Uplink control information transmission method and related apparatus
By mapping UCI onto the TBoMS PUSCH, the problem of ambiguous UCI transmission protocol in PUSCH multi-slot transmission is solved, improving system performance and resource utilization efficiency, especially in scheduling efficiency for high reliability, low latency and enhanced mobile bandwidth services.
Patent Information
- Application Number
- CN202110369903.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-04-06
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2041-05-04
AI Technical Summary
In the existing technology, when the Physical Uplink Shared Channel (PUSCH) is transmitted in multiple time slots, the mapping transmission protocol of the Uplink Control Information (UCI) is not yet clear, which limits the system performance.
The method of transmitting UCI across multiple time slot blocks TBoMS PUSCH is adopted to map UCI onto TBoMS PUSCH for transmission, including specific mapping rules for HARQ-ACK, CSI1 and CSI2, to ensure that UCI is effectively multiplexed on TBoMS PUSCH.
It enables UCI transmission on TBoMB PUSCH, improving system performance, especially resource utilization and scheduling efficiency in high reliability, low latency and enhanced mobile bandwidth service scenarios.
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Figure CN115190621B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of wireless communication technology, specifically to an uplink control information transmission method and related apparatus. Background Technology
[0002] Currently, when the Physical Uplink Shared Channel (PUSCH) is transmitted using multiple time slots, the protocol for mapping Uplink Control Information (UCI) to the TBoMS PUSCH that transmits across multiple time slots has not yet been agreed upon. Summary of the Invention
[0003] This application proposes an uplink control information transmission method and related apparatus, aiming to achieve UCI transmission on TBoMB PUSCH by using TBoMSPUSCH, thereby providing uplink control information to assist downlink scheduling and improve system performance.
[0004] In a first aspect, embodiments of this application provide an uplink control information transmission method, including:
[0005] The terminal uses the first time slot of the TBoMS Physical Uplink Shared Channel (PUSCH) across multiple time slot transmission blocks to send uplink control information (UCI).
[0006] As can be seen in this example, the terminal can use the first time slot of TBoMS PUSCH to send UCI, thus mapping UCI to TBoMS PUSCH for transmission. This helps to transmit UCI on TBoMB PUSCH, providing uplink control information to assist downlink scheduling and improve system performance.
[0007] Secondly, embodiments of this application provide an uplink control information transmission method, including:
[0008] Network devices use the first time slot of TBoMS PUSCH to receive UCI.
[0009] Thirdly, embodiments of this application provide an uplink control information transmission device, comprising:
[0010] The transmitting unit is used to transmit UCI using the first time slot of TBoMS PUSCH.
[0011] Fourthly, embodiments of this application provide an uplink control information transmission device, comprising:
[0012] The receiving unit is used to receive UCI using the first time slot of TBoMS PUSCH.
[0013] Fifthly, embodiments of this application provide a terminal, a processor, a memory, and one or more programs, the one or more programs being stored in the memory and configured to be executed by the processor, the programs including instructions for performing the steps of the method as described in the first aspect.
[0014] In a sixth aspect, embodiments of this application provide a network device, a processor, a memory, and one or more programs stored in the memory and configured to be executed by the processor, the programs including instructions for performing the steps of the method as described in the second aspect.
[0015] In a seventh aspect, embodiments of this application provide a computer-readable storage medium storing a computer program for electronic data interchange, wherein the computer program causes a computer to execute instructions for the steps of the method described in the first or second aspect.
[0016] Eighthly, embodiments of this application provide a chip for multiplexing the first time slot output UCI of TBoMS PUSCH.
[0017] Ninthly, embodiments of this application provide a chip module, including a transceiver component and a chip, wherein the chip is used to transmit UCI using a first time slot of TBoMS PUSCH through the transceiver component.
[0018] In a tenth aspect, embodiments of this application provide a chip for acquiring UCI by multiplexing the first time slot of TBoMS PUSCH.
[0019] Eleventhly, embodiments of this application provide a chip module, including a transceiver component and a chip, wherein the chip is used to receive UCI using a first time slot of TBoMS PUSCH through the transceiver component. Attached Figure Description
[0020] Figure 1a This is an architecture diagram of a mobile communication system 10 provided in an embodiment of this application;
[0021] Figure 1b This is a schematic diagram of the structure of a terminal 100 provided in an embodiment of this application;
[0022] Figure 2a This is a flowchart illustrating an uplink control information transmission method provided in an embodiment of this application;
[0023] Figure 2b This is a schematic diagram of UCI multiplexing on TBoMS PUSCH provided in an embodiment of this application;
[0024] Figure 2c This is a schematic diagram of another UCI multiplexing on TBoMS PUSCH provided in the embodiments of this application;
[0025] Figure 2d This is a schematic diagram of another UCI multiplexing on TBoMS PUSCH provided in the embodiments of this application;
[0026] Figure 2e This is a schematic diagram of another UCI multiplexing on TBoMS PUSCH provided in the embodiments of this application;
[0027] Figure 2f This is a schematic diagram of another UCI multiplexing on TBoMS PUSCH provided in the embodiments of this application;
[0028] Figure 2g This is a schematic diagram of another UCI multiplexing on TBoMS PUSCH provided in the embodiments of this application;
[0029] Figure 2h This is a schematic diagram of another UCI multiplexing on TBoMS PUSCH provided in the embodiments of this application;
[0030] Figure 2i This is a schematic diagram of another UCI multiplexing on TBoMS PUSCH provided in the embodiments of this application;
[0031] Figure 3 This is a functional unit block diagram of an uplink control information transmission device 3 provided in an embodiment of this application;
[0032] Figure 4 This is a functional unit block diagram of another uplink control information transmission device 4 provided in the embodiments of this application;
[0033] Figure 5 This is a functional unit block diagram of an uplink control information transmission device 5 provided in an embodiment of this application;
[0034] Figure 6 This is a functional unit block diagram of another uplink control information transmission device 6 provided in the embodiments of this application. Detailed Implementation
[0035] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present application.
