Resource determination method and apparatus, communication device, and storage medium

By identifying the set of resources not used for PUSCH transmission between the terminal and network equipment, and using DMRS and PTRS configuration information to silence uplink resources, the problem of uplink resource silencing not being supported in the 3GPP standard is solved, thereby suppressing cross-link interference between base stations and improving uplink performance.

WO2026067007A1PCT designated stage Publication Date: 2026-04-02CHINA MOBILE COMM LTD RES INST +1
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-09-08
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

The existing 3GPP standards do not yet support uplink resource silencing technology, which makes it impossible to effectively suppress cross-link interference between base stations, affecting uplink demodulation and decoding performance.

Method used

Terminal and network devices determine the set of resources not used for PUSCH transmission by using configuration and indication information, including configuration information for demodulation reference signals and phase tracking reference signals, to silence some uplink resources in order to facilitate interference estimation and improve uplink performance.

Benefits of technology

It effectively suppressed cross-link interference between base stations, improved uplink demodulation and decoding performance, and enhanced communication quality.

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Abstract

Disclosed in embodiments of the present disclosure are a resource determination method and apparatus, a communication device, and a storage medium. The method comprises: on the basis of configuration and / or indication information, a terminal determines a first resource set that is not used for physical uplink shared channel (PUSCH) transmission, wherein the configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, demodulation reference signal (DMRS) configuration information, phase tracking reference signal (PTRS) configuration information, and a first parameter.
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Description

