As an embodiment, the first transmitter 1102 comprises at least the first two of the antenna 452, the transmitter 454, the multi-antenna transmitter processor 457, the transmit processor 468, the controller / processor 459, the memory 460 and the data source 467 in the apparatus 400. Figure 4
[0713] In Embodiment 11, the first receiver 1101 receives first signaling; the first transmitter 1102 transmits a first signal in a first time-frequency resource pool, the first signal carrying a first bit block; wherein the first signaling is used to determine the first time-frequency resource pool; the first bit block comprises K HARQ-ACK information bits, K being a positive integer; the first bit block comprises at least one of a first type of HARQ-ACK or a second type of HARQ-ACK; a first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not satisfied, a same offset is used to determine both the number of time-frequency resource particles included in a first time-frequency resource sub-pool and the number of time-frequency resource particles included in a first reserved resource pool; when the first condition is satisfied, two different offsets are respectively used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, the first time-frequency resource sub-pool includes time-frequency resources in which modulation symbols generated by the first bit block are transmitted in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
[0714] As an embodiment, the first signal carries a second bit block, the second bit block comprising a transport block (TB).
[0715] As an embodiment, the first condition comprises that the first bit block comprises the second type of HARQ-ACK.
[0716] As an embodiment, when the first condition is satisfied: the two different offsets are respectively a first offset and a second offset; the first offset is used to determine the number of the time-frequency resource particles included in the first time-frequency resource sub-pool, and the second offset is used to determine the number of the time-frequency resource particles included in the first reserved resource pool.
[0717] As an embodiment, the first condition is satisfied; the second condition set includes N mutually exclusive conditions, the N being a positive integer greater than 1; the first compensation quantity set includes N mutually different compensation quantities, the second compensation quantity set includes at least one compensation quantity; for any positive integer j not greater than the N, when the jth condition in the second condition set is satisfied: the jth compensation quantity in the first compensation quantity set is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and a compensation quantity in the second compensation quantity set different from the jth compensation quantity in the first compensation quantity set is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0718] As an embodiment, the first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool overlaps with the first time-frequency resource pool in the time domain.
[0719] As an embodiment, the first type of HARQ-ACK corresponds to a first priority, and the second type of HARQ-ACK corresponds to a second priority.
[0720] As an embodiment, a first signal is transmitted in a first time-frequency resource pool, the first signal carrying a first bit block and a second bit block; the second bit block includes one transport block; first signaling is used to determine the first time-frequency resource pool; the first bit block includes K HARQ-ACK information bits, the K being a positive integer; the first bit block includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK, the first type of HARQ-ACK being a HARQ-ACK corresponding to a first priority index, and the second type of HARQ-ACK being a HARQ-ACK corresponding to a second priority index; when the first bit block does not include the second type of HARQ-ACK, a same compensation quantity is used to determine both the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first bit block includes the second type of HARQ-ACK, two different compensation quantities are respectively used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, the first time-frequency resource sub-pool including time-frequency resources occupied by transmission of modulation symbols generated by the first bit block in the first reserved resource pool; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource particles included in the first reserved resource pool.
[0721] As one subembodiment of the above embodiment, the K is equal to 1.
[0722] As one subembodiment of the above embodiment, the K is equal to 1 or 2.
[0723] As one subembodiment of the above embodiment, the first priority index is equal to one of 0 or 1, and the second priority index is equal to the other one of 0 or 1.
[0724] As one subembodiment of the above embodiment, the first time-frequency resource pool comprises time-frequency resources occupied by one PUSCH transmission.
[0725] As one subembodiment of the above embodiment, the first signaling comprises a second field; a value of the second field in the first signaling corresponds to a plurality of different compensation amounts related to a plurality of different compensation amount configurations.
[0726] Figure 4
[0727] Embodiment 12 illustrates a structural block diagram of a processing apparatus in a second node device, as shown in FIG. 12. Example 12 In FIG. 12, the processing apparatus 1200 of the second node device comprises a second transmitter 1201 and a second receiver 1202. Figure 12
[0728] As one embodiment, the second node device 1200 is a user equipment.
[0729] As one embodiment, the second node device 1200 is a base station.
[0730] As one embodiment, the second node device 1200 is a relay node.