[0036] The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses.
[0037] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0038] This application provides an uplink control information transmission method and related apparatus. The embodiments of this application will be described in detail below with reference to the accompanying drawings.
[0039] Please see Figure 1a , Figure 1a This is an architectural diagram of a mobile communication system 10 provided in an embodiment of this application. The mobile communication system 10 can be a Long Term Evolution (LTE) system, or a next-generation evolution system based on LTE, such as LTE-A (LTE-Advanced) or a 5th Generation (5G) system (also known as an NR system), or a next-generation evolution system based on 5G, etc. In the embodiments of this application, the terms "system" and "network" are often used interchangeably, but their meanings will be understood by those skilled in the art.
[0040] The mobile communication system 10 includes a user-side terminal 100 and a network-side network device 200, wherein the terminal 100 and the network device 200 are communicatively connected.
[0041] The network device 200 can be a 5G base station, a 5G access point (AP), etc., and is not limited to any one of these. Base stations can include different types such as macro base stations, micro base stations, relay stations, and access points. In some embodiments, a base station can be referred to by those skilled in the art as a base transceiver, wireless base station, access point, wireless transceiver, Basic Service Set (BSS), Extended Service Set (ESS), Node B, evolved Node B (eNB or eNodeB), or other suitable terms. For example, in a 5G system, a base station is referred to as a gNB.
[0042] Terminal 100 can be distributed throughout the mobile communication system, and each terminal 100 can be stationary or mobile. Terminal 100 may also be referred to by those skilled in the art as a mobile station, user station, mobile unit, user unit, radio unit, remote unit, mobile device, user equipment, radio equipment, wireless communication equipment, remote equipment, mobile user station, access terminal, mobile terminal, wireless terminal, remote terminal, handheld device, user agent, mobile client, client, or some other suitable terminology. Terminal 100 can be a cellular phone, personal digital assistant (PDA), wireless modem, wireless communication equipment, handheld device, tablet computer, laptop computer, cordless phone, wireless local loop (WLL) station, etc. Terminal 100 is capable of communicating with access network equipment in the mobile communication system.
[0043] The communication systems and service scenarios described in this disclosure are intended to more clearly illustrate the technical solutions of this disclosure and do not constitute a limitation on the technical solutions provided in this disclosure. As those skilled in the art will know, with the evolution of communication systems and the emergence of new service scenarios, the technical solutions provided in this disclosure are also applicable to similar technical problems.
[0044] like Figure 1b The schematic diagram of the terminal 100 shown in this application embodiment indicates that the terminal 100 includes a processor 210, a memory 220, a communication interface 230, and one or more programs 221. The one or more programs 221 are stored in the memory 220 and configured to be executed by the processor 210. The programs 221 include methods for performing as described in the method embodiments of this application.
[0045] Currently, within each hop of the PUSCH, the Hybrid Automatic Repeat Request-Acknowledgement (HARQ-ACK) message is mapped starting from the first symbol after the Demodulation Reference Signal (DMRS) symbol. Channel State Information (CSI1) is mapped starting from the first non-DMRS symbol of the PUSCH, and is not mapped to the Reserved Resource Element (RE) position for HARQ-ACK, or the HARQ-ACK Resource Element RE mapping position, and is not frequency-division multiplexed with the PUSCH DMRS. CSI2 is mapped starting from the first non-DMRS symbol of the PUSCH, and can be mapped to the Reserved Resource Element (RE) position for HARQ-ACK, but is not mapped to the HARQ-ACK Resource Element RE mapping position, nor to the CSI1 Resource Element RE mapping position, and is not frequency-division multiplexed with the PUSCH DMRS.
[0046] The resource unit (RE) positions occupied by HARQ-ACK, CSI1, and CSI2 on each symbol are as follows: The resource unit (RE) for the reporting information mapping adopts distributed mapping, and the interval d is:
[0047] (1) If the number of unmapped reporting information symbols after scheduling is greater than the number of available resource units (REs) on an Orthogonal Frequency Division Multiplexing (OFDM) symbol, then d = 1. If there are still unmapped reporting information, then continue mapping in the next OFDM symbol.
[0048] (2) If the number of unmapped reporting information symbols after scheduling is less than the number of available resource units (REs) on the OFDM symbol, then d = floor(number of available resource units (REs) on the OFDM symbol ÷ number of reporting information symbols after scheduling).
[0049] In 5G communication services, to improve resource utilization efficiency, user terminals with different data transmission durations can reuse the same time-frequency physical resources. For example, Ultra Reliable & Low Latency Communication (URLLC) user terminals have shorter transmission durations and are classified as short-duration user terminals; enhanced Mobile Broadband (eMBB) user terminals have longer transmission durations and are classified as long-duration user terminals. To ensure the above-mentioned high-reliability and low-latency services, Rel-16 NR introduces uplink channels including PUCCH UCI and PUSCH configured as high-priority (HP) and low-priority (LP) channels. When the HP uplink channel overlaps with the LP uplink channel in time, the low-priority uplink channel LP UL channel needs to be discarded, and only the HP UL channel needs to be transmitted. The steps for triggering aperiodic CSI (A-CSI) using uplink downlink control information (UL DCI) in the aforementioned New Radio (NR) system are as follows:
[0050] Step 1: Configure a new aperiodic A-CSI trigger state table in the higher-layer signaling Radio Resource Control (RRC), containing M aperiodic A-CSI trigger states, where M is a positive integer. One aperiodic A-CSI trigger state contains N... Rep Each A-CSI reports relevant configuration information, and the time slot interval reported by the j-th non-periodic A-CSI is Y. j The higher-level signaling RRC will configure the number of bits N in the A-CSI request field included in the DCI. If 2^N-1 is greater than or equal to M, proceed to step two; otherwise, proceed to step three.