A resource determination method and apparatus, a communication device, and a storage medium Cross-reference to Related Applications The present disclosure is based on and claims priority from Chinese Patent Application No. 202411346022.3, filed on September 25, 2024, the entire contents of which are incorporated herein by reference. TECHNICAL FIELD The present disclosure relates to the field of communication technology, and in particular to a resource determination method and apparatus, a communication device, and a storage medium. BACKGROUND The Third Generation Partnership Project (3GPP) supports downlink resource muting technology, and standardizes physical downlink shared channel (PDSCH) resource mapping technology at resource block (RB) symbol level granularity and PDSCH resource mapping technology at resource element (RE) level granularity. However, uplink resource muting technology is not yet supported. SUMMARY The present disclosure provides a resource determination method and apparatus, a communication device, and a storage medium. The technical solution of the embodiments of the present disclosure is as follows: In a first aspect, the embodiments of the present disclosure provide a resource determination method, which is applied to a terminal, and the method comprises: The terminal determines a first resource set not used for physical uplink shared channel (PUSCH) transmission according to configuration and / or indication information. The configuration and / or indication information comprises at least one of at least one first resource configuration, first indication information, demodulation reference signal (DMRS) configuration information, phase tracking reference signal (PTRS) configuration information, and a first parameter. In some optional embodiments of the present disclosure, the terminal determines the first resource set not used for PUSCH transmission according to the configuration and / or indication information, which comprises: determining a first resource configuration from the at least one first resource configuration according to at least one of a pre-arrangement, high layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information and first indication information; determining a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information and PTRS configuration information; determining the first resource set according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to a first parameter. In some optional embodiments of the present disclosure, the determining the first resource set according to the second resource set and a first code rate requirement comprises: if the second resource set is not used for PUSCH transmission, determining the first resource set as the second resource set when the first code rate requirement is met; and / or, if the second resource set is not used for PUSCH transmission, determining the first resource set as an empty set when the first code rate requirement is not met; and / or, if part of the second resource set is not used for PUSCH transmission, determining the first resource set to include the part of the second resource set when the first code rate requirement is met. In some optional embodiments of the present disclosure, the determining a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information and PTRS configuration information comprises: determining a third resource set according to the first resource configuration, wherein the first resource configuration comprises at least one of a first time domain configuration, a first frequency domain configuration and a first enabling configuration; determining a PUSCH transmission resource set, and determining a second resource set according to at least one of the third resource set, the PUSCH transmission resource set, DMRS configuration information and PTRS configuration information, wherein the second resource set meets at least one of the following conditions: the second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set; the second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with symbols of DMRS and / or PTRS. In some optional embodiments of the present disclosure, the determining a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information and PTRS configuration information comprises: determining a fourth resource set according to the first resource configuration, wherein the first resource configuration comprises at least one of a second time domain configuration, a first frequency domain configuration, a first enabling configuration; determining a PUSCH transmission resource set, and determining a second resource set according to at least one of the fourth resource set, the PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following conditions: a time slot where the second resource set is located belongs to a time slot where the fourth resource set is located; a frequency domain resource position of the second resource set belongs to a frequency domain resource position of the fourth resource set; a symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a second time domain configuration. In some optional embodiments of the present disclosure, the first resource configuration comprises at least one of a third time domain configuration, a second frequency domain configuration, a first enabling configuration; and determining the second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information comprises: determining a symbol position of the second resource set according to at least one of the PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a third time domain configuration; and / or, determining a frequency domain resource position of the second resource set according to the second frequency domain configuration or a pre-agreement. In some optional embodiments of the present disclosure, determining the symbol position of the second resource set according to at least one of the PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset comprises: if a symbol satisfies a first condition and a second condition, determining that the symbol belongs to the second resource set, wherein the first condition comprises that the symbol is located in the PUSCH transmission resource and does not overlap with a time domain position of the symbol of DMRS and / or the symbol of PTRS; and / or, the second condition comprises at least one of the following: the symbol is a first symbol; the symbol is a second symbol, and the second symbol is determined according to the first symbol and at least one first offset. The symbol is a third symbol, and the third symbol is a first symbol after the first symbol that satisfies a first condition; The symbol is a fourth symbol, and the fourth symbol is a first symbol after the second symbol that satisfies a first condition; The symbol is a fifth symbol, and the fifth symbol is located in the second resource set and has a gap with symbols before and / or after the fifth symbol that is greater than or equal to a first gap, and satisfies a third condition; The third condition includes one of the following: The number of symbols in the second resource set is less than or equal to a first number; The number of symbols contained in the second resource set in the slot in which the fifth symbol is located is less than or equal to a first number; The number of symbols contained in the second resource set in the PUSCH transmission occasion in which the fifth symbol is located is less than or equal to a first number. In some optional embodiments of the present disclosure, the first symbol satisfies one of the following conditions: The first symbol is the first symbol of a slot; The first symbol is the first symbol of each slot that overlaps in time domain with the PUSCH; The first symbol is the first symbol of the PUSCH; The first symbol is the first symbol of the PUSCH in each slot that overlaps in time domain with the PUSCH; The first symbol is the first symbol of each PUSCH transmission occasion; The first symbol is the first symbol of the first slot of each PUSCH transmission occasion; The first symbol is the first symbol of the PUSCH in each slot that overlaps in time domain with each PUSCH transmission occasion. In some optional embodiments of the present disclosure, the second resource set is determined according to at least one of the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information, including: determining the second resource set according to the first resource configuration and the PUSCH transmission resource set; wherein the first resource configuration includes at least one of a fourth time domain configuration, a second frequency domain configuration, and a first enabling configuration. In some optional embodiments of the present disclosure, one first resource configuration is determined from the at least one first resource configuration according to at least one of the PUSCH transmission resource information, the DMRS configuration information, the PTRS configuration information, and the first indication information, including: determining one first resource configuration from the at least one first resource configuration according to time domain information of the PUSCH transmission resource; Or, one first resource configuration is determined from the at least one first resource configuration according to the DMRS configuration information and / or the PTRS configuration information. Or, a first index is determined according to a first indication field of the first indication information, and one first resource configuration is determined from the at least one first resource configuration according to the first index, wherein the first indication field is related to PUSCH time domain resource allocation. Or, a second index is determined according to part of bits of a second indication field of the first indication information, and one first resource configuration is determined from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation. In some optional embodiments of the present disclosure, the method further comprises: determining whether the first resource set is empty according to a first bit in a second indication field of the first indication information, wherein the second indication field is related to PUSCH frequency domain resource allocation. Or, whether the first resource set is empty is determined according to PUSCH transmission resource information. In some optional embodiments of the present disclosure, the determining one first resource configuration from the at least one first resource configuration according to the first index comprises: determining a first information element (IE) according to the first index, and determining one first resource configuration according to the first information element (IE); the first information element (IE) is related to time domain resource allocation; the first information element IE includes the first resource configuration and / or an index of the first resource configuration; and / or, The determining one first resource configuration from the at least one first resource configuration according to the second index comprises: determining a second information element (IE) according to the second index, and determining one first resource configuration according to the second information element (IE); wherein the second information element (IE) includes the first resource configuration and / or an index of the first resource configuration. In some optional embodiments of the present disclosure, the first resource configuration comprises at least one of: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, and a fourth time domain configuration; wherein, The first enabling configuration comprises: a first state indication or a second state indication; wherein the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate whether the first function is used or not used; The first frequency domain configuration comprises at least one of: a resource block (RB) resource set indication, a comb value, and a comb offset. The second frequency domain configuration comprises at least one of a comb value, a comb offset. The first time domain configuration comprises at least one of a first periodicity, a second offset, a bitmap corresponding to a symbol, a time domain repetition pattern. The second time domain configuration comprises at least one of a first periodicity, a second offset, a time domain repetition pattern, a first interval, a first number, at least one first offset. The third time domain configuration comprises at least one of a time domain repetition pattern, a first interval, a first number, at least one first offset. The fourth time domain configuration comprises at least one of a bitmap corresponding to a symbol, a time domain repetition pattern. In some optional embodiments of the present disclosure, the method further comprises: determining a fifth resource set available for PUSCH transmission according to the first resource set; multiplexing UCI in the fifth resource set; or multiplexing UCI in a PUSCH resource, and the PUSCH resource after multiplexing UCI is used to determine the first resource set. In a second aspect, the embodiments of the present disclosure further provide a resource determination method, the method is applied to a network device, and the method comprises: The network device sends configuration and / or indication information to a terminal, the configuration and / or indication information is used to determine a first resource set not used for PUSCH transmission. The configuration and / or indication information comprises at least one of at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and a first parameter. In some optional embodiments of the present disclosure, the configuration and / or indication information is used by the terminal to determine one first resource configuration from the at least one first resource configuration according to at least one of a pre-agreement, high-layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information, and first indication information; determine a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information; determine the second resource set as the first resource set, or determine the first resource set according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to a first parameter. In some optional embodiments of the present disclosure, if the second resource set is not used for PUSCH transmission, the second resource set is the first resource set when a first code rate requirement is met. And / or, if the second resource set is not used for PUSCH transmission, the first resource set is an empty set when the first code rate requirement is not met. And / or, if part of the second resource set is not used for PUSCH transmission, the first resource set includes the part of the second resource set when the first code rate requirement is met. In some optional embodiments of the present disclosure, the first resource configuration includes at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration, for the terminal to determine a third resource set according to the first resource configuration, to determine a second resource set according to at least one of the third resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set meets at least one of the following: The second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set. The second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with the symbols of DMRS and / or PTRS. In some optional embodiments of the present disclosure, the first resource configuration includes at least one of a second time domain configuration, a first frequency domain configuration, and a first enabling configuration, for the terminal to determine a fourth resource set according to the first resource configuration, to determine a second resource set according to at least one of the fourth resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set meets at least one of the following: The time slot where the second resource set is located belongs to the time slot where the fourth resource set is located. The frequency domain resource location of the second resource set belongs to the frequency domain resource location of the fourth resource set. The symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, the symbol of DMRS, the symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a second time domain configuration. In some optional embodiments of the present disclosure, the first resource configuration includes at least one of a third time domain configuration, a second frequency domain configuration, and a first enabling configuration, for the terminal to determine the symbol position of the second resource set according to at least one of the PUSCH transmission resource set, the symbol of DMRS, the symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a third time domain configuration; and / or, The frequency domain resource location of the second resource set is determined according to the second frequency domain configuration or a pre-agreement. In some optional embodiments of the present disclosure, if the symbol satisfies the first condition and the second condition, the symbol belongs to the second resource set, wherein the first condition comprises: the symbol is located in the PUSCH transmission resource and does not overlap in time domain position with the symbol of the DMRS and / or the symbol of the PTRS; and / or, The second condition comprises at least one of the following: The symbol is a first symbol; The symbol is a second symbol, which is determined according to the first symbol and at least one first offset; The symbol is a third symbol, which is the first symbol after the first symbol and satisfies the first condition; The symbol is a fourth symbol, which is the first symbol after the second symbol and satisfies the first condition; The symbol is a fifth symbol, which is located in the second resource set and has a gap greater than or equal to a first gap with the symbol before and / or after the fifth symbol, and satisfies a third condition; The third condition comprises one of the following: The number of symbols in the second resource set is less than or equal to a first number; The number of symbols contained in the second resource set in the slot where the fifth symbol is located is less than or equal to the first number; The number of symbols contained in the second resource set in the PUSCH transmission occasion where the fifth symbol is located is less than or equal to the first number. In some optional embodiments of the present disclosure, the first symbol satisfies one of the following conditions: The first symbol is the first symbol of a slot; The first symbol is the first symbol of each slot that overlaps in time domain with the PUSCH; The first symbol is the first symbol of the PUSCH; The first symbol is the first symbol of the PUSCH in each slot that overlaps in time domain with the PUSCH; The first symbol is the first symbol of each PUSCH transmission occasion; The first symbol is the first symbol of the first slot of each PUSCH transmission occasion; The first symbol is the first symbol of the PUSCH in each slot that overlaps in time domain with each PUSCH transmission occasion. In some optional embodiments of the present disclosure, the first resource configuration comprises at least one of a fourth time domain configuration, a second frequency domain configuration, and a first enabling configuration, for the terminal to determine the second resource set according to the first resource configuration and the set of PUSCH transmission resources. In some optional embodiments of the present disclosure, the configuration and / or indication information is used by the terminal to determine one first resource configuration from the at least one first resource configuration according to time domain information of PUSCH transmission resources; or, determine one first resource configuration from the at least one first resource configuration according to DMRS configuration information and / or PTRS configuration information; or, The first indication field of the first indication information is used by the terminal to determine a first index, and one first resource configuration is determined from the at least one first resource configuration according to the first index, wherein the first indication field is related to PUSCH time domain resource allocation; or, Part of the bits of the second indication field of the first indication information is used by the terminal to determine a second index, and one first resource configuration is determined from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation. In some optional embodiments of the present disclosure, the first bit of the second indication field of the first indication information is used by the terminal to determine whether the first resource set is empty, wherein the second indication field is related to PUSCH frequency domain resource allocation; or, whether the first resource set is empty is determined by the terminal according to PUSCH transmission resource information. In some optional embodiments of the present disclosure, the first indication field of the first indication information is used by the terminal to determine a first index, a first information element (IE) is determined according to the first index, and one first resource configuration is determined according to the first information element (IE); the first information element (IE) is related to time domain resource allocation; the first information element (IE) includes the first resource configuration and / or the index of the first resource configuration; and / or, Part of the bits of the second indication field of the first indication information is used by the terminal to determine a second index, a second information element (IE) is determined according to the second index, and one first resource configuration is determined according to the second information element (IE); wherein the second information element (IE) includes the first resource configuration and / or the index of the first resource configuration. In some optional embodiments of the present disclosure, the first resource configuration includes at least one of the following: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, and a fourth time domain configuration; wherein, The first enabling configuration includes a first state indication or a second state indication; wherein the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate that the first function is used or not used; The first frequency domain configuration comprises at least one of the following: resource block (RB) resource set indication, comb value, comb offset; The second frequency domain configuration comprises at least one of the following: comb value, comb offset; The first time domain configuration comprises at least one of the following: first period, second offset, bitmap corresponding to symbols, time domain repetition pattern; The second time domain configuration comprises at least one of the following: first period, second offset, time domain repetition pattern, first interval, first number, at least one first offset; The third time domain configuration comprises at least one of the following: time domain repetition pattern, first interval, first number, at least one first offset; The fourth time domain configuration comprises at least one of the following: bitmap corresponding to symbols, time domain repetition pattern. In a third aspect, the embodiments of the present disclosure further provide a resource determination apparatus, which is applied to a terminal, and the apparatus comprises: a first processing unit, configured to determine a first resource set not used for PUSCH transmission according to configuration and / or indication information. The configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and first parameters. In a fourth aspect, the embodiments of the present disclosure further provide a resource determination apparatus, which is applied to a network device, and the apparatus comprises: a second communication unit, configured to send configuration and / or indication information to a terminal, the configuration and / or indication information being used to determine a first resource set not used for PUSCH transmission; wherein the configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and first parameters. In a fifth aspect, the embodiments of the present disclosure further provide a computer readable storage medium, which stores a computer program, and the program processor executes the steps of the resource determination method of the first aspect or the second aspect. In a sixth aspect, the embodiments of the present disclosure further provide a communication device, which comprises a memory, a processor, and a computer program stored in the memory and executable on the processor, and the processor executes the steps of the resource determination method of the first aspect or the second aspect when executing the program. In a seventh aspect, the embodiments of the present disclosure further provide a computer program product, which comprises computer program instructions, and the computer program instructions enable a computer to execute the steps of the resource determination method of the first aspect or the second aspect. The resource determination method, apparatus, communication device and storage medium provided by the embodiments of the present disclosure, the method comprises: a terminal determines a first resource set not used for physical uplink shared channel (PUSCH) transmission according to configuration and / or indication information; wherein the configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, demodulation reference signal (DMRS) configuration information, phase tracking reference signal (PTRS) configuration information, and a first parameter. By determining the resources not used for PUSCH transmission (i.e., muting some uplink resources), the uplink demodulation performance and decoding performance are improved by measuring and performing interference estimation in these muted resources. BRIEF DESCRIPTION OF DRAWINGS FIG. 1 is a schematic diagram of cross-link interference in three networking scenarios; FIG. 2 is a flowchart of a resource determination method according to an embodiment of the present disclosure; FIG. 3 is a flowchart of a resource determination method according to an embodiment of the present disclosure; FIGS. 4a and 4b are schematic diagrams of PUSCH resource muting according to an embodiment of the present disclosure; FIG. 5 is a schematic diagram of neighbor cell downlink resource usage according to an embodiment of the present disclosure; FIG. 6 is a schematic diagram of PUSCH resource muting in SSB and non-SSB scenarios according to an embodiment of the present disclosure; FIG. 7 is a schematic diagram of PUSCH resource muting in CSI-RS and non-CSI-RS scenarios according to an embodiment of the present disclosure; FIGS. 8a and 8b are schematic diagrams of a second resource set according to an embodiment of the present disclosure; FIG. 9 is a schematic diagram of a symbol satisfying a second condition according to an embodiment of the present disclosure; FIG. 10 is a schematic diagram of a resource determination apparatus according to an embodiment of the present disclosure; FIG. 11 is a schematic diagram of a resource determination apparatus according to an embodiment of the present disclosure; FIG. 12 is a schematic diagram of the hardware structure of a communication device according to an embodiment of the present disclosure. DETAILED DESCRIPTION The present disclosure will be further described in detail below with reference to the accompanying drawings and specific embodiments. The technical solutions of the embodiments of the present disclosure can be applied to various communication systems, such as, but not limited to, Global System of Mobile communication (GSM) system, Long Term Evolution (LTE) system, 5G system, 6G system, etc. Optionally, the 5G system or 5G network can also be referred to as New Radio (NR) system or NR network. Exemplarily, the communication system to which embodiments of the present disclosure apply can include network devices and terminal devices (also referred to as terminals, communication terminals, etc.); the network devices can be devices that communicate with the terminal devices. Among them, the network devices can provide communication coverage in a certain area range, and can communicate with terminals located in the area. Optionally, the network devices can be base stations in various communication systems, for example, evolved Node Bs (eNBs) in LTE systems, or base stations (gNBs) in 5G or NR systems. It should be understood that the devices with communication functions in the network / system in the embodiments of the present application can be referred to as communication devices. The communication devices can include network devices and terminal devices with communication functions, and the network devices and terminal devices can be the specific devices described above, which will not be described here again; the communication devices can also include other devices in the communication system, such as network controllers, mobile management entities, and other network entities, which are not limited in the embodiments of the present disclosure. It should be understood that the terms "system" and "network" are often used interchangeably in the present disclosure. The term "and / or" in the present disclosure is only used to describe the association relationship of the associated objects, which means that there can be three relationships, for example, A and / or B can represent the following three cases: A exists alone, A and B exist together, and B exists alone. In addition, the character " / " in the present disclosure generally represents an "or" relationship between the associated objects. The terms "first", "second", etc. in the specification and claims of the present application are used to distinguish similar objects, and do not necessarily mean a specific order or sequence. It should be understood that the data used in this way can be exchanged under appropriate circumstances, so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion, for example, a process, method, system, product or device that includes a series of steps or units does not necessarily limit to those steps or units clearly listed, but can include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices. FIG. 1 is a schematic diagram of cross-link interference (CLI) in three networking scenarios; as shown in FIG. 1, in the subband non-overlapping full duplex (SBFD) single networking scenario, i.e. scenario 2, there is a certain inter-subband cross-link interference between base stations (gNB-gNB), i.e. when receiving UL transmission, the interfered base station (e.g. the right base station in scenario 2 in the figure) will be interfered by the DL transmission sent in the same time domain by the adjacent base station (e.g. the left base station in the figure) in the downlink subband (the interference mainly comes from transmitter leakage and receiver selectivity). In some cases, SBFD can also be referred to as unified time and frequency division duplex (UDD). In the case of time division duplexing (TDD) macro-micro heterogeneous (scenario 1) and SBFD coexisting with TDD networking (scenario 3), there are both: 1) serious intra-subband cross-link interference (CLI) between base stations (gNB-gNB), i.e. when receiving UL transmission, the interfered base station will be interfered by the DL transmission sent by the adjacent base station on the same RB; 2) a certain inter-subband cross-link interference between base stations (same as scenario 2). In order to effectively suppress the inter-subband cross-link interference between base stations in scenario 2, and the intra-subband cross-link interference between base stations in scenarios 1 and 3, it can be considered to mute some resources in the uplink transmission (PUSCH) of the users of the interfered station, so that the interfered station can measure and estimate the interference in these muted resources, and improve the uplink demodulation performance and decoding performance. Based on this, the following embodiments of the disclosure are proposed. The resource determination method provided by the embodiments of the disclosure is applied to a terminal. FIG. 2 is a flowchart of a resource determination method according to an embodiment of the disclosure; as shown in FIG. 2, the method comprises the following steps. In step 101, the terminal determines a first resource set not used for PUSCH transmission according to configuration and / or indication information; wherein the configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and a first parameter. In some optional embodiments, the method further comprises: receiving, by the terminal, the configuration and / or indication information sent by the network device. Correspondingly, the disclosure also provides a resource determination method, which is applied to a network device. FIG. 3 is a flowchart of a resource determination method according to an embodiment of the disclosure; as shown in FIG. 3, the method comprises the following steps. Step 201: the network device sends configuration and / or indication information to the terminal, the configuration and / or indication information being used to determine a first resource set not used for PUSCH transmission; wherein the configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and a first parameter. For scenario 1 and scenario 3 shown in FIG. 1, for UL reception, the main interference is the inter-subband cross-link interference between base stations caused by PDCCH and PDSCH transmission on the same RB of the adjacent cell. Since the beam direction and / or beam width of PDCCH and PDSCH are generally different, symbol-level muting can be considered in the time domain range of PDCCH and PDSCH respectively. FIG. 4a takes scenario 3 as an example and shows a corresponding PUSCH resource muting diagram. For example, referring to FIG. 4a, for slot-level uplink transmission PUSCH 1 (which can also be referred to as PUSCH mapping type A), muting can be performed in symbol #2 and symbol #13 of UL respectively, wherein the first muting resource is used to estimate the interference correlation matrix of PDCCH, and the second muting resource is used to estimate the interference correlation matrix of PDSCH. For mini-slot-level uplink transmission PUSCH 3 (which can also be referred to as PUSCH mapping type B), since it only overlaps in time domain with PDSCH, muting can be considered only in symbol #9. It should be noted that the absolute time offset of the muting symbol of PUSCH 3 and PUSCH 1 relative to the slot boundary can be the same or different. Specifically, in the present embodiment, the absolute time offset of the muting symbol of PUSCH 3 and PUSCH 1 is different. Compared with the muting resource of PUSCH 1 located in symbol #13, the muting resource of PUSCH 3 is located in symbol #9, and the potential advantage is: 1) symbol #9 is located in the middle of PUSCH 3, and the interference correlation matrix obtained by the base station based on this symbol has higher accuracy when it is extrapolated to other symbols by difference. 2) symbol #9 is located relatively in front, which facilitates the base station to obtain the interference correlation matrix information more quickly and reduces the time for high-quality demodulation and decoding. For the mini-slot level uplink transmission PUSCH 2, since PUSCH 2 has only 2 symbols, if muting resources are applied, the code rate of PUSCH 2 will be greatly increased, and the decoding performance of PUSCH 2 will be deteriorated, so the resource muting operation can be considered to be disabled (or referred to as "de- enabled"). For scenario 2 shown in FIG. 1, inter-subband cross-link interference between base stations is the dominant factor, that is, for UL reception, the main interference comes from the energy leakage of all downlink transmissions in the adjacent DL subband to the UL subband. In this scenario, since the beam directions of different UEs in the DL subband are generally different, the beam direction of the inter-subband CLI interference leaked to the UL subband lacks clear rules. Therefore, in scenario 2, there is no need to distinguish the difference between PDCCH and PDSCH. However, inter-subband CLI comes from the interference of all downlink transmissions in the DL subband, so the energy difference of signal transmission on different symbols in the DL subband (mainly affected by frequency domain resource allocation) has a significant impact on the estimation of the interference correlation matrix of inter-subband CLI. FIG. 5 is a schematic diagram of the use of adjacent downlink resources according to an embodiment of the present disclosure. As shown in FIG. 5, especially in a low load scenario, the transmission of synchronization signal / physical broadcast channel block (SSB, Synchronization Signal / PBCH Block) and channel state information reference signal (CSI-RS, Channel State Information-Reference Signal) has a significant impact on the estimation of inter-subband CLI. Therefore, symbol-level muting can be considered in the time domain range where only PDCCH exists, PDSCH and SSB exist at the same time, PDSCH and CSI-RS exist at the same time, and only PDSCH exists, respectively. For example, referring to FIG. 4b, PUSCH 1 is muted at symbol #2 and symbol #13 of UL, respectively, where the first muting resource is used to estimate the interference correlation matrix on the symbol where only PDCCH exists, and the second muting resource is used to estimate the interference correlation matrix on the symbol where only PDSCH exists. PUSCH 3 is muted at symbol #6 and symbol #10 of UL, respectively, where the first muting resource is used to estimate the interference correlation matrix on the symbol where PDSCH and CSI-RS exist at the same time, and the second muting resource is used to estimate the interference correlation matrix on the symbol where PDSCH and SSB exist at the same time. PUSCH 2 disables muting operation, and possible reasons include: 1) The base station has obtained the required interference correlation matrix properties over all symbols through muting resources on PUSCH 1 and PUSCH 3, so no muting is required for PUSCH 2. The specific configuration / scheduling of which PUSCHs to mute resources and which to disable muting resources depends on the base station scheduling. For example, for PUSCH transmission of certain high priority services, the base station can disable muting function. 2) The base station has measured the required interference correlation matrix properties in unscheduled UL resources. In some embodiments, such as low load cases, there are a large number of unscheduled resources in the UL sub-band, and the base station can obtain the required interference correlation matrix properties over all symbols through these unscheduled resources. At this time, the base station can disable all PUSCH muting operations to improve the transmission performance of PUSCH. In another embodiment, as shown in FIG. 6, muting is performed in UL symbols #2 and #13, respectively, where the first muting resource is used to estimate the interference correlation matrix on symbols where SSB exists, and the second muting resource is used to estimate the interference correlation matrix on symbols where SSB does not exist. In yet another embodiment, as shown in FIG. 7, muting is performed in UL symbols #2 and #6, respectively, where the first muting resource is used to estimate the interference correlation matrix on symbols where CSI-RS does not exist, and the second muting resource is used to estimate the interference correlation matrix on symbols where CSI-RS exists. Based at least on the above, the terminal determines a first set of resources not used for PUSCH transmission, i.e., determines a first set of resources for uplink muting, according to configuration and / or indication. Specifically, the configuration and / or indication information includes at least one of the following: at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and first parameters, wherein the information in the configuration and / or indication information can be determined or obtained in part or in whole by pre-agreement or high layer signaling, or can be obtained in part or in whole by network device (such as base station) configuration. In this embodiment, the first set of resources specifically includes at least one of time domain resources, frequency domain resources, and code domain resources. In some optional embodiments, the minimum resource unit included in the first set of resources is a resource element (RE), and the first set of resources can include one or more resource elements (REs). In some optional embodiments, the at least one first resource configuration specifically refers to the configuration of the resources not used for PUSCH transmission, or can also be referred to as the configuration of muting resources. In some optional embodiments, the first indication information can be downlink control information (DCI). In some optional embodiments of the present disclosure, for the terminal side: the terminal determines the first resource set not used for PUSCH transmission according to configuration and / or indication information, including: determining a first resource configuration from the at least one first resource configuration according to at least one of pre-agreement, high layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information and first indication information; determining a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information and PTRS configuration information; determining the first resource set as the second resource set, or determining the first resource set according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to a first parameter. Correspondingly, for the network device side: the configuration and / or indication information is used for the terminal to determine a first resource configuration from the at least one first resource configuration according to at least one of pre-agreement, high layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information and first indication information; determine a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information and PTRS configuration information; determine the first resource set as the second resource set, or determine the first resource set according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to a first parameter. In this embodiment, the terminal can select or determine one first resource configuration from at least one first resource configuration according to at least one of the following manners: a pre-agreement, high layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information, and first indication information. For example, the terminal can obtain at least one first resource configuration according to the pre-agreement or high layer signaling, or the network device configures at least one first resource configuration for the terminal. Then, the terminal can select or determine one first resource configuration from at least one first resource configuration according to the pre-agreement or high layer signaling, or select or determine one first resource configuration from at least one first resource configuration according to the indication of the first indication information, or select or determine one first resource configuration from at least one first resource configuration according to at least one of the following resource configuration conditions: PUSCH transmission resource information, DMRS configuration information, and PTRS configuration information. Further, the terminal determines a second resource set according to at least one of the following: the selected or determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information. For example, all resources in the second resource set are not used for PUSCH transmission, that is, all resources in the second resource set are used as mute resources. For another example, part of the resources in the second resource set are not used for PUSCH transmission, that is, part of the resources in the second resource set are used as mute resources. For another example, all resources in the second resource set are used for PUSCH transmission, that is, the mute resource set is an empty set. In some optional embodiments, the terminal determines the second resource set as the first resource set. It is noted that the following two expressions are completely equivalent: Expression 1: “determine a second resource set according to at least one of the following: the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information; determine the second resource set as the first resource set”; Expression 2: “determine a first resource set according to at least one of the following: the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information”. Although the expression 1 is used in the embodiments of the present disclosure, the embodiments of the present disclosure can also be regarded as protecting the expression 2. In other optional embodiments, the terminal can determine the first resource set according to the first code rate requirement and the second resource set, that is, “determine a second resource set according to at least one of the following: the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information; determine the first resource set according to the second resource set and the first code rate requirement”. In some optional embodiments, for the terminal side: determining the first resource set according to the second resource set and the first code rate requirement comprises: if the second resource set is not used for PUSCH transmission, determining the second resource set as the first resource set when the first code rate requirement is met; and / or, if the second resource set is not used for PUSCH transmission, determining the first resource set as an empty set when the first code rate requirement is not met; and / or, if part of the resources of the second resource set is not used for PUSCH transmission, determining the first resource set to include the part of the resources of the second resource set when the first code rate requirement is met. Correspondingly, for the network device side: if the second resource set is not used for PUSCH transmission, determining the second resource set as the first resource set when the first code rate requirement is met; and / or, if the second resource set is not used for PUSCH transmission, the first resource set is an empty set when the first code rate requirement is not met; and / or, if part of the resources of the second resource set is not used for PUSCH transmission, the first resource set includes the part of the resources of the second resource set when the first code rate requirement is met. In this embodiment, as an implementation (implementation 1), if the second resource set is not used for PUSCH transmission, i.e., in the case that all the resources of the second resource set are used for muting, the second resource set is determined as the first resource set when the first code rate requirement is met. That is, if the resources of the second resource set are determined to meet the first code rate requirement, the second resource set is determined as the first resource set. As another implementation (implementation 2), if the second resource set is not used for PUSCH transmission, and the first code rate requirement is not met, i.e., in the case that the resources of the second resource set are used for PUSCH transmission or uplink data transmission, the first resource set is an empty set without using uplink muting. For example, the muting function of PUSCH 2 in FIG. 4a is disabled, which can be implemented by implementation 2. As another implementation (implementation 3), if part of the second resource set is not used for PUSCH transmission, the first resource set includes the part of the second resource set not used for PUSCH transmission (i.e., the first resource set includes the first part of the resources), i.e., part of the muted resources (or symbols) in the second resource set is abandoned (i.e., the second part of the resources is muted so that the second part of the resources can be used for PUSCH transmission), the number of muted resources (or symbols) is reduced, and the first code rate requirement after reducing the muted resource overhead can be met, when the first code rate requirement is met, i.e., in the case that the first part of the resources in the second resource set is not used for PUSCH transmission and the second part of the resources is used for PUSCH transmission. In this embodiment, the network device and the terminal agree on that part of the second resource set is not used for PUSCH, i.e., part of the resources in the second resource set is muted, because if the resources in the second resource set are not used for PUSCH transmission, the code rate of the PUSCH transmission cannot meet the first code rate requirement, and therefore the terminal determines that the first part of the resources in the second resource set is not used for PUSCH transmission and the second part of the resources is used for PUSCH transmission according to the pre-agreed rule. It should be noted that the network device and the terminal use the same rule to determine that the first part of the resources in the second resource set is not used for PUSCH transmission and the second part of the resources is used for PUSCH transmission. In the above-mentioned implementation 3, if it is determined that the first code rate requirement is not met according to the resources in the second resource set, part of the resources in the second resource set can be removed and used for PUSCH transmission until the first code rate requirement is met. In some optional embodiments, removing part of the resources in the second resource set includes removing part of the muted symbols (i.e., making the time domain more sparse) and / or removing part of the frequency domain resources (e.g., changing the comb value on the muted symbols from 2 to 4 so that the frequency domain becomes more sparse). In an embodiment, for removing part of the muted symbols, the muted resources (or symbols) can be tried to be dropped one by one in a certain order until the first code rate requirement is met. The certain order can include any one of the following: 1) in a time order from front to back, i.e., the earlier muted resources (or symbols) are dropped first, which can reduce the impact on the uplink control information (UCI, Uplink Control Information); 2) in a time order from back to front, i.e., the later muted resources (or symbols) are dropped first, which avoids increasing the delay of initial demodulation. In the above case, the second resource set after removing part of the resources can be used as the first resource set. The first code rate requirement means that the PUSCH transmission or data transmission meets the first code rate requirement. The first code rate requirement can be determined according to the modulation and coding scheme (MCS, Modulation and Coding Scheme). In an embodiment, for removing part of the frequency domain resources, the muted resources of the second resource set use a comb value = 2 (i.e., mute 1 subcarrier in every 2 subcarriers). If the muted resource mode corresponding to the comb value = 2 cannot meet the first code rate requirement, the comb value can be gradually increased (such as set to 4 (indicating mute 1 subcarrier in every 4 subcarriers), 8, etc.) until the first code rate requirement is met, or the maximum allowed comb value (such as the maximum allowed comb value = 8) is reached. For example, for PUSCH 3 in FIG. 4a, there is only 1 muted symbol, and the method of removing part of the frequency domain resources can be used. In an embodiment, part of the time domain resources and part of the frequency domain resources can be removed at the same time, i.e., part of the time domain resources and part of the frequency domain resources are removed step by step in a certain order. For example, for PUSCH 1 in FIG. 4a and PUSCH 1 and PUSCH 3 in FIG. 4b, the second resource set includes 2 muted symbols, and the comb value = 2, denoted as <2 symbols, comb value = 2>. The UE can gradually remove part of the resources in the second resource set in the order of <2 symbols, comb value = 2>→<1 symbol, comb value = 2>→<1 symbol, comb value = 4>, or in the order of <2 symbols, comb value = 2>→<2 symbols, comb value = 4>→<1 symbol, comb value = 4>, until the first code rate requirement is met. In some optional embodiments, for the terminal side: the determining the second resource set according to at least one of the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information comprises: determining a third resource set according to the first resource configuration, wherein the first resource configuration comprises at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration; determining a PUSCH transmission resource set, and determining the second resource set according to at least one of the third resource set, the PUSCH transmission resource set, the DMRS configuration information, and the PTRS configuration information, wherein the second resource set satisfies at least one of the following: the second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set; the second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with a symbol of the DMRS and / or the PTRS. Correspondingly, for the network device side, the first resource configuration comprises at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration, so that the terminal determines a third resource set according to the first resource configuration, and determines a second resource set according to at least one of the third resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following: the second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set; the second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with a symbol of the DMRS and / or the PTRS. In this embodiment, the first resource configuration comprises at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration. Optionally, the first time domain configuration comprises at least one of a first period, a second offset, a bitmap corresponding to a symbol, and a time domain repetition mode. The first frequency domain configuration comprises at least one of a resource block (RB) resource set indication, a comb value, and a comb offset. The first enabling configuration comprises a first state indication or a second state indication; the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate whether or not the first function is used. In some optional embodiments, if the first resource configuration does not comprise any of the first time domain configuration, the first frequency domain configuration, and the first enabling configuration, the UE can determine the related configuration according to a pre-agreed manner. For example, if the first resource configuration does not include the first enabling configuration, the UE determines to use the uplink resource muting function in a pre-agreed manner; and / or, if the first resource configuration does not include the first frequency domain configuration, the UE determines that the resource block (RB) resource set occupies all UL subbands in a pre-agreed manner, and the comb value and the comb offset adopt default values, such as a comb value = 2 and a comb offset = 0. In this embodiment, the terminal can determine a third resource set according to the first resource configuration, and then determine a second resource set according to at least one of the third resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information. The second resource set has the following characteristics: the second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set, that is, the second resource set is the intersection of the third resource set and the PUSCH transmission resource set. That is, the second resource set = the third resource set ∩ the PUSCH transmission resource set, where "∩" represents the intersection of sets. For example, refer to FIG. 8a. As shown in FIG. 8a, in one embodiment, for PUSCH 1 and PUSCH 2, the third resource set includes muting pattern 1 and muting pattern 2. For PUSCH 1, the second resource set includes muting pattern 1 and muting pattern 2, because the intersection of PUSCH 1 and the third resource set is muting pattern 1 and muting pattern 2; and for PUSCH 2, the second resource set only includes muting pattern 2, because the intersection of PUSCH 2 and the third resource set is muting pattern 2. In this embodiment, the first resource configuration includes at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration. The first time domain configuration includes at least one of a first period, a second offset, a bitmap corresponding to a symbol, and a time domain repetition pattern. To configure the third resource set to include muting pattern 1 and muting pattern 2, one embodiment is that the first time domain configuration includes a first period and a bitmap corresponding to a symbol, where the first period = 4 slots, and the bitmap corresponding to a symbol is Wherein, the value of each bit indicates whether the corresponding symbol is a mute symbol, such as "1" indicating that the corresponding symbol is a mute symbol, and "0" indicating a non-mute symbol. Another embodiment is that the first time domain configuration at least includes: a time domain repetition pattern and a bitmap corresponding to symbols, wherein the time domain repetition pattern = [1, 1, 1, 1], which means that the third resource set is repeated periodically with 4 slots (equal to the length of the time domain repetition pattern), and the bitmap corresponding to symbols is still [00000010000000]. As shown in FIG. 8a, another possible embodiment is that the third resource set corresponding to PUSCH 1 includes muting pattern 1 and muting pattern 2, and the third resource set corresponding to PUSCH 2 only includes muting pattern 2. Based on the above rule that the second resource set is the intersection of the third resource set and the PUSCH transmission resource set, the effect shown in FIG. 8a can also be achieved. For PUSCH 1, the method of the last embodiment can be used to configure the third resource set to include muting pattern 1 and muting pattern 2. For PUSCH 2, in order to configure the third resource set to only include muting pattern 2, the following embodiment can be used: One embodiment is that the first time domain configuration includes: a first period, and a bitmap corresponding to symbols, wherein the first period = 1 slot, and the bitmap corresponding to symbols = [00000010000000]. Another embodiment is that the first time domain configuration at least includes: a time domain repetition pattern and a bitmap corresponding to symbols, wherein the time domain repetition pattern = [1], which means that the third resource set is repeated periodically with 1 slot (equal to the length of the time domain repetition pattern), and the bitmap corresponding to symbols is still [00000010000000]. If it is required to configure the third resource set to only include muting pattern 1, the following embodiment can be used: One embodiment is that the first time domain configuration includes: a first period, a second offset, and a bitmap corresponding to symbols, wherein the first period = 4 slots, the second offset = 0, and the bitmap corresponding to symbols = [00000010000000], which means that in the first slot of every 4 slots, the mute symbols are determined according to the symbol bitmap. Another embodiment is that the first time domain configuration at least includes: a time domain repetition pattern and a bitmap corresponding to symbols, wherein the time domain repetition pattern = [1, 1, 1, 1], which means that the third resource set is repeated periodically with 4 slots (equal to the length of the time domain repetition pattern), and the bitmap corresponding to symbols is still [00000010000000].