[0731] As one embodiment, the second node device 1200 is a vehicle-mounted communication device.
[0732] As one embodiment, the second node device 1200 is a user equipment supporting V2X communication.
[0733] As one embodiment, the second transmitter 1201 comprises at least one of the antenna 420, the transmitter 418, the multi-antenna transmission processor 471, the transmission processor 416, the controller / processor 475 and the memory 476 in the apparatus 400 in the present application. Figure 12 As one embodiment, the second transmitter 1201 comprises at least the first five of the antenna 420, the transmitter 418, the multi-antenna transmission processor 471, the transmission processor 416, the controller / processor 475 and the memory 476 in the apparatus 400 in the present application.
[0734] Figure 4
[0735] As one embodiment, the second transmitter 1201 includes the appendix to this application. Figure 4 At least four of the following: antenna 420, transmitter 418, multi-antenna transmission processor 471, transmission processor 416, controller / processor 475, and memory 476.
[0736] As one embodiment, the second transmitter 1201 includes the appendix to this application. Figure 4 At least three of the following: antenna 420, transmitter 418, multi-antenna transmission processor 471, transmission processor 416, controller / processor 475, and memory 476.
[0737] As one embodiment, the second transmitter 1201 includes the appendix to this application. Figure 4 At least two of the following: antenna 420, transmitter 418, multi-antenna transmission processor 471, transmission processor 416, controller / processor 475, and memory 476.
[0738] As one embodiment, the second receiver 1202 includes the appendix to this application. Figure 4 The antenna 420, receiver 418, multi-antenna receiver processor 472, receiver processor 470, controller / processor 475, and memory 476 are at least one of them.
[0739] As one embodiment, the second receiver 1202 includes the appendix to this application. Figure 4 The antenna 420, receiver 418, multi-antenna receiver processor 472, receiver processor 470, controller / processor 475, and memory 476 are at least the first five of the following:
[0740] As one embodiment, the second receiver 1202 includes the appendix to this application. Figure 4 At least four of the following: antenna 420, receiver 418, multi-antenna receiver processor 472, receiver processor 470, controller / processor 475, and memory 476.
[0741] As one embodiment, the second receiver 1202 includes the appendix to this application. Figure 4 At least three of the following: antenna 420, receiver 418, multi-antenna receiver processor 472, receiver processor 470, controller / processor 475, and memory 476.
[0742] As one embodiment, the second receiver 1202 includes the appendix to this application. Figure 4 Figure 4 At least two of the following: antenna 420, receiver 418, multi-antenna receiver processor 472, receiver processor 470, controller / processor 475, and memory 476.
[0743] In embodiment 12, the second transmitter 1201 transmits first signaling; the second receiver 1202 receives a first signal in a first time-frequency resource pool, the first signal carrying a first bit block; wherein the first signaling is used to determine the first time-frequency resource pool; the first bit block includes K HARQ-ACK information bits, K is a positive integer; the first bit block includes at least one of the first type of HARQ-ACK or the second type of HARQ-ACK; the first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, the same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first reserved resource pool is reserved for transmitting HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources occupied by the first bit block generated modulation symbols transmitted in the first reserved resource pool; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of time-frequency resource particles included in the first reserved resource pool.
[0744] As an embodiment, the first signal carries a second bit block, and the second bit block includes a transport block (TB).
[0745] As an embodiment, the first condition includes that the first bit block includes the second type of HARQ-ACK.
[0746] As an embodiment, when the first condition is met: the two different offsets are a first offset and a second offset respectively; the first offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and the second offset is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0747] As an embodiment, the first condition is satisfied; the second condition set includes N mutually exclusive conditions, the N being a positive integer greater than 1; the first compensation amount set includes N mutually different compensation amounts, the second compensation amount set includes at least one compensation amount; for any positive integer j not greater than the N, when the jth condition in the second condition set is satisfied: the jth compensation amount in the first compensation amount set is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and a compensation amount in the second compensation amount set different from the jth compensation amount in the first compensation amount set is used to determine the number of time-frequency resource particles included in the first reserved resource pool.
[0748] As an embodiment, the first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool and the first time-frequency resource pool overlap in the time domain.
[0749] As an embodiment, the first type of HARQ-ACK corresponds to a first priority, and the second type of HARQ-ACK corresponds to a second priority.