[0051] Step 2: The Medium Access Control-Control-ControlElement (MAC-CE) can select several aperiodic A-CSI trigger states from the aperiodic A-CSI trigger state table.
[0052] Step 3: The DCI contains a Channel State Information Request (CSI) field, indicating the triggering of an aperiodic A-CSI trigger state.
[0053] Step 4: After receiving the DCI, the User Equipment (UE) measures the CSI and reports the relevant reference signal configuration.
[0054] If this DCI only triggers aperiodic A-CSI reporting, then the time slot for using PUSCH feedback for aperiodic A-CSI is... Where Y j j = 0, ..., N Rep -1; m = 0 - M.
[0055] If this DCI triggers aperiodic A-CSI reporting and PUSCH scheduling, then aperiodic A-CSI will be reported on the PUSCH resource indicated by the UL DCI.
[0056] Currently, to facilitate uplink enhanced coverage by base stations, the PUSCH of a single Transport Block (TB) is transmitted across multiple time slots. Therefore, this invention provides a method for UCI multiplexing to TBoMS PUSCH.
[0057] The following is a detailed explanation with reference to the accompanying drawings.
[0058] Please see Figure 2a , Figure 2a This is a flowchart illustrating the uplink control information transmission method provided in an embodiment of this application, which is applied to, for example... Figure 1a The mobile communication system 10 shown includes the following steps: Terminal 100 and network device 200.
[0059] Step 201: The terminal uses the first time slot of the TBoMS Physical Uplink Shared Channel (PUSCH) that spans multiple time slot transmission blocks to send uplink control information (UCI).
[0060] The TBoMS PUSCH refers to a PUSCH that occupies at least two consecutive time slots.
[0061] The first time slot should be understood as the first time slot on TBoMS PUSCH to start mapping UCI. The time slots after the first time slot of TBoMS PUSCH can also be multiplexed to map UCI for UCI transmission. If TBoMS PUSCH and PUCCH include two overlapping time slots, the first overlapping time slot can be the first time slot of the two overlapping time slots, and the second time slot of the two overlapping time slots will also map the UCI of the corresponding time slot to achieve multiplexed transmission.
[0062] Step 202: The network device receives the UCI using the first time slot of the TBoMS PUSCH.
[0063] In one possible example, the UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI 1), and CSI 2.
[0064] In this possible example, some or all of the time slots in the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH.
[0065] In this possible example, the first time slot is the first time slot of the TBoMS PUSCH.
[0066] In this possible example, the TBoMS PUSCH has no frequency hopping;
[0067] If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot actually transmitted by the TBoMS PUSCH.
[0068] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot actually transmitted by the TBoMS PUSCH.
[0069] The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0070] The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0071] For example, such as Figure 2bAs shown, assuming that PUCCH (illustrated as HARQ-ACK+CSI1+CSI2) and TBoMS PUSCH's first slot, i.e., slot n, partially overlap, and TBoMS PUSCH spans slot n and slot n+1, with the preceding DMRS of slot n at symbol 2 and the non-preceding DMRS at symbol 6, and the same applies to slot n+1, then according to the mapping requirements of HARQ-ACK, CSI1, and CSI2, it can be determined that CSI1 can be mapped starting from symbol 0 of slot n, CSI2 can be mapped starting from symbol 1 of slot n, and HARQ-ACK can be mapped starting from the first symbol after the preceding DMRS at symbol 2, i.e., symbol 3.
[0072] For example, such as Figure 2c As shown, assuming that PUCCH (illustrated as HARQ-ACK+CSI1+CSI2) and the second time slot of TBoMSPUSCH, i.e., slot n+1, partially overlap, and TBoMS PUSCH spans slot n and slot n+1, with the preceding DMRS of slot n at symbol 2 and the non-preceding DMRS at symbol 6, and the same applies to slot n+1, then according to the mapping requirements of HARQ-ACK, CSI1, and CSI2, it can be determined that CSI1 can be mapped starting from symbol 0 of slot n, CSI2 can be mapped starting from symbol 1 of slot n, and HARQ-ACK can be mapped starting from the first symbol after the preceding DMRS at symbol 2, i.e., symbol 3.
[0073] For example, such as Figure 2d As shown, assuming that each slot of the PUCCH (shown as HARQ-ACK1, HARQ-ACK2, HARQ-ACK3) partially overlaps with each slot of the TBoMS PUSCH, the TBoMS PUSCH spans slots n and n+1, and the preceding DMRS for each slot is at symbol 2, while the non-preceding DMRS is at symbol 6. The situation is the same for slot n+1. HARQ-ACK1 is of high priority, and the information carried by the low-priority PUSCH at the corresponding resource unit RE position will be discarded (the UL-SCH data carried by slot n of the TBoMS PUSCH shown in the diagram is discarded). According to the mapping requirements of HARQ-ACK, it can be determined that HARQ-ACK2 starts mapping from the first symbol after the preceding DMRS of slot n+1, i.e., symbol 3. The repetition of HARQ-ACK2 starts from slot n+1. Mapping begins at position 3, the first symbol after the preceding DMRS of slot n+2. HARQ-ACK3 starts mapping from position 3, the first symbol after the preceding DMRS of slot n+3.
[0074] As can be seen in this example, for the case where TBoMS PUSCH has no frequency hopping and overlaps with PUCCH in time slots, the system can map the corresponding UCI starting from the first time slot of TBoMS PUSCH, so that UCI can still be reused on TBoMS PUSCH.
[0075] In one possible example, the TBoMS PUSCH has frequency hopping;
[0076] If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH.
[0077] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH.