[1000] The bitmap corresponding to symbols is still [00000010000000], which means that the third resource set is repeated periodically with 4 slots (equal to the length of the time domain repetition pattern), and in the slot corresponding to the value 1 of the time domain repetition pattern, the mute symbols are determined according to the symbol bitmap. Alternatively, the second resource set has the following characteristics: the second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with the symbols of the DMRS and / or the PTRS, that is, the second resource set is the intersection of the remaining resources of the third resource set after excluding the resources occupied by the symbols of the DMRS and / or the PTRS and the PUSCH transmission resource set, that is, the symbols overlapping with the symbols of the DMRS and / or the PTRS are not used. That is: the second resource set = the third resource set ∩ the PUSCH transmission resource set - the DMRS symbol - the PTRS symbol, where "∩" represents the intersection of sets, and "-" represents the difference set of sets. In some optional embodiments, for the terminal side: the second resource set is determined according to at least one of the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information, including: determining a fourth resource set according to the first resource configuration, wherein the first resource configuration includes at least one of a second time domain configuration, a first frequency domain configuration, and a first enabling configuration; determining a PUSCH transmission resource set, and determining the second resource set according to at least one of the fourth resource set, the PUSCH transmission resource set, the DMRS configuration information, and the PTRS configuration information, wherein the second resource set satisfies at least one of the following: a time slot where the second resource set is located belongs to a time slot where the fourth resource set is located; a frequency domain resource position of the second resource set belongs to a frequency domain resource position of the fourth resource set; and a symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, a symbol of the DMRS, a symbol of the PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a second time domain configuration. Correspondingly, for the network device side, the first resource configuration includes at least one of a second time domain configuration, a first frequency domain configuration, and a first enabling configuration, so that the terminal determines a fourth resource set according to the first resource configuration, and determines a second resource set according to at least one of the fourth resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following: a time slot where the second resource set is located belongs to a time slot where the fourth resource set is located; a frequency domain resource position of the second resource set belongs to a frequency domain resource position of the fourth resource set; and a symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, a symbol of the DMRS, a symbol of the PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a second time domain configuration. In this embodiment, the first resource configuration includes at least one of a second time domain configuration, a first frequency domain configuration, a first enabling configuration. Optionally, the second time domain configuration includes at least one of a first period, a second offset, a time domain repetition pattern, a first interval, a first number, and at least one first offset. The first frequency domain configuration includes at least one of a resource block (RB) resource set indication, a comb value, and a comb offset. The first enabling configuration includes a first state indication or a second state indication. The first state indication has one value, and the one value is used to indicate that the first function is used. The second state indication has two values, and the two values are respectively used to indicate that the first function is used or not used. It can be seen that the fourth resource set can be determined independently according to the first resource configuration only, that is, the first resource configuration is independent of the PUSCH resource. The UE does not need to know the PUSCH resource to determine the fourth resource set independently according to the first resource configuration. In this embodiment, the fourth resource set includes at least one slot. Referring to FIG. 8a, if the fourth resource set only includes muting pattern 1, it means that there is 1 muting symbol in one of the 4 slots as the period; if the fourth resource set only includes muting pattern 2, it means that there is 1 muting symbol in each slot as the period; if the fourth resource set includes muting pattern 1 and muting pattern 2, it means that there are 2 muting symbols in one of the 4 slots as the period, and there are 2 muting symbols in the other 3 slots. In this embodiment, the symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, the symbol of the DMRS, the symbol of the PTRS, the first interval, the first number, and the at least one first offset. Specifically, the symbol position of the second resource set is within the PUSCH transmission resource set, or the symbol position of the second resource set is within the PUSCH transmission resource set and does not overlap with the symbol of the DMRS and / or the symbol of the PTRS, that is, the symbol position of the second resource set is within the PUSCH transmission resource set and excludes the resource occupied by the symbol of the DMRS and / or the symbol of the PTRS. In some optional embodiments, for the terminal side: the first resource configuration comprises at least one of a third time domain configuration, a second frequency domain configuration, a first enabling configuration; and the determining the second resource set according to at least one of the determined first resource configuration, the first indication information, DMRS configuration information, and PTRS configuration information comprises: determining the symbol position of the second resource set according to at least one of a PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or the third time domain configuration; and / or determining the frequency domain resource position of the second resource set according to the second frequency domain configuration or a prior agreement. Correspondingly, for the network device side, the first resource configuration comprises at least one of a third time domain configuration, a second frequency domain configuration, a first enabling configuration, for the terminal to determine the symbol position of the second resource set according to at least one of a PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or the third time domain configuration; and / or determining the frequency domain resource position of the second resource set according to the second frequency domain configuration or a prior agreement. In some embodiments, the first resource configuration comprises at least one of a third time domain configuration, a second frequency domain configuration, a first enabling configuration. Optionally, the third time domain configuration comprises at least one of a time domain repetition pattern, a first interval, a first number, and at least one first offset. The second frequency domain configuration comprises at least one of a comb value and a comb offset. The first enabling configuration comprises a first state indication or a second state indication, wherein the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate that the first function is used or not used. In this embodiment, the second resource set is determined according to at least one of the PUSCH transmission resource set, the symbol of the DMRS, the symbol of the PTRS, the first interval, the first number, and the at least one first offset, and specifically can include that the symbol position of the second resource set is within the PUSCH transmission resource set, or the symbol position of the second resource set is within the PUSCH transmission resource set and does not overlap with the symbol of the DMRS and / or the PTRS, that is, the symbol position of the second resource set is within the PUSCH transmission resource set and excludes the resource occupied by the symbol of the DMRS and / or the PTRS. It can be seen that the UE cannot independently determine a time-frequency resource set through the first resource configuration. The UE needs to jointly determine the second resource set through the first resource configuration and the PUSCH resource, that is, the RB used by the second resource set is determined according to the PUSCH resource, and the time-frequency resource of the second resource set in the corresponding RB is determined according to the first resource configuration. That is, the UE determines the RB set in which the muting resource is located according to the PUSCH frequency domain resource. The UE determines the slot in which the muting resource is located according to the PUSCH time domain resource, or the UE determines the slot in which the muting resource is located according to the PUSCH time domain resource and the first resource configuration. Referring to FIG. 8b, the RB resource of the muting resource corresponding to the PUSCH 1-PUSCH 5 is determined according to the frequency domain resource of the corresponding PUSCH, and the frequency domain resource (that is, the comb characteristic) of the muting resource in the RB is determined according to the second frequency domain configuration included in the first resource configuration or according to the pre-agreement (for example, the comb value is pre-agreed to be 2, and the comb offset is 0). For the PUSCH 1 and the PUSCH 2, only one slot is included in the PUSCH, so the slot in which the muting resource is located is completely determined by the slot of the corresponding PUSCH; for the repeatedly transmitted PUSCH 3, the same muting resource pattern set (that is, the muting pattern 1 and the muting pattern 2) is used in each slot, so the slot in which the muting resource is located is completely determined by the time domain resource of the corresponding PUSCH. For the repeatedly transmitted PUSCH 4 and the PUSCH 5, different slots use different muting resources, so the UE determines the slot in which the muting resource is located according to the first resource configuration and the PUSCH time domain resource. For example: For the repeatedly transmitted PUSCH 4, the first resource configuration includes a third time domain configuration, the third time domain configuration includes a time domain repetition mode, and the time domain repetition mode is