[0750] A person of ordinary skill in the art can understand that all or part of the steps of the above method can be instructed by a program to complete relevant hardware, and the program can be stored in a computer readable storage medium, such as a read-only memory, a hard disk, or an optical disk. Optionally, all or part of the steps of the above embodiment can also be implemented using one or more integrated circuits. Correspondingly, each module unit in the above embodiment can be implemented in the form of hardware or in the form of a software function module, and the present application is not limited to any specific form of combination of software and hardware. The first node device in the present application includes but is not limited to a mobile phone, a tablet computer, a notebook computer, a network card, a low-power device, an eMTC device, an NB-IoT device, a vehicle-mounted communication device, a flying object, an airplane, a drone, a remote control airplane, and the like. The second node device in the present application includes but is not limited to a mobile phone, a tablet computer, a notebook computer, a network card, a low-power device, an eMTC device, an NB-IoT device, a vehicle-mounted communication device, a flying object, an airplane, a drone, a remote control airplane, and the like. The user equipment or UE or terminal in the present application includes but is not limited to a mobile phone, a tablet computer, a notebook computer, a network card, a low-power device, an eMTC device, an NB-IoT device, a vehicle-mounted communication device, a flying object, an airplane, a drone, a remote control airplane, and the like. The base station device or base station or network side device in the present application includes but is not limited to a macro cell base station, a micro cell base station, a home base station, a relay base station, an eNB, a gNB, a transmission reception point TRP, a GNSS, a relay satellite, a satellite base station, an air base station, and the like.
[0751] The above descriptions are only the preferred embodiment of the application, not intended to limit the protection scope of the application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the application shall be included in the protection scope of the application.
Claims
1. A first node device for wireless communication, the first node device comprising: Comprising: a first receiver, receiving a first signaling; a first transmitter, transmitting a first signal in a first time-frequency resource pool, the first signal carrying a first block of bits; wherein the first signaling is used to determine the first time-frequency resource pool, the first time-frequency resource pool including time-frequency resources occupied by a PUSCH; the first block of bits including K HARQ-ACK information bits, the K being equal to 1, or the K being equal to 2; the first block of bits including at least one of a first type of HARQ-ACK or a second type of HARQ-ACK and the first block of bits including only one of the first type of HARQ-ACK or the second type of HARQ-ACK, the second type of HARQ-ACK and the first type of HARQ-ACK respectively being HARQ-ACKs corresponding to different priority indexes; a first condition being a condition related to a type of HARQ-ACK included in the first block of bits; when the first condition is not satisfied, a same offset being used to determine a number of time-frequency resource elements included in a first time-frequency resource sub-pool and a number of time-frequency resource elements included in a first reserved resource pool; when the first condition is satisfied, two different offsets being used to determine the number of time-frequency resource elements included in the first time-frequency resource sub-pool and the number of time-frequency resource elements included in the first reserved resource pool, respectively; the first condition including: the first block of bits including the second type of HARQ-ACK; the expression that the first condition is not satisfied including: the first block of bits not including the second type of HARQ-ACK; the expression that the first condition is satisfied including: the first block of bits including the second type of HARQ-ACK; the first reserved resource pool being reserved for transmission of HARQ-ACK information bits, the first time-frequency resource sub-pool including time-frequency resources occupied by transmission of modulation symbols generated by the first block of bits in the first reserved resource pool; the number of the time-frequency resource elements included in the first time-frequency resource sub-pool being not greater than the number of the time-frequency resource elements included in the first reserved resource pool.
2. The first node device of claim 1, wherein, The first signaling is a DCI format 0_1, Or, characterized in that, the first signaling is a DCI format 0_2.
3. The first node device of claim 1 or 2, wherein, The first reserved resource pool is reserved for possible HARQ-ACK transmission.
4. The first node device of claim 1, wherein, The first signal carries a second block of bits, the second block of bits including a transport block (TB).
5. The first node device of claim 1, wherein, The first signal carries a CSI part 1; modulation symbols generated by the CSI part 1 are mapped to time-frequency resources in the first time-frequency resource pool other than the first reserved resource pool.