[0078] The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop and the first time slot of the second hop of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not used for DMRS frequency division multiplexing of the TBoMS PUSCH.
[0079] The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop. It can be mapped to the resource cell position reserved for the HARQ-ACK, but not to the resource cell mapping position of the HARQ-ACK, not to the resource cell mapping position of the CSI1, and not to the DMRS frequency division multiplexing of the TBoMS PUSCH.
[0080] The frequency hopping can be performed when hopping frequency in each time slot, or according to the transmission length, with the first half transmitted in one frequency domain position and the second half transmitted in another frequency domain position.
[0081] For example, such as Figure 2e As shown, assuming that the first hop (slot n) and the second hop (slot n+1) of the PUCCH (shown as HARQ-ACK+CSI1) partially overlap with those of the TBoMS PUSCH, and that the TBoMS PUSCH spans slots n and n+1, with the preceding DMRS in slot n at symbol 2 and the non-preceding DMRS at symbol 6, and the same applies to slot n+1, then according to the mapping requirements of HARQ-ACK and CSI1, it can be determined that CSI1 can start mapping from symbol 0 of slot n and slot n+1, and HARQ-ACK can start mapping from the first symbol after the preceding DMRS at symbol 2 of slot n and slot n+1, i.e., symbol 3.
[0082] As can be seen in this example, when the TBoMS PUSCH has frequency hopping and overlaps with the PUCCH in time slots, the system can map the corresponding UCI starting from the first time slot of the TBoMS PUSCH, so that the UCI can still be reused on the TBoMS PUSCH.
[0083] In one possible example, the first time slot is the time slot where the TBoMS PUSCH overlaps with the Physical Uplink Control Channel PUCCH.
[0084] If the time slot where TBoMS PUSCH and PUCCH overlap includes multiple time slots, then each time slot is mapped.
[0085] In one possible example, if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol in each overlapping slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol in each overlapping slot actually transmitted by the TBoMS PUSCH.
[0086] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH.
[0087] The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping time slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not used in DMRS frequency division multiplexing of the TBoMS PUSCH.
[0088] The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0089] For example, such as Figure 2f As shown, assuming that PUCCH (illustrated as HARQ-ACK+CSI1) partially overlaps with the first slot (slot n) of TBoMS PUSCH, and TBoMS PUSCH spans slots n and n+1, with the preceding DMRS in slot n at symbol 2 and the non-preceding DMRS at symbol 6, and the same applies to slot n+1, then according to the mapping requirements of HARQ-ACK and CSI1, it can be determined that CSI1 can be mapped starting from symbol 0 of the overlapping slot n, and HARQ-ACK can be mapped starting from the first symbol after the preceding DMRS at symbol 2 of the overlapping slot n, i.e., symbol 3.
[0090] For example, such as Figure 2gAs shown, assuming that the PUCCH (illustrated as HARQ-ACK+CSI1) and the second slot of the TBoMS PUSCH (illustrated as slot n+1) partially overlap, the TBoMS PUSCH spans slots n and n+1, and the preceding DMRS of slot n is at symbol 2, while the non-preceding DMRS is at symbol 6. The situation is the same for slot n+1. According to the mapping requirements of HARQ-ACK and CSI1, it can be determined that CSI1 can be mapped from symbol 0 of the overlapping slot n+1, and HARQ-ACK can be mapped from the first symbol after the preceding DMRS at symbol 2 of the overlapping slot n+1, i.e., symbol 3.
[0091] For example, such as Figure 2h As shown, assuming that the PUCCH (illustrated as HARQ-ACK+CSI1) and the second hop of the TBoMS PUSCH (illustrated as slot n+1) partially overlap, the TBoMS PUSCH spans slots n and n+1, and the preceding DMRS for slot n is at symbol 2, while the non-preceding DMRS is at symbol 6. The situation is the same for slot n+1. According to the mapping requirements of HARQ-ACK and CSI1, it can be determined that CSI1 can start mapping from symbol 0 of the second hop, i.e., the overlapping slot n+1. HARQ-ACK can start mapping from the first symbol after the preceding DMRS at symbol 2 of the second hop, i.e., symbol 3.
[0092] As can be seen in this example, when there are overlapping time slots between TBoMS PUSCH and PUCCH, the system can map the corresponding UCI from each overlapping time slot of TBoMS PUSCH, so that the UCI can still be reused on TBoMS PUSCH.
[0093] In one possible example, if the transmission time slot of the TBoMS PUSCH overlaps with that of the terminal's PUCCH in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses rate matching to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
[0094] If the time slot where the TBoMS PUSCH and the terminal's PUCCH overlap is not in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses a puncturing method to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
[0095] In the UCI multiplexing process, rate matching is used to occupy the RE resources corresponding to the PUSCH. Specifically, when calculating the available RE resources for the PUSCH, the RE occupied by UCI multiplexing is removed first, and then rate matching of the UL-SCH is performed.
[0096] In this process, UCI multiplexing uses a puncturing method to occupy corresponding RE resources. This puncturing is not part of existing UCI multiplexing; that is, when calculating available RE resources for PUSCH, it is not necessary to remove the REs occupied by UCI multiplexing outside the first time slot. Instead, UL-SCH rate matching is performed directly, and UL-SCH is performed first. At the corresponding RE position, the UCI-encoded information directly overwrites the original UL-SCH-encoded information.
[0097] Furthermore, when calculating the number of REs, the device only counts the number of symbols allocated within that time slot, not the total number of symbols.
[0098] As can be seen from this example, the device can flexibly choose the appropriate reuse method, which is flexible and convenient.
[0099] In one possible example, the UCI includes aperiodic channel state information (A-CSI).
[0100] In one possible example, the first time slot is the Nth time slot of the TBoMS PUSCH as agreed in the protocol, where N is a predefined positive integer.