[1010] , which indicates that there is a muting symbol in the second slot and the fourth slot in every four slots; For the repeated PUSCH 5, the first resource configuration includes a third time domain configuration, the third time domain configuration includes a time domain repetition pattern, the time domain repetition pattern is

[1000] represents that there is a mute symbol in the first slot of every 4 slots; or the time domain repetition pattern = the first value, which means that there is a mute symbol in the first PUSCH occasion. In some optional embodiments, for the terminal side: the determining, according to at least one of the set of PUSCH transmission resources, the symbol of the DMRS, the symbol of the PTRS, the first interval, the first number and the at least one first offset, of the symbol position of the second resource set comprises: if the symbol satisfies the first condition and the second condition, determining that the symbol belongs to the second resource set, wherein the first condition comprises: the symbol is located in the PUSCH transmission resource, and does not overlap with the time domain position of the symbol of the DMRS and / or the symbol of the PTRS; and / or, the second condition comprises at least one of: The symbol is a first symbol; The symbol is a second symbol, which is determined according to the first symbol and at least one first offset; The symbol is a third symbol, which is the first symbol after the first symbol that satisfies the first condition; The symbol is a fourth symbol, which is the first symbol after the second symbol that satisfies the first condition; The symbol is a fifth symbol, which has an interval with the symbol located in the second resource set and before and / or after the fifth symbol, and satisfies the third condition, the interval being greater than or equal to the first interval; Wherein, the third condition comprises one of: The number of symbols in the second resource set is less than or equal to the first number; The number of symbols contained in the second resource set in the slot where the fifth symbol is located is less than or equal to the first number; The number of symbols contained in the second resource set in the PUSCH transmission occasion where the fifth symbol is located is less than or equal to the first number. In some optional embodiments, the first symbol satisfies one of the following conditions: The first symbol is the first symbol of the slot; The first symbol is the first symbol of each slot that overlaps with the PUSCH in time domain; The first symbol is the first symbol of the PUSCH; The first symbol is the first symbol of the PUSCH in each slot that overlaps with the PUSCH in time domain; The first symbol is a first symbol of each PUSCH transmission occasion. The first symbol is a first symbol of a first slot of each PUSCH transmission occasion. The first symbol is a first symbol of PUSCH in each slot that overlaps in time domain with each PUSCH transmission occasion. Correspondingly, for the network device side, if a symbol satisfies a first condition and a second condition, the symbol belongs to a second resource set, wherein the first condition comprises: the symbol is located in a PUSCH transmission resource and does not overlap in time domain with a symbol of DMRS and / or a symbol of PTRS; and / or the second condition comprises at least one of the following: the symbol is a first symbol; the symbol is a second symbol, the second symbol being determined according to the first symbol and at least one first offset; the symbol is a third symbol, the third symbol being a first symbol that satisfies the first condition after the first symbol; the symbol is a fourth symbol, the fourth symbol being a first symbol that satisfies the first condition after the second symbol; the symbol is a fifth symbol, the fifth symbol having an interval with a symbol located in the second resource set and before and / or after the fifth symbol greater than or equal to a first interval, and satisfying a third condition; wherein the third condition comprises one of the following: a number of symbols in the second resource set is less than or equal to a first number; a number of symbols contained in the second resource set in a slot where the fifth symbol is located is less than or equal to the first number; a number of symbols contained in the second resource set in a PUSCH transmission occasion where the fifth symbol is located is less than or equal to the first number. In this embodiment, if a symbol satisfies a first condition and a second condition, it is determined that the symbol belongs to a second resource set, wherein the first condition comprises: the symbol is located in a PUSCH transmission resource and does not overlap in time domain with a symbol of DMRS and / or a symbol of PTRS. In one embodiment, the second condition comprises at least one of the following: the symbol is a first symbol. As shown in the embodiment of example 1A in FIG. 9, the first symbol is a first symbol of a slot. As shown in the embodiment of example 1B in FIG. 9, the first symbol is a first symbol of PUSCH. In another embodiment, the second condition comprises at least one of the following: the symbol is a second symbol, the second symbol being determined according to the first symbol and at least one first offset. In this embodiment, the symbol is a second symbol, and the second symbol is determined according to the first symbol and at least one first offset. As an example, the second symbol is determined according to M first symbols and one first offset, i.e., each first symbol is delayed by the first offset, to determine M second symbols. As another example, the second symbol is determined according to M first symbols and M first offsets, i.e., each first symbol is delayed by the corresponding first offset, to determine M second symbols. As yet another example, the second symbol is determined according to M first symbols and N first offsets, e.g., M first symbols and 2 first offsets, each first symbol corresponds to 2 first offsets, i.e., each first symbol is delayed by the corresponding 2 first offsets, to determine 2M second symbols. As yet another example, the second symbol is determined according to M first symbols and 2M first offsets, each first symbol is delayed by the corresponding 2 first offsets, to determine 2M second symbols. In the embodiment shown in Example 2 in FIG. 9, the first symbol is the first symbol (symbol #0) of the slot, and the network indicates 2 first offsets, 2 and 13 respectively, and then the UE determines that the second resource set includes symbol 2 (#0+2) and symbol 13 (#0+13). In yet another embodiment, the second condition includes at least one of the following: the symbol is a third symbol, and the third symbol is the first symbol after the first symbol that satisfies the first condition. In the embodiment shown in Example 3 in FIG. 9, the first symbol is the first symbol (symbol #0) of the slot, and the third symbol is symbol #1, i.e., the first symbol after the first symbol that satisfies the first condition. In yet another embodiment, the second condition includes at least one of the following: the symbol is a fourth symbol, and the fourth symbol is the first symbol after the second symbol that satisfies the first condition. In the embodiment shown in Example 4 in FIG. 9, the UE determines the second symbol to be symbol #10 (the second symbol is determined according to the first symbol and at least one first offset) according to the first offset (first offset = 10) indicated by the network and the first symbol (the first symbol is the first symbol of the slot, symbol #0). Since the determined second symbol (symbol #10) does not satisfy the first condition because there is no DMRS or PTRS in the symbol #10, the UE determines that symbol #11 is the fourth symbol (symbol #11 is the first symbol after the second symbol (symbol #10) that satisfies the first condition), and therefore symbol #11 is a silent resource. In one embodiment, the second condition includes at least one of the following: the symbol is a fifth symbol, and the interval between the fifth symbol and the symbol located in the second resource set and before and / or after the fifth symbol is greater than or equal to the first interval, and the fifth symbol satisfies the third condition. The third condition includes one of the following: a number of symbols in the second resource set is less than or equal to the first number in the slot where the fifth symbol is located; a number of symbols in the second resource set is less than or equal to the first number in the slot where the fifth symbol is located; a number of symbols in the second resource set is less than or equal to the first number in the slot where the fifth symbol is located. In this embodiment, the symbol is the fifth symbol, the interval between the fifth symbol and the symbol located in the second resource set and before and / or after the fifth symbol is greater than or equal to the first interval, and the third condition is met, specifically referring to: for a symbol A determined to belong to the second resource set, if the interval between a certain symbol and symbol A is greater than the first interval and meets the third condition, it is determined that the symbol meets the second condition. As shown in the embodiment of example 5 in FIG. 9, it is determined that symbol #1 (the third symbol) is located in the second resource set. The network indicates that the first interval = 4. The UE determines that the interval between symbol #5 and symbol #1 >= the first interval (= 4) and meets the third condition, so it is determined that symbol #5 is the fifth symbol, and symbol #5 is a silent resource. In an embodiment, the determining the symbol position of the second resource set according to at least one of the PUSCH transmission resource set, the symbol of the DMRS, the symbol of the PTRS, the first interval, the first number and at least one first offset includes the following embodiments: Method one: The interval Lm (i.e. the first interval) of the silent symbol position can be determined by high layer configuration or pre-agreed manner. According to the following steps, the symbol set of the silent resource (i.e. the second resource set) is determined. Step 1: set l m = 0, where l = 0 represents the first symbol in the slot (Note: i.e. l m = 0 is the first symbol, and the first symbol is the first symbol of the slot); or, set l m = s PUSCH , where s PUSCH represents the first symbol of the PUSCH (Note: i.e. l m = 0 is the first symbol, and the first symbol is the first symbol of the PUSCH); Step 2: Condition 2A: if l m is located inside the PUSCH allocation, and l mnot overlaps with a symbol used for DM-RS or PT-RS, or, not overlaps with DM-RS or PT-RS in time domain), then set l m to the set of symbols of the muted resource, set l m m = l m + Lm (Note: i.e. determine the fifth symbol according to l m + Lm, which is located in the second set of resources, and the interval of the symbol before and / or after the fifth symbol is greater than or equal to the first interval Lm, and satisfies the third condition). Repeat Step 2; Or, condition 2B: if l m is located inside the PUSCH allocation, but l m overlaps with a symbol used for DM-RS or PT-RS, or, overlaps with DM-RS or PT-RS in time domain), then set l m = l m + 1 (Note: i.e. search for the third symbol or the fourth symbol or the fifth symbol. If is the first symbol, and satisfies the first condition, then is the third symbol. If is the second symbol, and satisfies the first condition, then is the fourth symbol. If the l determined after executing the steps of condition 2A does not satisfy the first condition, and satisfies the first condition, then is the fifth symbol). Repeat Step 2; Or, condition 2C: if l m is not located in the PUSCH, or l m > the last symbol of the PUSCH, then end the above process. Method two: The starting symbol position {p i} i=0,1,… (Note: p i is the first offset). Optionally, the terminal can determine the interval Lm of the muting symbol positions by higher layer configuration or pre-agreement. The symbol set of the muting resource (Note: i.e. the second resource set) is determined according to the following steps. Let p i ≤p j , if i≤j. If the above constraint is not satisfied, {p i} i=0,1,… Sort in ascending order until the condition p i ≤p j , if i≤j is satisfied. Let {p i}i=0,1,…I-1. Step 1: Set i=0; Set l m =p i , where l=0 represents the first symbol in the slot (Note: if l m satisfies the first condition, l m is the second symbol, which is determined according to the first symbol and at least one first offset p i ); Step 2: If l m is not located in PUSCH, or l m >PUSCH last symbol, end all processes; Or, if l m >p_(i+1), and i≤I-2, set l m =p i+1 , repeat step 2; Or, if l m does not overlap with a symbol used for DM-RS or PT-RS (or, not overlaps with DM-RS or PT-RS in time domain), add l m to the symbol set of the muting resource, set l m =l m +Lm. Repeat step 2; Or, if l ml = s + p, if i < j. If the above constraint is not satisfied, set {p m} m +1. Repeat step 2. Method three: The starting symbol position {p i} i=0,1,…} of the at least one muting resource can be determined by higher layer configuration or pre-agreement. The interval Lm of the muting symbol position can be determined by higher layer configuration or pre-agreement. The symbol set of the muting resource (Note: i.e. the second resource set) is determined according to the following steps. Let {p i ≤p j , if i < j. If the above constraint is not satisfied, set {p i} i=0,1,… Sort them in ascending order until the condition p i ≤p j , if i < j is satisfied. Let {p i}i = 0, 1, … I-1. Step 1: Set i = 0; Set l m = s PUSCH +p i , where l m = s PUSCH denotes the first symbol of PUSCH; Step 2: If l m is not located in PUSCH, or l m > the last symbol of PUSCH, end all processes; Or, if l m > s PUSCH +p i+1 , and i < I-2, set l m = s PUSCH +p i+1 . Repeat step 2; Or, if l m does not overlap with a symbol used for DM-RS or PT-RS, or does not overlap with DM-RS or PT-RS in time domain, add l mIn the symbol set of the quiet resource, set l m = l m = l m + Lm. Repeat step 2. Or, if l m Overlaps with a symbol used for DM-RS or PT-RS, or, overlaps with DM-RS or PT-RS in time domain, set l m = l m + 1. Repeat step 2. In this embodiment, the PUSCH transmission occasion includes but is not limited to: the transmission occasion of PUSCH repetition Type A, or the actual repetition of PUSCH repetition Type B. In some optional embodiments, for the terminal side: the second resource set is determined according to at least one of the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information, including: determining the second resource set according to the first resource configuration and the PUSCH transmission resource set, wherein the first resource configuration includes at least one of a fourth time domain configuration, a second frequency domain configuration, and a first enabling configuration. Correspondingly, for the network device side, the first resource configuration includes at least one of the fourth time domain configuration, the second frequency domain configuration, and the first enabling configuration, so that the terminal determines the second resource set according to the first resource configuration and the PUSCH transmission resource set. In this embodiment, the first resource configuration includes at least one of the fourth time domain configuration, the second frequency domain configuration, and the first enabling configuration. Optionally, the third time domain configuration includes at least one of: the fourth time domain configuration includes at least one of: a bitmap corresponding to a symbol, a time domain repetition pattern. The second frequency domain configuration includes at least one of: a comb value, a comb offset. The first enabling configuration includes: a first state indication or a second state indication; wherein the first state indication has one value, and the one value is used to indicate the use of the first function; the second state indication has two values, and the two values are respectively used to indicate the use or non-use of the first function. In this embodiment, the determining the second resource set according to the first resource configuration and the PUSCH transmission resource set comprises: determining the RB and / or time slot in which the second resource set is located according to the PUSCH transmission resource set. That is, the first resource set not used for PUSCH transmission is related to the PUSCH transmission resource, that is, the PUSCH transmission resource set includes at least one RB and / or time slot. It can be seen that the UE cannot independently determine a time-frequency resource set through the first resource configuration. The UE needs to jointly determine the first resource configuration and the PUSCH resource to determine the second resource set, that is, the RB used by the second resource set is determined according to the PUSCH resource, and the time-frequency resource of the second resource set in the corresponding RB is determined according to the first resource configuration. That is, the UE determines the RB set in which the muting resource is located according to the PUSCH frequency domain resource. The UE determines the time slot in which the muting resource is located according to the PUSCH time domain resource; or the UE determines the time slot in which the muting resource is located according to the PUSCH time domain resource and the first resource configuration. Referring to FIG. 8b, the RB resource of the muting resource corresponding to PUSCH 1-PUSCH 5 is determined according to the frequency domain resource of the corresponding PUSCH, and the frequency domain resource (that is, the comb characteristic) of the muting resource in the RB is determined according to the second frequency domain configuration included in the first resource configuration or according to the pre-agreement (for example, the comb value is 2 and the comb offset is 0). For PUSCH 1, only one slot is included in the PUSCH, so the slot in which the muting resource is located is completely determined by the time slot of the corresponding PUSCH. The fourth time domain configuration includes a bitmap corresponding to the symbol. For example, the symbol bitmap is [00100010000000]. For PUSCH 2, only one slot is included in the PUSCH, so the slot in which the muting resource is located is completely determined by the time slot of the corresponding PUSCH. The fourth time domain configuration includes a bitmap corresponding to the symbol. For example, the symbol bitmap is [00000010000000]. For the repeatedly transmitted PUSCH 3, the same muting resource pattern set (that is, Muting pattern 1 and Muting pattern 2) is used in each slot, so in an embodiment, the slot in which the muting resource is located is completely determined by the time domain resource of the corresponding PUSCH. For example, the fourth time domain configuration only includes a bitmap corresponding to the symbol. For example, the symbol bitmap is [00100010000000]. That is, all time slots of all PUSCHs determine the muting symbol according to the symbol bitmap. For the PUSCH 3 of the repeated transmission, in another embodiment, the UE determines the slot in which the muting resource is located according to the first resource configuration and the PUSCH time domain resource. The fourth time domain configuration includes: a bitmap corresponding to a symbol and a time domain repetition mode. Wherein, the time domain repetition mode is