6. The first node device of claim 1, wherein, The second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0; Or, characterized in that the second type of HARQ-ACK includes the HARQ-ACK corresponding to the priority index 0, and the first type of HARQ-ACK includes the HARQ-ACK corresponding to the priority index 1.
7. The first node device of claim 1, wherein, One of the compensation amounts is a beta-offset value.
8. The first node device of claim 1, wherein, The first condition is not met; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a first intermediate quantity and the results of upward rounding of a second intermediate quantity; The first intermediate quantity is linearly related to the same compensation amount, and the second intermediate quantity is equal to a first parameter multiplied by a second resource quantity, the second resource quantity being equal to the number of time-frequency resource particles on one or more multi-carrier symbols that can be used for UCI transmission, and the first parameter being configured by a higher layer parameter scaling.
9. The first node device of claim 1, wherein, The first condition is met; one of two different compensation amounts is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool, and the other of the two different compensation amounts is used to determine the number of time-frequency resource particles included in the first reserved resource pool; the number of time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a fifth intermediate quantity and the results of upward rounding of a sixth intermediate quantity, the fifth intermediate quantity being linearly related to the one of the two different compensation amounts; the number of time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a seventh intermediate quantity and the results of upward rounding of an eighth intermediate quantity, the seventh intermediate quantity being linearly related to the other of the two different compensation amounts; the sixth intermediate quantity is equal to a sixth parameter multiplied by a sixth resource quantity, the sixth resource quantity being equal to the number of time-frequency resource particles on one or more multi-carrier symbols that can be used for UCI transmission, and the sixth parameter being configured by a higher layer parameter scaling; the eighth intermediate quantity is linearly related to an eighth parameter, and the eighth parameter being configured by a higher layer parameter scaling.
10. The first node device of claim 1, wherein, A first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool has an overlap with the first time-frequency resource pool in the time domain.
11. A second node device configured for wireless communication, the second node device comprising: Comprise: A second transmitter that transmits first signaling; A second receiver that receives a first signal in a first time-frequency resource pool, the first signal carrying a first bit block; The first signaling is used to determine the first time-frequency resource pool, the first time-frequency resource pool includes time-frequency resources occupied by a PUSCH; the first bit block includes K HARQ-ACK information bits, the K is equal to 1, or the K is equal to 2; the first bit block includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK, and the first bit block includes only one of the first type of HARQ-ACK or the second type of HARQ-ACK, the second type of HARQ-ACK and the first type of HARQ-ACK are respectively HARQ-ACKs corresponding to different priority indexes; a first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, a same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first condition includes that the first bit block includes the second type of HARQ-ACK; the meaning of the expression that the first condition is not met includes that the first bit block does not include the second type of HARQ-ACK; the meaning of the expression that the first condition is met includes that the first bit block includes the second type of HARQ-ACK; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources occupied by transmission of modulation symbols generated by the first bit block in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
12. The second node device of claim 11, wherein, The first signaling is DCI format 0_1, Or, characterized in that, the first signaling is DCI format 0_2.
13. The second node device of claim 11 or 12, wherein, The first reserved resource pool is reserved for possible HARQ-ACK transmission.
14. The second node device of claim 11, wherein, The first signal carries a second bit block, and the second bit block includes one transport block (TB).
15. The second node device of claim 11, wherein, The first signal carries CSI part 1; modulation symbols generated by the CSI part 1 are mapped to time-frequency resources outside the first reserved resource pool in the first time-frequency resource pool.
16. The second node device of claim 11, wherein, The second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0; Or, characterized in that, the second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1.
17. The second node device of claim 11, wherein, One of the compensation amounts is a beta-offset value.
18. The second node device of claim 11, wherein, The first condition is not satisfied; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a first intermediate amount and a second intermediate amount; The first intermediate amount is linearly related to the same compensation amount, and the second intermediate amount is equal to a first parameter multiplied by a second resource amount, the second resource amount being equal to the number of time-frequency resource particles available for UCI transmission on one or more multi-carrier symbols, and the first parameter being configured by a higher layer parameter scaling.