[0101] The preset quantity can be 1, 2, etc., and is not limited to one.
[0102] As can be seen in this example, the system supports the method agreed upon in the protocol to determine which slot of the TBoMS PUSCH the A-CSI should be placed in.
[0103] In one possible example, the first time slot is the time slot determined by the terminal based on the bias reported by the A-CSI.
[0104] For example, the reporting bias configured in the A-CSI report triggered by DCI. If this DCI triggers aperiodic A-CSI reporting (regardless of whether it includes UL-SCH), the aperiodic A-CSI will be mapped to the time slot using TBoMS PUSCH feedback for aperiodic A-CSI. Where Y j j = 0, ..., N Rep -1, and ensure that k2 is included in TBoMS PUSCH.
[0105] The new configuration of the high-level signaling RRC includes an aperiodic A-CSI trigger status table, containing M aperiodic CSI trigger statuses. Each aperiodic CSI trigger status contains N... RepEach CSI reports relevant configuration information, and the time slot interval reported by the j-th non-periodic CSI is Y. j The higher-level signaling RRC will configure the number of bits N in the CSI request field included in the DCI.
[0106] As can be seen in this example, the system supports the reuse of time slots determined by the terminal itself based on the offset reported by the A-CSI.
[0107] In one possible example, the first time slot is the time slot indicated by the downlink control information (DCI).
[0108] Wherein, the first time slot is the time slot indicated by the first bit in the downlink DCI.
[0109] The first bit in the DCI includes: the location information of the first time slot or the offset of the mapping time slot from the first time slot of the TBoMS PUSCH to the A-CSI.
[0110] For example, such as Figure 2i As shown, assume that the network device sends downlink control information (DCI) to the terminal through the physical downlink control channel (PDCCH) in slot n+1. This DCI instructs the terminal to map the UCI in the second slot of TBoMS PUSCH, i.e., slot n+3. That is, CSI1 is mapped to symbol 0 in slot n+3, and HARQ-ACK is mapped to symbol 3 in slot n+3.
[0111] As can be seen in this example, the system supports informing the terminal which time slots in TBoMS PUSCH to be multiplexed via DCI signaling.
[0112] As can be seen from the embodiments of this application, the terminal can use the first time slot of TBoMS PUSCH to send UCI, thereby realizing the mapping of UCI to TBoMS PUSCH for transmission. This helps to realize the transmission of UCI on TBoMB PUSCH, so as to provide uplink control information to assist downlink scheduling and improve system performance.
[0113] This application provides an uplink control information transmission device, which can be a terminal. Specifically, the uplink control information transmission device is used to perform the steps executed by the terminal in the above-described uplink control information transmission method.
[0114] The uplink control information transmission device provided in this application embodiment may include the modules corresponding to the respective steps.
[0115] This application embodiment can divide the uplink control information transmission device into functional modules according to the above method example. For example, each function can be divided into a separate functional module, or two or more functions can be integrated into one processing module. The integrated module can be implemented in hardware or as a software functional module.
[0116] The module division in this embodiment is illustrative and represents only one logical functional division. In actual implementation, there may be other division methods.
[0117] When dividing each function into modules according to its corresponding function. Figure 3 This diagram illustrates a possible structure of the uplink control information transmission device involved in the above embodiments. For example... Figure 3 As shown, the uplink control information transmission device 3 is applied to the terminal; the device includes:
[0118] Transmitting unit 30 is used to transmit UCI using the first time slot of TBoMS PUSCH.
[0119] In one possible example, the UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI 1), and CSI 2.
[0120] In one possible example, some or all of the time slots in the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH.
[0121] In one possible example, the first time slot is the first time slot of the TBoMS PUSCH.
[0122] In one possible example, the TBoMS PUSCH has no frequency hopping;
[0123] If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot actually transmitted by the TBoMS PUSCH.
[0124] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot actually transmitted by the TBoMS PUSCH.
[0125] The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0126] The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0127] In one possible example, the TBoMS PUSCH has frequency hopping;
[0128] If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH.
[0129] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH.
[0130] The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop and the first time slot of the second hop of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not used for DMRS frequency division multiplexing of the TBoMS PUSCH.
[0131] The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop. It can be mapped to the resource cell position reserved for the HARQ-ACK, but not to the resource cell mapping position of the HARQ-ACK, not to the resource cell mapping position of the CSI1, and not to the DMRS frequency division multiplexing of the TBoMS PUSCH.
[0132] In one possible example, the first time slot is the time slot where the TBoMS PUSCH overlaps with the Physical Uplink Control Channel PUCCH.
[0133] In one possible example, if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol in each overlapping slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol in each overlapping slot actually transmitted by the TBoMS PUSCH.
[0134] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH.
[0135] The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH;
[0136] The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0137] In one possible example, if the transmission time slot of the TBoMS PUSCH overlaps with that of the terminal's PUCCH in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses rate matching to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
[0138] If the time slot where the TBoMS PUSCH and the terminal's PUCCH overlap is not in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses a puncturing method to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
[0139] In one possible example, the UCI includes aperiodic channel state information (A-CSI).
[0140] In one possible example, the first time slot is the Nth time slot of the TBoMS PUSCH as agreed in the protocol, where N is a predefined positive integer.
[0141] In one possible example, the first time slot is the time slot determined by the terminal based on the bias reported by the A-CSI.
[0142] In one possible example, the first time slot is the time slot indicated by the downlink control information (DCI).
[0143] In one possible example, the first time slot is the time slot indicated by the first bit in the downlink DCI.
[0144] The first bit in the DCI includes: the location information of the first time slot or the offset of the mapping time slot from the first time slot of the TBoMS PUSCH to the A-CSI.