[1111] , which means that there is a muting symbol in each of the 4 slots; or the time domain repetition mode = the second value, which means that there is a muting symbol in each PUSCH occasion. Wherein, in each slot in which there is a muting symbol, the muting symbol is determined according to the symbol bitmap. For the PUSCH 4 of the repeated transmission, the muting resources used by different slots are different, so the UE determines the slot in which the muting resource is located according to the first resource configuration and the PUSCH time domain resource. For the PUSCH 4 of the repeated transmission, the first resource configuration includes the fourth time domain configuration, and the fourth time domain configuration includes: a bitmap corresponding to a symbol and a time domain repetition mode, and the time domain repetition mode is

[1010] , which means that there is a muting symbol in the first and third slots of every 4 slots; and the symbol bitmap is [00100010000000], which means that in each slot in which there is a muting symbol, the muting symbol is determined according to the symbol bitmap. For the PUSCH 5 of the repeated transmission, the muting resources used by different slots are different, so the UE determines the slot in which the muting resource is located according to the first resource configuration and the PUSCH time domain resource. For the PUSCH 5 of the repeated transmission, the first resource configuration includes the fourth time domain configuration, and the fourth time domain configuration includes: a bitmap corresponding to a symbol and a time domain repetition mode, and the time domain repetition mode is