19. The second node device of claim 11, wherein, The first condition is satisfied; one of two different compensation amounts is used to determine the number of the time-frequency resource particles included in the first time-frequency resource sub-pool, and the other of the two different compensation amounts is used to determine the number of the time-frequency resource particles included in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a fifth intermediate amount and a sixth intermediate amount, the fifth intermediate amount being linearly related to the one of the two different compensation amounts; the number of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a seventh intermediate amount and an eighth intermediate amount, the seventh intermediate amount being linearly related to the other of the two different compensation amounts; the sixth intermediate amount is equal to a sixth parameter multiplied by a sixth resource amount, the sixth resource amount being equal to the number of time-frequency resource particles available for UCI transmission on one or more multi-carrier symbols, and the sixth parameter being configured by a higher layer parameter scaling; and the eighth intermediate amount is linearly related to an eighth parameter, the eighth parameter being configured by a higher layer parameter scaling.
20. The second node device of claim 11, wherein, A first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool has an overlap with the first time-frequency resource pool in the time domain.
21. A method in a first node used for wireless communication, characterized by, Comprising: Receiving first signaling; Transmitting a first signal in a first time-frequency resource pool, the first signal carrying a first bit block; The first signaling is used to determine the first time-frequency resource pool, the first time-frequency resource pool includes time-frequency resources occupied by a PUSCH; the first bit block includes K HARQ-ACK information bits, the K is equal to 1, or the K is equal to 2; the first bit block includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK, and the first bit block includes only one of the first type of HARQ-ACK or the second type of HARQ-ACK, the second type of HARQ-ACK and the first type of HARQ-ACK are respectively HARQ-ACKs corresponding to different priority indexes; a first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, a same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first condition includes that the first bit block includes the second type of HARQ-ACK; the meaning of the expression that the first condition is not met includes that the first bit block does not include the second type of HARQ-ACK; the meaning of the expression that the first condition is met includes that the first bit block includes the second type of HARQ-ACK; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources occupied by transmission of modulation symbols generated by the first bit block in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
22. A method in a first node according to claim 21, characterised by, The first signaling is DCI format 0_1, Or, characterized in that, the first signaling is DCI format 0_2.
23. A method in a first node according to claim 21 or 22, characterized by, The first reserved resource pool is reserved for possible HARQ-ACK transmission.
24. A method in a first node according to claim 21, characterised by, The first signal carries a second bit block, and the second bit block includes one transport block (TB).
25. A method in a first node according to claim 21, characterised by, The first signal carries CSI part 1; modulation symbols generated by the CSI part 1 are mapped to time-frequency resources outside the first reserved resource pool in the first time-frequency resource pool.
26. A method in a first node according to claim 21, characterised by, The second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0; Or, characterized in that, the second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1.
27. A method in a first node according to claim 21, characterised by, One of the compensation amounts is a beta-offset value.
28. A method in a first node according to claim 21, characterised by, The first condition is not satisfied; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a first intermediate amount and a second intermediate amount; The first intermediate amount is linearly related to the same compensation amount, and the second intermediate amount is equal to a first parameter multiplied by a second resource amount, the second resource amount being equal to the number of time-frequency resource particles available for UCI transmission on one or more multi-carrier symbols, and the first parameter being configured by a higher layer parameter scaling.
29. A method in a first node according to claim 21, characterised by, The first condition is satisfied; one of two different compensation amounts is used to determine the number of the time-frequency resource particles included in the first time-frequency resource sub-pool, and the other of the two different compensation amounts is used to determine the number of the time-frequency resource particles included in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a fifth intermediate amount and a sixth intermediate amount, the fifth intermediate amount being linearly related to the one of the two different compensation amounts; the number of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a seventh intermediate amount and an eighth intermediate amount, the seventh intermediate amount being linearly related to the other of the two different compensation amounts; the sixth intermediate amount is equal to a sixth parameter multiplied by a sixth resource amount, the sixth resource amount being equal to the number of time-frequency resource particles available for UCI transmission on one or more multi-carrier symbols, and the sixth parameter being configured by a higher layer parameter scaling; and the eighth intermediate amount is linearly related to an eighth parameter, the eighth parameter being configured by a higher layer parameter scaling.
30. A method in a first node according to claim 21, characterised by, A first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool has an overlap with the first time-frequency resource pool in the time domain.