[0145] In the case of using integrated units, a schematic diagram of another uplink control information transmission device provided in this application embodiment is shown below. Figure 4 As shown. In Figure 4In this document, the uplink control information transmission device 4 includes a processing module 40 and a communication module 41. The processing module 40 controls and manages the operation of the uplink control information transmission device, for example, the steps performed by the sending unit 30, parsing unit 31, determining unit 32, access unit 33, and detection unit 34, and / or other processes used to perform the techniques described herein. The communication module 41 supports interaction between the uplink control information transmission device and other devices. Figure 4 As shown, the uplink control information transmission device may further include a storage module 42, which is used to store the program code and data of the uplink control information transmission device.
[0146] The processing module 40 can be a processor or controller, such as a central processing unit (CPU), a general-purpose processor, a digital signal processor (DSP), an ASIC, an FPGA, or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof. It can implement or execute various exemplary logic blocks, modules, and circuits described in conjunction with the disclosure of this application. The processor can also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, etc. The communication module 41 can be a transceiver, RF circuitry, or a communication interface, etc. The storage module 42 can be a memory.
[0147] All relevant content in each scenario involved in the above method embodiments can be referenced from the functional descriptions of the corresponding functional modules, and will not be repeated here. Both the uplink control information transmission device 3 and the uplink control information transmission device 4 can execute the above... Figure 2a The steps performed by the terminal in the uplink control information transmission method shown.
[0148] This application provides an uplink control information transmission device, which can be a terminal. Specifically, the uplink control information transmission device is used to perform the steps executed by the terminal in the above-described uplink control information transmission method.
[0149] The uplink control information transmission device provided in this application embodiment may include the modules corresponding to the respective steps.
[0150] This application embodiment can divide the uplink control information transmission device into functional modules according to the above method example. For example, each function can be divided into a separate functional module, or two or more functions can be integrated into one processing module. The integrated module can be implemented in hardware or as a software functional module.
[0151] The module division in this embodiment is illustrative and represents only one logical functional division. In actual implementation, there may be other division methods.
[0152] When dividing each function into modules according to its corresponding function. Figure 5 This diagram illustrates a possible structure of the uplink control information transmission device involved in the above embodiments. For example... Figure 5 As shown, the uplink control information transmission device 5 is applied to network equipment; the device includes:
[0153] The receiving unit 50 is used to receive UCI using the first time slot of TBoMS PUSCH.
[0154] In one possible example, the UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI 1), and CSI 2.
[0155] In one possible example, some or all of the time slots in the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH.
[0156] In one possible example, the first time slot is the first time slot of the TBoMS PUSCH.
[0157] In one possible example, the TBoMS PUSCH has no frequency hopping;
[0158] If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot actually transmitted by the TBoMS PUSCH.
[0159] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot actually transmitted by the TBoMS PUSCH.
[0160] The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0161] The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0162] In one possible example, the TBoMS PUSCH has frequency hopping;
[0163] If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH.
[0164] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH.
[0165] The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop and the first time slot of the second hop of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not used for DMRS frequency division multiplexing of the TBoMS PUSCH.
[0166] The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop. It can be mapped to the resource cell position reserved for the HARQ-ACK, but not to the resource cell mapping position of the HARQ-ACK, not to the resource cell mapping position of the CSI1, and not to the DMRS frequency division multiplexing of the TBoMS PUSCH.
[0167] In one possible example, the first time slot is the time slot where the TBoMS PUSCH overlaps with the Physical Uplink Control Channel PUCCH.
[0168] In one possible example, if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol in each overlapping slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol in each overlapping slot actually transmitted by the TBoMS PUSCH.
[0169] If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH.
[0170] The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH;
[0171] The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
[0172] In one possible example, if the transmission time slot of the TBoMS PUSCH overlaps with that of the terminal's PUCCH in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses rate matching to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
[0173] If the time slot where the TBoMS PUSCH and the terminal's PUCCH overlap is not in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses a puncturing method to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
[0174] In one possible example, the UCI includes aperiodic channel state information (A-CSI).
[0175] In one possible example, the first time slot is the Nth time slot of the TBoMS PUSCH as agreed in the protocol, where N is a predefined positive integer.
[0176] In one possible example, the first time slot is the time slot determined by the terminal based on the bias of the A-CSI report.
[0177] In one possible example, the first time slot is the time slot indicated by the downlink control information (DCI).
[0178] In one possible example, the first time slot is the time slot indicated by the first bit in the downlink DCI.
[0179] The first bit in the DCI includes: the location information of the first time slot or the offset of the mapping time slot from the first time slot of the TBoMS PUSCH to the A-CSI.
[0180] In the case of using integrated units, a schematic diagram of another uplink control information transmission device provided in this application embodiment is shown below. Figure 6 As shown. In Figure 6 In this document, the uplink control information transmission device 6 includes a processing module 60 and a communication module 61. The processing module 60 controls and manages the operation of the uplink control information transmission device, such as the steps performed by the receiving unit 50, and / or other processes for performing the techniques described herein. The communication module 61 supports interaction between the uplink control information transmission device and other devices. Figure 6 As shown, the uplink control information transmission device may further include a storage module 62, which is used to store the program code and data of the uplink control information transmission device.
[0181] The processing module 60 can be a processor or controller, such as a central processing unit (CPU), a general-purpose processor, a digital signal processor (DSP), an ASIC, an FPGA, or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof. It can implement or execute various exemplary logic blocks, modules, and circuits described in conjunction with the disclosure of this application. The processor can also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, etc. The communication module 61 can be a transceiver, RF circuitry, or a communication interface, etc. The storage module 62 can be a memory.
[0182] All relevant content in each scenario involved in the above method embodiments can be referenced from the functional descriptions of the corresponding functional modules, and will not be repeated here. Both the uplink control information transmission device 5 and the uplink control information transmission device 6 can execute the above... Figure 3 The steps performed by the terminal in the uplink control information transmission method shown.