[1000] , which means that there is a muting symbol in the first slot of every 4 slots; or the time domain repetition mode = the first value, which means that there is a muting symbol in the first PUSCH occasion. The symbol bitmap is [00100010000000], which means that in each slot in which there is a muting symbol, the muting symbol is determined according to the symbol bitmap. It should be noted that the PUSCH transmission resource set in each embodiment of the present disclosure can be determined by DCI, or can be determined by other ways, and the determination mode of the PUSCH transmission resource set is not limited in the present embodiment. It should be noted that the first indication information (such as DCI) can dynamically indicate the mute resource (i.e. the resource not used for transmitting PUSCH transmission), which can flexibly adapt to the dynamically changing interference situation; the mute resource (i.e. the resource not used for transmitting PUSCH transmission) can be determined by at least one of the PUSCH transmission resource set, the symbol of DMRS, and the symbol of PTRS, which can avoid DMRS and / or PTRS symbol. Both methods can be used alone or in combination. In some optional embodiments of the present disclosure, for the terminal side: the determining one first resource configuration from the at least one first resource configuration according to at least one of the PUSCH transmission resource information, the DMRS configuration information, the PTRS configuration information, and the first indication information comprises: determining one first resource configuration from the at least one first resource configuration according to the time domain information of the PUSCH transmission resource; or, determining one first resource configuration from the at least one first resource configuration according to the DMRS configuration information and / or the PTRS configuration information; or, determining a first index according to a first indication field of the first indication information, and determining one first resource configuration from the at least one first resource configuration according to the first index, wherein the first indication field is related to PUSCH time domain resource allocation; or, determining a second index according to part of bits of a second indication field of the first indication information, and determining one first resource configuration from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation. Correspondingly, for the network device side, the configuration and / or indication information is used for the terminal to determine one first resource configuration from the at least one first resource configuration according to the time domain information of the PUSCH transmission resource; or, to determine one first resource configuration from the at least one first resource configuration according to the DMRS configuration information and / or the PTRS configuration information; or, a first indication field of the first indication information is used for the terminal to determine a first index, and to determine one first resource configuration from the at least one first resource configuration according to the first index, wherein the first indication field is related to PUSCH time domain resource allocation; or, part of bits of a second indication field of the first indication information is used for the terminal to determine a second index, and to determine one first resource configuration from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation. In some embodiments, one first resource configuration is determined from the at least one first resource configuration according to the time domain information of the PUSCH transmission resource. As shown in FIG. 4a, the mapping relationship between the time length of the PUSCH transmission resource and the mute resource is obtained or determined by pre-agreement and high layer signaling For example, a pre-agreed PUSCH disabling muting operation has a duration of less than or equal to 2 symbols, thus PUSCH 2 is muted. For example, for a PUSCH transmission with a duration of 7 symbols, the muting is performed in the 2nd symbol after the start symbol of the PUSCH. Since the start symbol of PUSCH 3 is symbol #7, the muting symbol of PUSCH 3 is symbol #9 (symbol #7 + 2). In some embodiments, one first resource configuration is determined from the at least one first resource configuration according to the DMRS configuration information and / or the PTRS configuration information. For example, the network configures multiple first resource configurations through higher layer signaling. The UE determines one first resource configuration from the at least one first resource configuration, which satisfies the following condition: The second resource set determined according to the first resource configuration does not overlap with the symbols of DMRS and / or PTRS of the PUSCH. As shown in FIG. 4a, the DMRS symbol positions of PUSCH 1 are symbol #0 and symbol #10. For example, the UE is configured with 2 first resource configurations, in which the muting symbols determined according to the first first resource configuration include symbol #2 and symbol #10, and the muting symbols determined according to the second first resource configuration include symbol #2 and symbol #13. It can be seen that the first first resource configuration cannot satisfy the condition that the second resource set determined according to the first resource configuration does not overlap with the symbols of DMRS and / or PTRS of the PUSCH, while the second first resource configuration can satisfy the condition that the second resource set determined according to the first resource configuration does not overlap with the symbols of DMRS and / or PTRS of the PUSCH, thus the UE determines the second first resource configuration from the at least one first resource configuration. In some embodiments, one first resource configuration is determined from the at least one first resource configuration according to the first indication information. As shown in FIG. 4b, if the base station has measured the required interference correlation matrix characteristics in the unscheduled UL resource, PUSCH 2 can be scheduled without resource muting. The base station can also schedule PUSCH 1 and PUSCH 3 to adopt different muting patterns to obtain interference correlation matrix characteristics on different symbols. Thus in the inter-subband interference application scenario as shown in FIG. 4b, the base station can be allowed to flexibly schedule which PUSCH to perform resource muting and disable which resources (i.e. resources not used for transmitting PUSCH transmission) based on the first indication information (such as DCI) to flexibly adapt to the dynamically changing interference situation. For example, the PUSCH time domain resource of the terminal is different due to different interference conditions on different slots (e.g., some slots have SSB or CSI-RS, and some slots do not have SSB or CSI-RS), and the first indication information can be used to flexibly indicate or configure the muting resource, so as to flexibly adapt to different interference conditions and PUSCH scheduling conditions. For example, the first indication information is DCI, and the first resource configuration can be indicated or configured by the first indication field or the second indication field in the DCI. In some embodiments, a first index is determined according to the first indication field of the first indication information, and a first resource configuration is determined from the at least one first resource configuration according to the first index, wherein the first indication field is related to PUSCH time domain resource allocation. As an example, the first indication field can be a time domain resource allocation (Time domain resource assignment) field related to PUSCH time domain resource allocation, and the value of the first indication field is the first index or corresponds to the first index; and the terminal can select or determine a first resource configuration from the at least one first resource configuration according to the first index. In some embodiments, a second index is determined according to part of the bits of the second indication field of the first indication information, and a first resource configuration is determined from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation. As an example, the second indication field can be a frequency domain resource allocation (Frequency domain resource assignment) field related to PUSCH frequency domain resource allocation. For example, in scenario 2 shown in FIG. 1, i.e., in the SBFD-only networking scenario, inter-subband CLI between base stations will only exist when UL transmission is performed on SBFD symbols. However, the UL subband bandwidth on the SBFD symbol is usually smaller than the bandwidth of the UL BWP. Table 1 As shown in Table 1, assuming that the uplink (UL) part bandwidth (BWP, Band Width Part) is 100 MHz, N_RBG=273 under 30 kHz subcarrier spacing (SCS, Sub-Carrier Spacing). If resource allocation type 1 is used, the Frequency domain resource assignment (abbreviated as FDRA) field in the DCI needs to occupy If the UL BWP is 20MHz, N_RBG = 51 at 30kHz SCS, and if resource allocation type 1 is used, the FDRA field in the DCI needs to occupy 11 bits. In typical application scenarios, the bandwidth of the UL BWP and the UL SBFD subband is different. Limited by the DCI size alignment restriction, the DCI size for scheduling UL symbol transmission and scheduling UL SBFD subband transmission is the same. Therefore, there are some redundant bits in the DCI size or the FDRA field (i.e., the second indication field) for scheduling UL SBFD subband transmission, and these redundant bits (i.e., part of the bits of the second indication field) can be used to carry information for determining the first resource configuration. For example, if the FDRA field size determined according to the UL BWP is M1 bits, and the FDRA field size determined according to the bandwidth of the UL SBFD subband is M2 bits, (M1-M2) most significant bits (MSB) or (M1-M2) least significant bits (LSB) in the FDRA field can be used as part of the bits of the second indication field to carry information for determining the first resource configuration. In some optional embodiments, for the terminal side: the method further includes: determining whether the first resource set is empty according to a first bit in a second indication field of the first indication information, wherein the second indication field is related to PUSCH frequency domain resource allocation, or determining whether the first resource set is empty according to the PUSCH transmission resource information. Correspondingly, for the network device side, the first bit in the second indication field of the first indication information is used for the terminal to determine whether the first resource set is empty, wherein the second indication field is related to PUSCH frequency domain resource allocation; or whether the first resource set is empty is determined by the terminal according to the PUSCH transmission resource information. In this embodiment, as an implementation manner, whether the first resource set is empty is determined according to a first bit in a second indication field of the first indication information, wherein the second indication field is related to PUSCH frequency domain resource allocation. For example, as shown in FIG. 4b, if the traffic of SBFD is not full load, the network device can estimate the interference related matrix in the REs not used by UL transmission or PUSCH transmission (i.e. idle REs), at this time, it is not necessary to mute part of the REs in all PUSCHs, therefore, it is beneficial to allow the network device to dynamically schedule / enable the mute of PUSCH resource (i.e. avoid the throughput loss of the scheduled UL transmission or PUSCH transmission). Therefore, the base station can dynamically indicate whether the first resource set is empty through the first indication information (such as DCI). In this embodiment, the terminal can also determine whether the first resource set is empty according to the first bit in the second indication field, that is, determine whether to apply the mute function through the first bit in the second indication field. As an example, the first bit has a value, indicating that the first resource set is empty, that is, the mute function is determined to be applied through the value of the first bit in the second indication field. As another example, the first bit has two values, respectively indicating that the first resource set is empty or not empty, and whether to apply the mute function is determined through the two values of the first bit in the second indication field, respectively. As another implementation, whether the first resource set is empty is determined according to the PUSCH transmission resource set. As shown in FIG. 4a, for the mini-slot level uplink transmission PUSCH 2, since the PUSCH 2 has only 2 symbols, if the mute resource is applied, the code rate of the PUSCH 2 will be greatly improved, and the decoding performance of the PUSCH 2 will be deteriorated. Therefore, by pre-agreement and high layer signaling, the relationship between the duration of the PUSCH transmission resource (such as occupying several symbols) and whether to disable the mute function is determined. For example, it is pre-agreed that the PUSCH with a duration less than or equal to 2 symbols disables the mute operation, therefore, the mute function of the PUSCH 2 is disabled. In some optional embodiments, for the terminal side, the determining a first resource configuration from the at least one first resource configuration according to the first index comprises: determining a first information element (IE) according to the first index, and determining a first resource configuration according to the first IE; the first IE is related to time domain resource allocation; the first IE includes the first resource configuration and / or the index of the first resource configuration; and / or, the determining a first resource configuration from the at least one first resource configuration according to the second index comprises: determining a second IE according to the second index, and determining a first resource configuration according to the second IE; wherein, the second IE includes the first resource configuration and / or the index of the first resource configuration. Correspondingly, for the network device side, a first indication field of the first indication information is used by the terminal to determine a first index, a first IE is determined according to the first index, a first resource configuration is determined according to the first IE; the first IE is related to time domain resource allocation; the first IE includes the first resource configuration and / or an index of the first resource configuration; and / or, part of bits of a second indication field of the first indication information is used by the terminal to determine a second index, a second IE is determined according to the second index, a first resource configuration is determined according to the second IE; wherein the second IE includes the first resource configuration and / or an index of the first resource configuration. In this embodiment, as an implementation manner, taking the first indication information as DCI as an example, a first indication field of the first indication information is a time domain resource allocation (Time domain resource assignment) field, and the first index is a value of the time domain resource allocation (Time domain resource assignment) field. The first indication field is associated with a PUSCH-TimeDomainResourceAllocationList IE, and the PUSCH-TimeDomainResourceAllocationList IE includes at least one PUSCH-TimeDomainResourceAllocation IE. The terminal selects one PUSCH-TimeDomainResourceAllocation IE from the at least one PUSCH-TimeDomainResourceAllocation IE according to the first index, and the PUSCH-TimeDomainResourceAllocation IE includes the first resource configuration and / or an index of the first resource configuration. A specific code example can be as follows: PUSCH-TimeDomainResourceAllocationList-r19::=SEQUENCE(SIZE(1..maxNrofUL-Allocations-r19))OF PUSCH-TimeDomainResourceAllocation-r19 The first resource configuration and / or the index of the first resource configuration are included in the PUSCH-TimeDomainResourceAllocation IE, including that the first resource configuration and / or the index of the first resource configuration are directly included in the PUSCH-TimeDomainResourceAllocation IE, or the first resource configuration and / or the index of the first resource configuration are included in other IEs included in the PUSCH-TimeDomainResourceAllocation IE. In this embodiment, as an implementation manner, the first indication field of the first indication information is associated with a new IE (a first IE). Taking the first indication information as DCI as an example, the first resource configuration and / or the index of the first resource configuration are added in the PUSCH-TimeDomainResourceAllocation or in the PUSCH-Allocation IE included in the PUSCH-TimeDomainResourceAllocationList IE, to indicate the mute resource configuration. The first resource configuration includes time domain resource configuration and / or frequency domain resource configuration. For example, the first resource configuration and / or the index of the first resource configuration are directly included in the PUSCH-TimeDomainResourceAllocation IE, including: For another example, the first resource configuration and / or the index of the first resource configuration are included in other IEs included in the PUSCH-TimeDomainResourceAllocation IE, including: In the above embodiment, the first resource configuration includes at least one of the following: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, and a fourth time domain configuration. In the above example, the first enabling configuration is used to determine whether to use the mute function (or the first function). Any one of the first time domain configuration, the second time domain configuration, the third time domain configuration, and the fourth time domain configuration is used to determine the time domain configuration (time domain configuration of mute resource) that is not used for PUSCH transmission. The first frequency domain configuration or the second frequency domain configuration is used to determine the frequency domain configuration (frequency domain configuration of mute resource) that is not used for PUSCH transmission. In this embodiment, the first IE (such as the aforementioned PUSCH-TimeDomainResourceAllocation IE, or other IE included in the PUSCH-TimeDomainResourceAllocation IE) includes the first resource configuration and / or the index of the first resource configuration. It can be understood that the following several expression manners are equivalent and are all protected by this patent: Manner 1: Manner 2: Manner 3: Manner 4: Manner 5: In some other embodiments, a second index is determined according to part of bits of a second indication field of the first indication information, and a first resource configuration is determined from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation. The determining of the first resource configuration from the at least one first resource configuration according to the second index includes: determining a second information element IE according to the second index, and determining a first resource configuration according to the second information element IE, wherein the second information element IE includes the first resource configuration and / or the index of the first resource configuration. For example, the code implementation of the second IE can be as follows: It can be understood that the following several expression manners are equivalent and are all protected by this patent: Manner 1: Manner 2: Manner 3: Manner 4: The second IE is the index of the first resource configuration IE. Manner 5: In some optional embodiments, if the part of bits of the second indication field of the first indication information is 0, i.e., there is no redundant bit in the second indication field of the first indication information, the terminal determines a first resource configuration from the at least one first resource configuration, including any one of the following methods: taking the first configuration in the at least one first resource configuration as the determined first resource configuration, or selecting a default configuration as the first resource configuration according to a protocol agreement. In some optional embodiments, the first resource configuration includes at least one of the following: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, and a fourth time domain configuration; wherein the first enabling configuration includes a first state indication or a second state indication; wherein the first state indication has one value, and the one value is used to indicate using a first function; the second state indication has two values, and the two values are respectively used to indicate using or not using the first function. In the embodiments, the first state indication has one value, and the terminal can determine using the first function according to the value of the first state indication. The second state indication has two values, and the terminal can determine using or not using the first function according to the two values of the second state indication. Wherein, using the first function means that the first resource set is not used for PUSCH transmission, and not using the first function means that the first resource set is used for PUSCH transmission. Wherein, the first function can also be referred to as uplink muting function or resource muting function. In some optional embodiments, the first frequency domain configuration includes at least one of the following: resource block (RB) resource set indication, comb value, and comb offset. Exemplarily, the resource block (RB) resource set indication includes at least one of the following: RB-level bitmap, RBG-level bitmap, BWP-level bitmap, start RB offset and continuously allocated RB length, and RIV value. In some optional embodiments, the second frequency domain configuration includes at least one of the following: comb value and comb offset. In some optional embodiments, the first time domain configuration includes at least one of the following: first period, second offset, bitmap corresponding to symbol, and time domain repetition mode. Exemplarily, 1 in the bitmap means that part of REs in the corresponding symbol are not used for PUSCH transmission (or muting), and 1 in the bitmap means that part of REs in the corresponding symbol are used for PUSCH transmission. In this embodiment, as the first implementation, the first time-domain configuration includes a bitmap corresponding to symbols. The usage of each symbol in N slots is indicated by bitmap, for example, N = 1, 2, etc. The second resource set is repeated periodically in N slots. It should be noted that for normal cyclic prefix (CP) configuration, 14 symbols are included in each slot. For extended CP (ECP) configuration, 12 symbols are included in each slot. Taking the normal CP configuration as an example, in order to indicate the usage of each symbol in N slots, the first resource configuration needs to use: 14*N bits. According to the above method, as shown in FIG. 8a, if Muting pattern 1 is to be determined by the first time-domain configuration, that is, symbol #2 in the first slot in every 4 slots is muted, a bitmap corresponding to symbols can be configured: bitmap = [00000010000000]. Since the usage of each symbol in 4 slots is indicated by bitmap, the second resource set is repeated periodically in 4 slots. If Muting pattern 2 is to be determined by the first time-domain configuration, that is, symbol #6 in each slot is muted, a bitmap corresponding to symbols can be configured: bitmap = [00000010000000]. Since the usage of each symbol in 1 slot is indicated by bitmap, the second resource set is repeated periodically in 1 slot. If Muting pattern 1 + Muting pattern 2 is to be determined by the first time-domain configuration, that is, symbol #2 and symbol #6 in the first slot in every 4 slots are muted, and symbol #6 in other slots, a bitmap corresponding to symbols can be configured: bitmap = [00000010000000]. Since the usage of each symbol in 4 slots is indicated by bitmap, the second resource set is repeated periodically in 4 slots. As a second embodiment, the first time domain configuration includes a symbol level bitmap and a time domain repetition pattern. The usage of each symbol in N slots is indicated by the bitmap; the repetition property of the pattern defined by the symbol level bitmap in time domain (A time domain repetition pattern at which the pattern defined by the symbol level bitmap recurs) is indicated by the time domain repetition pattern. Assuming the time domain repetition pattern includes M patterns defined by the symbol level bitmap, the second resource set repeats itself with a period of M*N slots. In one embodiment, the symbol level bitmap indicates the rate matching manner of each symbol in a single slot, while the time domain repetition pattern indicates the rate matching manner indicated by the symbol level bitmap is used in one or more slots in a time interval. For example, the time domain repetition pattern is in bitmap form, [0 0 1 0 1], which means that in the repeating period of every 5 slots, the 3rd and 5th slots use the rate matching manner indicated by the symbol level bitmap. At this time, the UE will repeat the slot pattern determined by the two parameters of the symbol level bitmap and the time domain repetition pattern. According to the above method, as shown in FIG. 8a, if Muting pattern 1 is to be determined by the first time domain configuration, i.e., symbol #2 in the first slot in every 4 slots is muted, the bitmap corresponding to the symbol bitmap = [00100000000000] and the time domain repetition pattern = [1 0 0 0] can be configured, which means that in the repeating period of every 4 slots, the 1st slot uses the rate matching manner indicated by the symbol level bitmap. As a third embodiment, the first time domain configuration includes a first period, a symbol level bitmap and a time domain repetition pattern. The second resource set repeats itself with the first period. In the first time domain repetition pattern of the first period, the resource mapping manner of the second resource set is determined according to the symbol level bitmap and the time domain repetition pattern. According to the above method, as shown in FIG. 8a, if Muting pattern 1 is to be determined through the first time domain configuration, i.e., symbol #2 in the first slot in every 4 slots is muted, the following configuration can be made: bitmap corresponding to the symbol = [00100000000000], first period = 4, time domain repetition pattern = [1], which means that in the repeating period of every 4 slots, the first slot (i.e., the first time domain repetition pattern) adopts the rate matching manner indicated by the above symbol-level bitmap. As a fourth implementation, the first time domain configuration includes: a first period, a second offset, a symbol-level bitmap, and a time domain repetition pattern. The second resource set is repeated with the first period. In the first time domain repetition pattern starting from the second offset within the first period, the resource mapping manner of the second resource set is determined according to the symbol-level bitmap and the time domain repetition pattern. According to the above method, as shown in FIG. 8a, if Muting pattern 1 is to be determined through the first time domain configuration, i.e., symbol #2 in the first slot in every 4 slots is muted, the following configuration can be made: bitmap corresponding to the symbol = [00100000000000], first period = 4, second offset = 0, time domain repetition pattern = [1], which means that in the repeating period of every 4 slots, the first slot (i.e., in the first time domain repetition pattern starting from the second offset) adopts the rate matching manner indicated by the above symbol-level bitmap. In some optional embodiments, the second time domain configuration includes at least one of the following: a first period, a second offset, a time domain repetition pattern, a first interval, a first number, at least one first offset. In some optional embodiments, the third time domain configuration includes at least one of the following: a time domain repetition pattern, a first interval, a first number, at least one first offset. In some optional embodiments, the fourth time domain configuration includes at least one of the following: a bitmap corresponding to the symbol, a time domain repetition pattern. In the embodiments of the present disclosure, the bitmap corresponding to the symbol can have the following implementation: As an example, the symbol-level bitmap can be a 14-bit BIT STRING, indicating that each slot of the PUSCH is muted according to the resource indicated by the symbol-level bitmap. The symbol-level bitmap is counted from the start of the slot, i.e., the first bit in the symbol-level bitmap corresponds to the first symbol in the slot, the second bit in the symbol-level bitmap corresponds to the second symbol in the slot, and so on. If extended CP format (ECP) is used, the first 12 bits in the symbol-level bitmap indicate the muting of the first 12 symbols in the slot, and the last 2 bits are ignored. Alternatively, the symbol-level bitmap is counted from the start symbol of the PUSCH, i.e., the first bit in the first configuration corresponds to the first symbol in the PUSCH, the second bit in the first configuration corresponds to the second symbol in the PUSCH, and so on. If the PUSCH is not transmitted on a symbol, the bit in the symbol-level bitmap corresponding to the symbol is ignored. As another example, the symbol-level bitmap can be a 14*X-bit BIT STRING, where X is the number of slots occupied by the PUSCH. The symbol-level bitmap is counted from the start of the slot, and if extended CP format (ECP) is used, the first 12 bits in the symbol-level bitmap indicate the muting of the first 12 symbols in the slot, and the last 2 bits are ignored. As yet another example, the symbol-level bitmap can be a Y*Z-bit BIT STRING, where Y is the number of symbols occupied by each PUSCH repetition (as determined according to the startSymbolAndLength field or the length field), and Z is the number of PUSCH repetitions (as determined according to the numberOfRepetitions field). The symbol-level bitmap is counted from the start symbol of the PUSCH. Each bit field in the symbol-level bitmap corresponds to an actual symbol used by the PUSCH. In some optional embodiments, the method further includes: determining, according to the first set of resources, a fifth set of resources available for PUSCH transmission; multiplexing UCI in the fifth set of resources; or multiplexing UCI in the PUSCH resources, the PUSCH resources after multiplexing UCI being used to determine the first set of resources. In this embodiment, as an implementation manner, the terminal can determine a resource mapping manner according to the determined first resource set. The REs corresponding to the first resource set (i.e., the mute resource) are not available for PUSCH transmission. When UCI needs to be multiplexed in PUSCH (also referred to as data and control multiplexing), a fifth resource set available for PUSCH transmission is first determined according to the first resource set; and then the UCI is multiplexed in the fifth resource set. In this embodiment, the terminal first performs resource mapping, in which the resources in the first resource set (i.e., the mute resource) are excluded, i.e., the mute resource pattern that is not available for PUSCH transmission is automatically excluded in the UL-SCH resource set; and then performs the UCI multiplexing operation. The advantage of this processing manner is that the existing standard flow is less modified. As another implementation manner, the terminal can first multiplex UCI in the PUSCH resource (also referred to as data and control multiplexing), and then perform resource mapping, i.e., first perform the multiplexing of UCI, and then determine the first resource set that is not available for PUSCH transmission according to the configuration and / or indication information, and exclude the resources (i.e., the mute resource). This processing manner can cause loss of UCI transmission, but the potential advantage is that the UCI multiplexing operation in the PUSCH resource can be performed before the mute resource operation, so that the terminal can complete the UCI multiplexing operation in the PUSCH resource as early as possible, and then determine the mute resource according to the mute resource indication. Since the complexity of the UCI multiplexing operation is higher than that of the mute operation, compared with the "first mute and then UCI multiplexing" operation, the "first UCI multiplexing and then mute" operation can support longer terminal side processing time, and reduce the real-time and complexity requirements of the terminal side processing. Based on the above embodiments, the present embodiment also provides a resource determination apparatus applied to a terminal. FIG. 10 is a schematic structural diagram one of a resource determination apparatus according to an embodiment of the present disclosure; as shown in FIG. 10, the apparatus comprises: a first processing unit 31 configured to determine a first resource set that is not available for PUSCH transmission according to configuration and / or indication information; wherein the configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and a first parameter. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine a first resource configuration from the at least one first resource configuration according to at least one of a prior agreement, high layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information, and first indication information; determine a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information; determine the first resource set as the second resource set, or determine the first resource set according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to a first parameter. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to, if the second resource set is not used for PUSCH transmission, determine the second resource set as the first resource set when a first code rate requirement is met; and / or, if the second resource set is not used for PUSCH transmission, determine the first resource set as an empty set when the first code rate requirement is not met; and / or, if part of the second resource set is not used for PUSCH transmission, determine the first resource set to include the part of the second resource set when the first code rate requirement is met. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine a third resource set according to the first resource configuration, wherein the first resource configuration includes at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration; determine a PUSCH transmission resource set, and determine a second resource set according to at least one of the third resource set, the PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following conditions: The second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set. The second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with symbols of DMRS and / or PTRS. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine a fourth resource set according to the first resource configuration, wherein the first resource configuration includes at least one of a second time domain configuration, a first frequency domain configuration, and a first enabling configuration; determine a PUSCH transmission resource set, and determine a second resource set according to at least one of the fourth resource set, the PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following conditions: The time slot where the second resource set is located belongs to the time slot where the fourth resource set is located. The frequency domain resource position of the second resource set belongs to the frequency domain resource position of the fourth resource set. The symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, the symbol of the DMRS, the symbol of the PTRS, the first interval, the first number, and the at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol convention or a second time domain configuration. In some optional embodiments of the present disclosure, the first resource configuration includes at least one of a third time domain configuration, a second frequency domain configuration, a first enabling configuration; the first processing unit 31 is configured to determine the symbol position of the second resource set according to at least one of the PUSCH transmission resource set, the symbol of the DMRS, the symbol of the PTRS, the first interval, the first number, and the at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol convention or a third time domain configuration; and / or, the frequency domain resource position of the second resource set is determined according to the second frequency domain configuration or a pre-convention. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine that the symbol belongs to the second resource set if the symbol satisfies a first condition and a second condition, wherein the first condition includes that the symbol is located in the PUSCH transmission resource and does not overlap with the time domain position of the symbol of the DMRS and / or the symbol of the PTRS; and / or, The second condition includes at least one of the following: The symbol is a first symbol. The symbol is a second symbol, which is determined according to the first symbol and at least one first offset. The symbol is a third symbol, which is the first symbol after the first symbol that satisfies the first condition. The symbol is a fourth symbol, which is the first symbol after the second symbol that satisfies the first condition. The symbol is a fifth symbol, which satisfies a third condition and has an interval greater than or equal to a first interval with symbols located in the second resource set and before and / or after the fifth symbol. The third condition includes one of the following: The number of symbols in the second resource set is less than or equal to a first number. The number of symbols contained in the second resource set in the time slot where the fifth symbol is located is less than or equal to the first number. The number of symbols included in the second resource set in the PUSCH transmission occasion where the fifth symbol is located is less than or equal to the first number. In some optional embodiments of the present disclosure, the first symbol satisfies one of the following conditions: The first symbol is the first symbol of a slot. The first symbol is the first symbol of each slot that overlaps in time domain with the PUSCH. The first symbol is the first symbol of the PUSCH. The first symbol is the first symbol of the PUSCH in each slot that overlaps in time domain with the PUSCH. The first symbol is the first symbol of each PUSCH transmission occasion. The first symbol is the first symbol of the first slot of each PUSCH transmission occasion. The first symbol is the first symbol of the PUSCH in each slot that overlaps in time domain with each PUSCH transmission occasion. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine the second resource set according to the first resource configuration and the PUSCH transmission resource set, where the first resource configuration includes at least one of a fourth time domain configuration, a second frequency domain configuration, and a first enabling configuration. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine one first resource configuration from the at least one first resource configuration according to time domain information of the PUSCH transmission resource; or determine one first resource configuration from the at least one first resource configuration according to DMRS configuration information and / or PTRS configuration information; or determine a first index according to a first indication field of the first indication information, and determine one first resource configuration from the at least one first resource configuration according to the first index, where the first indication field is related to PUSCH time domain resource allocation; or determine a second index according to part of bits of a second indication field of the first indication information, and determine one first resource configuration from the at least one first resource configuration according to the second index, where the second indication field is related to PUSCH frequency domain resource allocation. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine whether the first resource set is empty according to a first bit in a second indication field of the first indication information, where the second indication field is related to PUSCH frequency domain resource allocation; or determine whether the first resource set is empty according to PUSCH transmission resource information. In some optional embodiments of the present disclosure, the first processing unit 31 is configured to determine a first information element (IE) according to the first index, determine a first resource configuration according to the first information element (IE); the first information element (IE) is related to time domain resource allocation; the first information element (IE) includes the first resource configuration and / or an index of the first resource configuration; and / or, determine a second information element (IE) according to a second index, determine a first resource configuration according to the second information element (IE); wherein the second information element (IE) includes the first resource configuration and / or an index of the first resource configuration. In some optional embodiments of the present disclosure, the first resource configuration includes at least one of the following: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, a fourth time domain configuration; wherein, The first enabling configuration includes: a first state indication or a second state indication; wherein the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate that the first function is used or not used; The first frequency domain configuration includes at least one of the following: resource block (RB) resource set indication, comb value, comb offset; The second frequency domain configuration includes at least one of the following: comb value, comb offset; The first time domain configuration includes at least one of the following: first period, second offset, bitmap corresponding to symbol, time domain repetition mode; The second time domain configuration includes at least one of the following: first period, second offset, time domain repetition mode, first interval, first number, at least one first offset; The third time domain configuration includes at least one of the following: time domain repetition mode, first interval, first number, at least one first offset; The fourth time domain configuration includes at least one of the following: bitmap corresponding to symbol, time domain repetition mode. In some optional embodiments of the present disclosure, the first processing unit 31 is further configured to determine a fifth resource set available for PUSCH transmission according to the first resource set; multiplex UCI in the fifth resource set; or multiplex UCI in a PUSCH resource, and the PUSCH resource after multiplexing UCI is used to determine the first resource set. In some optional embodiments of the present disclosure, the apparatus further includes a first communication unit 32 configured to receive the configuration and / or indication information sent by the network device. In the embodiments of the present disclosure, the first processing unit 31 in the device can be implemented by a central processing unit (CPU), a digital signal processor (DSP), a microcontroller unit (MCU), or a field-programmable gate array (FPGA) in actual application; and the first communication unit 32 in the device can be implemented by a communication module (including a basic communication suite, an operating system, a communication module, a standardized interface, and a protocol) and a transceiving antenna in actual application. The embodiments of the present disclosure further provide a resource determination device, which is applied to a network equipment. FIG. 11 is a schematic diagram of a component structure of the resource determination device according to an embodiment of the present disclosure; as shown in FIG. 11, the device comprises a second communication unit 41 configured to send configuration and / or indication information to a terminal, the configuration and / or indication information being used to determine a first resource set which is not used for PUSCH transmission; wherein the configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, DMRS configuration information, PTRS configuration information, and a first parameter. In some optional embodiments of the present disclosure, the configuration and / or indication information is used by the terminal to determine one first resource configuration from the at least one first resource configuration according to at least one of the following: a pre-agreement, high-layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information, and first indication information; to determine a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information; to determine the first resource set as the second resource set, or to determine the first resource set according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to the first parameter. In some optional embodiments of the present disclosure, if the second resource set is not used for PUSCH transmission, the second resource set is the first resource set when a first code rate requirement is met. And / or, if the second resource set is not used for PUSCH transmission, the first resource set is an empty set when the first code rate requirement is not met. And / or, if part of the resources of the second resource set is not used for PUSCH transmission, the first resource set comprises the part of the resources of the second resource set when the first code rate requirement is met. In some optional embodiments of the present disclosure, the first resource configuration comprises at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration, for the terminal to determine a third resource set according to the first resource configuration, to determine a second resource set according to at least one of the third resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following: The second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set. The second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with the symbols of DMRS and / or PTRS. In some optional embodiments of the present disclosure, the first resource configuration comprises at least one of a second time domain configuration, a first frequency domain configuration, and a first enabling configuration, for the terminal to determine a fourth resource set according to the first resource configuration, to determine a second resource set according to at least one of the fourth resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following: The time slot where the second resource set is located belongs to the time slot where the fourth resource set is located. The frequency domain resource position of the second resource set belongs to the frequency domain resource position of the fourth resource set. The symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, the symbol of DMRS, the symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a second time domain configuration. In some optional embodiments of the present disclosure, the first resource configuration comprises at least one of a third time domain configuration, a second frequency domain configuration, and a first enabling configuration, for the terminal to determine the symbol position of the second resource set according to at least one of a PUSCH transmission resource set, the symbol of DMRS, the symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a third time domain configuration; and / or, The frequency domain resource position of the second resource set is determined according to the second frequency domain configuration or a pre-agreement. In some optional embodiments of the present disclosure, if the symbol satisfies the first condition and the second condition, the symbol belongs to the second resource set, wherein the first condition comprises: the symbol is located in the PUSCH transmission resource and does not overlap in time domain position with the symbol of the DMRS and / or the symbol of the PTRS; and / or, The second condition comprises at least one of the following: The symbol is a first symbol. The symbol is a second symbol, which is determined according to the first symbol and at least one first offset. The symbol is a third symbol, which is the first symbol after the first symbol. The symbol is a fourth symbol, which is the first symbol after the second symbol. The symbol is a fifth symbol, which has a gap greater than or equal to a first gap with the symbol located in the second resource set and before and / or after the fifth symbol, and satisfies a third condition. The third condition comprises one of the following: The number of symbols in the second resource set is less than or equal to a first number. The number of symbols contained in the second resource set in the slot where the fifth symbol is located is less than or equal to the first number. The number of symbols contained in the second resource set in the PUSCH transmission occasion where the fifth symbol is located is less than or equal to the first number. In some optional embodiments of the present disclosure, the first symbol satisfies one of the following conditions: The first symbol is the first symbol of a slot. The first symbol is the first symbol of each slot overlapping in time domain with the PUSCH. The first symbol is the first symbol of the PUSCH. The first symbol is the first symbol of the PUSCH in each slot overlapping in time domain with the PUSCH. The first symbol is the first symbol of each PUSCH transmission occasion. The first symbol is the first symbol of the first slot of each PUSCH transmission occasion. The first symbol is the first symbol of the PUSCH in each slot overlapping in time domain with each PUSCH transmission occasion. In some optional embodiments of the present disclosure, the first resource configuration comprises at least one of a fourth time domain configuration, a second frequency domain configuration, and a first enabling configuration, for the terminal to determine the second resource set according to the first resource configuration and the set of PUSCH transmission resources. In some optional embodiments of the present disclosure, the configuration and / or indication information is used by the terminal to determine one first resource configuration from the at least one first resource configuration according to time domain information of the PUSCH transmission resource; or, determine one first resource configuration from the at least one first resource configuration according to DMRS configuration information and / or PTRS configuration information; or, The first indication field of the first indication information is used by the terminal to determine a first index, and one first resource configuration is determined from the at least one first resource configuration according to the first index, wherein the first indication field is related to PUSCH time domain resource allocation; or, Part of the bits of the second indication field of the first indication information is used by the terminal to determine a second index, and one first resource configuration is determined from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation. In some optional embodiments of the present disclosure, the first bit of the second indication field of the first indication information is used by the terminal to determine whether the first resource set is empty, wherein the second indication field is related to PUSCH frequency domain resource allocation; or, whether the first resource set is empty is determined by the terminal according to PUSCH transmission resource information. In some optional embodiments of the present disclosure, the first indication field of the first indication information is used by the terminal to determine a first index, and a first information element (IE) is determined according to the first index, and one first resource configuration is determined according to the first information element (IE); the first information element (IE) is related to time domain resource allocation; the first information element (IE) includes the first resource configuration and / or the index of the first resource configuration; and / or, Part of the bits of the second indication field of the first indication information is used by the terminal to determine a second index, and a second information element (IE) is determined according to the second index, and one first resource configuration is determined according to the second information element (IE); wherein the second information element (IE) includes the first resource configuration and / or the index of the first resource configuration. In some optional embodiments of the present disclosure, the first resource configuration includes at least one of the following: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, and a fourth time domain configuration; wherein, The first enabling configuration includes a first state indication or a second state indication; wherein the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate that the first function is used or not used; The first frequency domain configuration comprises at least one of the following: resource block (RB) resource set indication, comb value, comb offset; The second frequency domain configuration comprises at least one of the following: comb value, comb offset; The first time domain configuration comprises at least one of the following: first period, second offset, bitmap corresponding to symbols, time domain repetition pattern; The second time domain configuration comprises at least one of the following: first period, second offset, time domain repetition pattern, first interval, first number, at least one first offset; The third time domain configuration comprises at least one of the following: time domain repetition pattern, first interval, first number, at least one first offset; The fourth time domain configuration comprises at least one of the following: bitmap corresponding to symbols, time domain repetition pattern. In the embodiments of the present disclosure, the second communication unit 41 in the device can be implemented by a communication module (including a basic communication suite, an operating system, a communication module, a standardized interface and a protocol, etc.) and a transceiving antenna in actual application. It should be noted that the resource determination apparatus provided in the above embodiments is only taken as an example for the division of the above program modules when determining resources, and in actual application, the above processing can be completed by different program modules according to needs, that is, the internal structure of the apparatus is divided into different program modules to complete all or part of the above processing. In addition, the resource determination apparatus and the resource determination method provided in the above embodiments belong to the same concept, and the specific implementation process is detailed in the method embodiments, which will not be repeated here. The embodiments of the present disclosure also provide a communication device, which can be a terminal or a network device. FIG. 12 is a schematic diagram of the hardware composition structure of the communication device according to an embodiment of the present disclosure. As shown in FIG. 12, the communication device comprises a memory 52, a processor 51 and a computer program stored in the memory 52 and executable on the processor 51, and the processor 51 implements the steps of the resource determination method according to the embodiments of the present disclosure when executing the program. Optionally, the communication device can further comprise at least one network interface 53. Wherein, various components in the communication device are coupled together through a bus system 54. It can be understood that the bus system 54 is used to realize the connection communication between the components. The bus system 54 includes not only a data bus, but also a power bus, a control bus and a status signal bus. However, in order to clearly illustrate, various buses are marked as the bus system 54 in FIG. 12. It can be understood that the memory 52 can be a volatile memory or a non-volatile memory, and can also include both volatile and non-volatile memories. Among them, the non-volatile memory can be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), a ferromagnetic random access memory (FRAM), a flash memory, a magnetic surface memory, an optical disc, or a compact disc read-only memory (CD-ROM). The magnetic surface memory can be a disk memory or a tape memory. The volatile memory can be a random access memory (RAM) used as an external cache. By way of example but not limitation, many forms of RAM can be used, such as static random access memory (SRAM), synchronous static random access memory (SSRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), sync link dynamic random access memory (SLDRAM), and direct rambus random access memory (DRRAM).The memory 52 described in the embodiments of the present disclosure is intended to include, but not limited to, these and any other suitable types of memory. The method disclosed in the embodiments of the present disclosure can be applied in the processor 51 or implemented by the processor 51. The processor 51 can be an integrated circuit chip having a processing capability of signals. In the implementation process, each step of the above method can be completed by the integrated logic circuit of hardware in the processor 51 or the instruction in the form of software. The processor 51 described above can be a general processor, a DSP, or other programmable logic device, discrete gate or transistor logic device, discrete hardware component, etc. The processor 51 can implement or execute the disclosed methods, steps and logic block diagrams in the embodiments of the present disclosure. The general processor can be a microprocessor or any conventional processor, etc. In combination with the steps of the method disclosed in the embodiments of the present disclosure, the hardware code processor can be directly embodied as a hardware code processor to complete, or a combination of hardware and software modules in the code processor to complete. The software module can be located in the storage medium, which is located in the memory 52. The processor 51 reads the information in the memory 52 and combines the hardware to complete the steps of the above method. In the example embodiments, the communication device can be implemented by one or more ASICs (Application Specific Integrated Circuits), DSPs, PLDs (Programmable Logic Devices), CPLDs (Complex Programmable Logic Devices), FPGAs, general-purpose processors, controllers, MCUs, microprocessors, or other electronic elements, for executing the above method. In the example embodiments, the embodiments of the present disclosure also provide a computer readable storage medium, such as the memory 52 including a computer program, which can be executed by the processor 51 of the communication device to complete the steps of the above method. The computer readable storage medium can be FRAM, ROM, PROM, EPROM, EEPROM, Flash Memory, magnetic surface memory, optical disc, or CD-ROM, etc. The computer readable storage medium can also be various devices including one or any combination of the above storage medium. The computer readable storage medium provided by the embodiments of the present disclosure has a computer program stored thereon, which is executed by the processor to implement the steps of the resource determination method described in the embodiments of the present disclosure. The embodiments of the present disclosure also provide a computer program product including a computer program, which can be executed by a communication device (such as the processor 51 of the communication device) to complete the steps of any of the above resource determination methods. The methods disclosed in the several method embodiments provided by the present application can be combined arbitrarily without conflict to obtain new method embodiments. The features disclosed in the several product embodiments provided by the present application can be combined arbitrarily without conflict to obtain new product embodiments. The features disclosed in the several method or device embodiments provided by the present application can be combined arbitrarily without conflict to obtain new method embodiments or device embodiments. In the several embodiments provided by the present application, it should be understood that the disclosed devices and methods can be implemented in other ways. The device embodiments described above are merely schematic, for example, the division of the units is merely a logical function division, and other division manners can be used in actual implementation, for example, a plurality of units or components can be combined, or integrated into another system, or some features can be omitted or not executed. In addition, the coupling or direct coupling or communication connection between the various components shown or discussed can be indirect coupling or communication connection through some interfaces, devices or units, which can be electrical, mechanical or other forms. The units described above as separate components can or can not be physically separate, and the components shown as units can or can not be physical units, that is, they can be located in one place, or distributed on a plurality of network units; some or all of the units can be selected according to actual needs to achieve the purpose of the present embodiment. In addition, each functional unit in each embodiment of the present disclosure can be integrated into one processing unit, or each unit can be a separate unit, or two or more units can be integrated into one unit; the integrated unit can be realized in the form of hardware, or in the form of hardware plus software functional unit. Those skilled in the art can understand that all or part of the steps of the above-mentioned method embodiments can be completed by relevant hardware instructed by programs, and the above-mentioned programs can be stored in a computer readable storage medium, and the programs execute steps including the above-mentioned method embodiments when executed; and the above-mentioned storage medium includes mobile storage devices, ROM, RAM, magnetic discs or optical discs and various storage medium capable of storing program codes. Alternatively, the above-mentioned integrated units of the present disclosure, if implemented in the form of software function modules and sold or used as independent products, can also be stored in a computer readable storage medium. Based on such understanding, the technical solutions of the embodiments of the present disclosure can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including a number of instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) execute all or part of the methods described in the various embodiments of the present disclosure. The aforementioned storage medium includes: mobile storage devices, ROM, RAM, magnetic disks or optical disks, and various other media that can store program codes. The above is only a specific implementation of the present disclosure, but the protection scope of the present disclosure is not limited thereto, and any person skilled in the art can easily think of changes or replacements within the technical scope disclosed by the present disclosure, which should be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.