31. A method in a second node used for wireless communication, characterized by, Comprise: Transmitting first signaling; Receiving a first signal in a first time-frequency resource pool, the first signal carrying a first bit block; The first signaling is used to determine the first time-frequency resource pool, the first time-frequency resource pool includes time-frequency resources occupied by a PUSCH; the first bit block includes K HARQ-ACK information bits, the K is equal to 1, or the K is equal to 2; the first bit block includes at least one of a first type of HARQ-ACK or a second type of HARQ-ACK, and the first bit block includes only one of the first type of HARQ-ACK or the second type of HARQ-ACK, the second type of HARQ-ACK and the first type of HARQ-ACK are respectively HARQ-ACKs corresponding to different priority indexes; a first condition is a condition related to the type of HARQ-ACK included in the first bit block; when the first condition is not met, a same offset is used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; when the first condition is met, two different offsets are used to determine the number of time-frequency resource particles included in the first time-frequency resource sub-pool and the number of time-frequency resource particles included in the first reserved resource pool; the first condition includes that the first bit block includes the second type of HARQ-ACK; the meaning of the expression that the first condition is not met includes that the first bit block does not include the second type of HARQ-ACK; the meaning of the expression that the first condition is met includes that the first bit block includes the second type of HARQ-ACK; the first reserved resource pool is reserved for transmission of HARQ-ACK information bits, and the first time-frequency resource sub-pool includes time-frequency resources occupied by transmission of modulation symbols generated by the first bit block in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is not greater than the number of the time-frequency resource particles included in the first reserved resource pool.
32. A method in a second node according to claim 31, characterised by, The first signaling is DCI format 0_1, Or, characterized in that, the first signaling is DCI format 0_2.
33. A method in a second node according to claim 31 or 32, characterized by, The first reserved resource pool is reserved for possible HARQ-ACK transmission.
34. A method in a second node according to claim 31, characterised by, The first signal carries a second bit block, and the second bit block includes one transport block (TB).
35. A method in a second node according to claim 31, characterised by, The first signal carries CSI part 1; modulation symbols generated by the CSI part 1 are mapped to time-frequency resources outside the first reserved resource pool in the first time-frequency resource pool.
36. A method in a second node according to claim 31, characterised by, The second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0; Or, characterized in that, the second type of HARQ-ACK includes HARQ-ACK corresponding to priority index 0, and the first type of HARQ-ACK includes HARQ-ACK corresponding to priority index 1.
37. A method in a second node according to claim 31, characterised by, One of the compensation amounts is a beta-offset value.
38. A method in a second node according to claim 31, characterised by, The first condition is not satisfied; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a first intermediate amount and a second intermediate amount; The first intermediate amount is linearly related to the same compensation amount, and the second intermediate amount is equal to a first parameter multiplied by a second resource amount, the second resource amount being equal to the number of time-frequency resource particles on one or more multi-carrier symbols that can be used for UCI transmission, and the first parameter being configured by a higher layer parameter scaling.
39. A method in a second node according to claim 31, characterised by, The first condition is satisfied; one of two different compensation amounts is used to determine the number of the time-frequency resource particles included in the first time-frequency resource sub-pool, and the other of the two different compensation amounts is used to determine the number of the time-frequency resource particles included in the first reserved resource pool; the number of the time-frequency resource particles included in the first time-frequency resource sub-pool is equal to the minimum of the results of upward rounding of a fifth intermediate amount and a sixth intermediate amount, the fifth intermediate amount being linearly related to the one of the two different compensation amounts; the number of the time-frequency resource particles included in the first reserved resource pool is equal to the minimum of the results of upward rounding of a seventh intermediate amount and an eighth intermediate amount, the seventh intermediate amount being linearly related to the other of the two different compensation amounts; the sixth intermediate amount is equal to a sixth parameter multiplied by a sixth resource amount, the sixth resource amount being equal to the number of time-frequency resource particles on one or more multi-carrier symbols that can be used for UCI transmission, and the sixth parameter being configured by a higher layer parameter scaling; and the eighth intermediate amount is linearly related to an eighth parameter, the eighth parameter being configured by a higher layer parameter scaling.
40. A method in a second node according to claim 31, characterised by, A first air interface resource pool is reserved for at least one bit sub-block included in the first bit block; the first air interface resource pool has an overlap with the first time-frequency resource pool in the time domain.
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