[0183] This application provides a chip,
[0184] The chip is used to multiplex the first time slot output UCI of TBoMS PUSCH.
[0185] This application provides a chip module, including a transceiver component and a chip.
[0186] The chip is used to transmit UCI via the first time slot of the TBoMS PUSCH through the transceiver component.
[0187] This application provides a chip,
[0188] The chip is used to acquire UCI by reusing the first time slot of TBoMS PUSCH.
[0189] This application provides a chip module, including a transceiver component and a chip.
[0190] The chip is used to receive UCI using the first time slot of the TBoMS PUSCH via the transceiver component.
[0191] The above embodiments can be implemented, in whole or in part, by software, hardware, firmware, or any other combination thereof. When implemented using software, the above embodiments can be implemented, in whole or in part, as a computer program product. The computer program product includes one or more computer instructions or computer programs. When the computer instructions or computer programs are loaded or executed on a computer, all or part of the processes or functions described in the embodiments of this application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wired or wireless means. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more sets of available media. The available medium can be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape), an optical medium (e.g., DVD), or a semiconductor medium. A semiconductor medium can be a solid-state drive.
[0192] This application also provides a computer storage medium storing a computer program for electronic data interchange, which causes a computer to perform some or all of the steps of any of the methods described in the above method embodiments, wherein the computer includes an electronic device.
[0193] This application also provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps of any of the methods described in the above method embodiments. The computer program product may be a software installation package, and the computer may include an electronic device.
[0194] It should be understood that in the various embodiments of this application, the order of the above-mentioned processes does not imply the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.
[0195] In the several embodiments provided in this application, it should be understood that the disclosed methods, apparatuses, and systems can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for example, the division of units is merely a logical functional division, and other division methods may exist in actual implementation; for example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces, and the indirect coupling or communication connection between devices or units may be electrical, mechanical, or other forms.
[0196] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0197] Furthermore, the functional units in the various embodiments of the present invention can be integrated into one processing unit, or each unit can be physically comprised separately, or two or more units can be integrated into one unit. The integrated unit described above can be implemented in hardware or in the form of hardware plus software functional units.
[0198] The integrated units implemented as software functional units described above can be stored in a computer-readable storage medium. These software functional units, stored in a storage medium, include several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute some steps of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0199] While the present invention has been disclosed above, it is not limited thereto. Any person skilled in the art can easily conceive of variations or substitutions without departing from the spirit and scope of the present invention, and various modifications and alterations can be made, including combinations of the different functions and implementation steps described above, as well as software and hardware implementation methods, all of which are within the protection scope of the present invention.
Claims
1. A method for transmitting uplink control information, characterized in that, include: The terminal uses the first time slot of the TBoMS Physical Uplink Shared Channel (PUSCH) spanning multiple time slot transmission blocks to transmit uplink control information (UCI). The UCI includes at least one of the following: Hybrid Automatic Repeat Request (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI1), and Channel State Information (CSI2). Where some or all time slots in the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH, when the first time slot is an overlap between the TBoMS PUSCH and the PUCCH, if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
2. The method according to claim 1, characterized in that, The first time slot is the first time slot of the TBoMS PUSCH.
3. The method according to claim 1, characterized in that, The TBoMS PUSCH has no frequency hopping; If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH. The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
4. The method according to claim 1, characterized in that, The TBoMS PUSCH has frequency hopping; If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop and the first time slot of the second hop of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not used for DMRS frequency division multiplexing of the TBoMS PUSCH. The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop. It can be mapped to the resource cell position reserved for the HARQ-ACK, but not to the resource cell mapping position of the HARQ-ACK, not to the resource cell mapping position of the CSI1, and not to the DMRS frequency division multiplexing of the TBoMS PUSCH.
5. The method according to claim 1, characterized in that, If the transmission time slot of the TBoMS PUSCH overlaps with that of the terminal's PUCCH in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses rate matching to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
6. The method according to claim 1, characterized in that, If the time slot where the TBoMS PUSCH and the terminal's PUCCH overlap is not in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses a puncturing method to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
7. The method according to claim 1, characterized in that, The UCI includes aperiodic channel state information (A-CSI).
8. The method according to claim 7, characterized in that, The first time slot is the first time slot of the TBoMS PUSCH.
9. The method according to claim 7, characterized in that, The first time slot is the time slot determined by the terminal based on the bias of the A-CSI report.
10. The method according to claim 7, characterized in that, The first time slot is the time slot indicated by the downlink control information (DCI).
11. The method according to claim 10, characterized in that, The first time slot is the time slot indicated by the first bit in the DCI. The first bit in the DCI includes: the location information of the first time slot or the offset of the mapping time slot from the first time slot of the TBoMS PUSCH to the A-CSI.
12. A method for transmitting uplink control information, characterized in that, include: The network device receives a UCI using the first time slot of the TBoMS PUSCH. The UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI1), and CSI2. Where some or all time slots of the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH, and when the first time slot is the time slot where the TBoMS PUSCH overlaps with the Physical Uplink Control Channel (PUCCH), if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
13. The method according to claim 12, characterized in that, The first time slot is the first time slot of the TBoMS PUSCH.
14. The method according to claim 12 or 13, characterized in that, The TBoMS PUSCH has no frequency hopping; If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal DMRS symbol of the first time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of the first time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH. The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
15. The method according to claim 12 or 13, characterized in that, The TBoMS PUSCH has frequency hopping; If the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the HARQ-ACK and / or the CG-UCI are mapped from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop; or, the information jointly encoded by HARQ-ACK and CG-UCI starts from the first symbol after the pre-DMRS symbol of the first time slot of each frequency hopping resource actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop and the first time slot of the second hop of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not used for DMRS frequency division multiplexing of the TBoMS PUSCH. The CSI2 is mapped starting from the first non-DMRS symbol of the first time slot of the first hop of the TBoMS PUSCH and the first time slot of the second hop. It can be mapped to the resource cell position reserved for the HARQ-ACK, but not to the resource cell mapping position of the HARQ-ACK, not to the resource cell mapping position of the CSI1, and not to the DMRS frequency division multiplexing of the TBoMS PUSCH.
16. The method according to claim 12, characterized in that, If the transmission time slot of the TBoMS PUSCH overlaps with that of the terminal's PUCCH in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses rate matching to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
17. The method according to claim 12, characterized in that, If the time slot where the TBoMS PUSCH and the terminal's PUCCH overlap is not in the first time slot of the TBoMS PUSCH, then the UCI multiplexing process uses a puncturing method to occupy the corresponding mapped resource unit in the TBoMS PUSCH.
18. The method according to claim 12, characterized in that, The UCI includes aperiodic channel state information (A-CSI).
19. The method according to claim 18, characterized in that, The first time slot is the first time slot of the TBoMSPUSCH as agreed in the protocol.
20. The method according to claim 18, characterized in that, The first time slot is the time slot determined by the terminal based on the bias of the A-CSI report.
21. The method according to claim 18, characterized in that, The first time slot is the time slot indicated by the downlink control information (DCI).
22. The method according to claim 21, characterized in that, The preset bits are the extra bits in the DCI; The preset information includes the location information of the first time slot or the offset of the mapping time slot from the first time slot of the TBoMS PUSCH to the A-CSI.
23. An uplink control information transmission device, characterized in that, include: A transmitting unit is configured to transmit a UCI using a first time slot of the TBoMS PUSCH. The UCI includes at least one of the following: a Hybrid Automatic Repeat Request Affirmative Acknowledgment (HARQ-ACK) and / or a Configuration Grant (CG-UCI), Channel State Information (CSI1) and Channel State Information (CSI2). Where some or all time slots of the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH, and when the first time slot is an overlap between the TBoMS PUSCH and the Physical Uplink Control Channel (PUCCH), if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
24. An uplink control information transmission device, characterized in that, include: A receiving unit is configured to receive a UCI using a first time slot of the TBoMS PUSCH, the UCI including at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI1), and Channel State Information (CSI2); wherein some or all time slots of the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH; when the first time slot is a time slot where the TBoMS PUSCH overlaps with the Physical Uplink Control Channel (PUCCH), if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
25. A terminal, characterized in that, It includes a processor, a memory, and one or more programs, said one or more programs being stored in the memory and configured to be executed by the processor, said programs including instructions for performing the steps of the method as described in any one of claims 1-11.
26. A network device, characterized in that, The method includes a processor, a memory, and one or more programs stored in the memory and configured to be executed by the processor, the programs including instructions for performing the steps of the method as described in any one of claims 12-22.
27. A computer-readable storage medium, characterized in that, A computer program for storing electronic data interchange is provided, wherein the computer program causes a computer to execute instructions for the steps of the method as described in any one of claims 1-11 or any one of claims 12-22.
28. A chip, characterized in that, The chip includes a module for multiplexing the first time slot output UCI of the TBoMS PUSCH. The UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI1) and CSI2. Where some or all time slots in the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH, and when the first time slot is a time slot overlapping the TBoMS PUSCH with the Physical Uplink Control Channel (PUCCH), if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
29. A chip module, characterized in that, Including transceiver components and chips, The chip is configured to transmit a UCI using a first time slot of the TBoMS PUSCH via the transceiver component. The UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI1), and Channel State Information (CSI2). Where some or all time slots of the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH, and when the first time slot is an overlap between the TBoMS PUSCH and the Physical Uplink Control Channel (PUCCH), if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
30. A chip, characterized in that, The chip includes a module for acquiring a UCI using a first time slot of the TBoMS PUSCH. The UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI1), and Channel State Information (CSI2). Where some or all time slots of the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH, when the first time slot is a time slot overlapping the TBoMS PUSCH with the Physical Uplink Control Channel (PUCCH), if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.
31. A chip module, characterized in that, Including transceiver components and chips, The chip is configured to receive a UCI using a first time slot of the TBoMS PUSCH via the transceiver component. The UCI includes at least one of the following: Hybrid Automatic Repeat Request Affirmative Response (HARQ-ACK) and / or Configuration Grant (CG-UCI), Channel State Information (CSI1), and Channel State Information (CSI2). Where some or all time slots of the TBoMS PUSCH overlap with the transmission time slots of the terminal's PUCCH, when the first time slot is an overlap between the TBoMS PUSCH and the Physical Uplink Control Channel (PUCCH), if the UCI includes HARQ-ACK and / or the CG-UCI, then the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot of the TBoMS PUSCH; or, the HARQ-ACK and / or the CG-UCI are mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol of each overlapping time slot actually transmitted by the TBoMS PUSCH. If the UCI includes HARQ-ACK and CG-UCI, then the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot of the TBoMS PUSCH; or, the information jointly encoded by HARQ-ACK and CG-UCI is mapped starting from the first symbol after the pre-demodulation reference signal (DMRS) symbol in each overlapping time slot actually transmitted by the TBoMS PUSCH. The CSI1 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH, and is not mapped to the resource cell position reserved for the HARQ-ACK and the resource cell mapping position of the HARQ-ACK, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH; The CSI2 is mapped starting from the first non-DMRS symbol of each overlapping slot of the TBoMS PUSCH. It can be mapped to the resource cell location reserved for the HARQ-ACK, but not to the resource cell mapping location of the HARQ-ACK, not to the resource cell mapping location of the CSI 1, and is not frequency-division multiplexed with the DMRS of the TBoMS PUSCH.