Claims

1. A resource determination method, applied to a terminal, comprising: determining, by the terminal, a first resource set not used for physical uplink shared channel (PUSCH) transmission according to configuration and / or indication information; wherein the configuration and / or indication information comprises at least one of at least one first resource configuration, first indication information, demodulation reference signal (DMRS) configuration information, phase tracking reference signal (PTRS) configuration information, and first parameters.

2. The method of claim 1, wherein, determining, by the terminal, the first resource set not used for PUSCH transmission according to the configuration and / or indication information comprises: determining one first resource configuration from the at least one first resource configuration according to at least one of a prior agreement, high layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information, and first indication information; determining a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information; determining the first resource set as the second resource set, or determining the first resource set according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to first parameters.

3. The method of claim 2, wherein, determining the first resource set according to the second resource set and the first code rate requirement comprises: if the second resource set is not used for PUSCH transmission, determining the first resource set as the second resource set when the first code rate requirement is met; and / or, if the second resource set is not used for PUSCH transmission, determining the first resource set as an empty set when the first code rate requirement is not met; and / or, if part of the second resource set is not used for PUSCH transmission, determining the first resource set to include the part of the second resource set when the first code rate requirement is met.

4. The method of claim 2, wherein, determining the second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information comprises: determining a third resource set according to the first resource configuration, wherein the first resource configuration comprises at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration; determining a PUSCH transmission resource set, and determining the second resource set according to at least one of the third resource set, the PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set meets at least one of the following conditions: the second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set; the second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with symbols of DMRS and / or PTRS.

5. The method of claim 2, wherein, determining the second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information comprises: determining a fourth resource set according to the first resource configuration, wherein the first resource configuration comprises at least one of a second time domain configuration, a first frequency domain configuration, a first enabling configuration; determining a PUSCH transmission resource set, and determining a second resource set according to at least one of the fourth resource set, the PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set satisfies at least one of the following: a time slot where the second resource set is located belongs to a time slot where the fourth resource set is located; a frequency domain resource position of the second resource set belongs to a frequency domain resource position of the fourth resource set; a symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a second time domain configuration.

6. The method of claim 2, wherein, the first resource configuration comprises at least one of a third time domain configuration, a second frequency domain configuration, and the first enabling configuration; and the determining the second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information comprises: determining a symbol position of the second resource set according to at least one of the PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a third time domain configuration; and / or determining a frequency domain resource position of the second resource set according to the second frequency domain configuration or a pre-agreement.

7. The method of claim 5 or 6, wherein, the determining the symbol position of the second resource set according to at least one of the PUSCH transmission resource set, a symbol of DMRS, a symbol of PTRS, a first interval, a first number, and at least one first offset comprises: if a symbol satisfies a first condition and a second condition, determining that the symbol belongs to the second resource set, wherein the first condition comprises that the symbol is located in the PUSCH transmission resource and does not overlap with a time domain position of a symbol of DMRS and / or a symbol of PTRS; and / or the second condition comprises at least one of the following: the symbol is a first symbol; the symbol is a second symbol, which is determined according to the first symbol and at least one first offset; the symbol is a third symbol, which is a first symbol satisfying the first condition after the first symbol; the symbol is a fourth symbol, which is a first symbol satisfying the first condition after the second symbol; the symbol is a fifth symbol, which satisfies a third condition and has an interval greater than or equal to a first interval with a symbol located in the second resource set and before and / or after the fifth symbol; wherein the third condition comprises one of the following: a number of symbols in the second resource set is less than or equal to a first number; The number of symbols contained in the second resource set in the slot where the fifth symbol is located is less than or equal to the first number; The number of symbols contained in the second resource set in the PUSCH transmission occasion where the fifth symbol is located is less than or equal to the first number.

8. The method of claim 7, wherein, The first symbol satisfies one of the following conditions: The first symbol is the first symbol of a slot; The first symbol is the first symbol of each slot overlapping in time domain with PUSCH; The first symbol is the first symbol of PUSCH; The first symbol is the first symbol of PUSCH in each slot overlapping in time domain with PUSCH; The first symbol is the first symbol of each PUSCH transmission occasion; The first symbol is the first symbol of the first slot of each PUSCH transmission occasion; The first symbol is the first symbol of PUSCH in each slot overlapping in time domain with each PUSCH transmission occasion.

9. The method of claim 2, wherein, The determining of the second resource set according to at least one of the determined first resource configuration, the first indication information, the DMRS configuration information, and the PTRS configuration information comprises: The second resource set is determined according to the first resource configuration and the PUSCH transmission resource set; wherein the first resource configuration comprises at least one of a fourth time domain configuration, a second frequency domain configuration, and a first enabling configuration.

10. The method of claim 2, wherein, The determination of a first resource configuration from the at least one first resource configuration according to at least one of the PUSCH transmission resource information, the DMRS configuration information, the PTRS configuration information, and the first indication information comprises: The determination of a first resource configuration from the at least one first resource configuration according to time domain information of the PUSCH transmission resource; Or, the determination of a first resource configuration from the at least one first resource configuration according to the DMRS configuration information and / or the PTRS configuration information; Or, the determination of a first index according to a first indication domain of the first indication information, and the determination of a first resource configuration from the at least one first resource configuration according to the first index, wherein the first indication domain is related to PUSCH time domain resource allocation; Or, the determination of a second index according to part bits of a second indication domain of the first indication information, and the determination of a first resource configuration from the at least one first resource configuration according to the second index, wherein the second indication domain is related to PUSCH frequency domain resource allocation.

11. The method of claim 1, wherein, The method further comprises: The determination of whether the first resource set is empty according to a first bit in a second indication domain of the first indication information, wherein the second indication domain is related to PUSCH frequency domain resource allocation; Or, the determination of whether the first resource set is empty according to the PUSCH transmission resource information.

12. The method of claim 10, wherein, The determining the first resource configuration from the at least one first resource configuration according to the first index comprises: determining a first information element (IE) according to the first index, and determining the first resource configuration according to the first IE; the first IE is related to time domain resource allocation; the first IE comprises the first resource configuration and / or an index of the first resource configuration; and / or, The determining the first resource configuration from the at least one first resource configuration according to the second index comprises: determining a second information element (IE) according to the second index, and determining the first resource configuration according to the second IE; the second IE comprises the first resource configuration and / or an index of the first resource configuration.

13. The method of any one of claims 1 to 6 or 9, wherein, The first resource configuration comprises at least one of: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, and a fourth time domain configuration; wherein, The first enabling configuration comprises: a first state indication or a second state indication; the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate that the first function is used or not used; The first frequency domain configuration comprises at least one of: a resource block (RB) resource set indication, a comb value, and a comb offset; The second frequency domain configuration comprises at least one of: a comb value and a comb offset; The first time domain configuration comprises at least one of: a first period, a second offset, a bitmap corresponding to a symbol, and a time domain repetition mode; The second time domain configuration comprises at least one of: a first period, a second offset, a time domain repetition mode, a first interval, a first number, and at least one first offset; The third time domain configuration comprises at least one of: a time domain repetition mode, a first interval, a first number, and at least one first offset; The fourth time domain configuration comprises at least one of: a bitmap corresponding to a symbol and a time domain repetition mode.

14. The method of claim 1, wherein, The method further comprises: determining a fifth resource set available for PUSCH transmission according to the first resource set; multiplexing UCI in the fifth resource set; or, multiplexing UCI in a PUSCH resource, and the multiplexed UCI is used to determine the first resource set.

15. A resource determination method, the method is applied to a network device, and the method comprises: a network device sends configuration and / or indication information to a terminal, the configuration and / or indication information is used to determine a first resource set not used for PUSCH transmission; wherein the configuration and / or indication information comprises at least one of: at least one first resource configuration, first indication information, demodulation reference signal (DMRS) configuration information, phase tracking reference signal (PTRS) configuration information, and a first parameter.

16. The method of claim 15, wherein, The configuration and / or indication information is used by the terminal to determine a first resource configuration from the at least one first resource configuration according to at least one of a prior agreement, high-layer signaling, PUSCH transmission resource information, DMRS configuration information, PTRS configuration information, and first indication information; determine a second resource set according to at least one of the determined first resource configuration, first indication information, DMRS configuration information, and PTRS configuration information; The second resource set is determined as the first resource set, or the first resource set is determined according to the second resource set and a first code rate requirement, wherein the first code rate requirement is determined according to a first parameter.

17. The method of claim 16, wherein, If the second resource set is not used for PUSCH transmission, the second resource set is the first resource set when a first code rate requirement is met; And / or, if the second resource set is not used for PUSCH transmission, the first resource set is an empty set when the first code rate requirement is not met; And / or, if part of the second resource set is not used for PUSCH transmission, the first resource set includes the part of the second resource set when the first code rate requirement is met.

18. The method of claim 16, wherein, The first resource configuration includes at least one of a first time domain configuration, a first frequency domain configuration, and a first enabling configuration, so that the terminal determines a third resource set according to the first resource configuration, and determines a second resource set according to at least one of the third resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set meets at least one of the following conditions: The second resource set belongs to the third resource set, and the second resource set belongs to the PUSCH transmission resource set; The second resource set belongs to the third resource set, the second resource set belongs to the PUSCH transmission resource set, and the second resource set does not overlap with the symbols of DMRS and / or PTRS.

19. The method of claim 16, wherein, The first resource configuration includes at least one of a second time domain configuration, a first frequency domain configuration, and a first enabling configuration, so that the terminal determines a fourth resource set according to the first resource configuration, and determines a second resource set according to at least one of the fourth resource set, a PUSCH transmission resource set, DMRS configuration information, and PTRS configuration information, wherein the second resource set meets at least one of the following conditions: The time slot where the second resource set is located belongs to the time slot where the fourth resource set is located; The frequency domain resource position of the second resource set belongs to the frequency domain resource position of the fourth resource set; The symbol position of the second resource set is determined according to at least one of the PUSCH transmission resource set, the symbol of DMRS, the symbol of PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol agreement or a second time domain configuration.

20. The method of claim 16, wherein, The first resource configuration comprises at least one of a third time domain configuration, a second frequency domain configuration, and a first enabling configuration, for the terminal to determine a symbol position of the second resource set according to at least one of a PUSCH transmission resource set, a symbol of a DMRS, a symbol of a PTRS, a first interval, a first number, and at least one first offset, wherein at least one of the first interval, the first number, and the at least one first offset is determined according to a protocol convention or the third time domain configuration; and / or, A frequency domain resource position of the second resource set is determined according to the second frequency domain configuration or a pre-convention.

21. The method of claim 19 or 20, wherein, The symbol belongs to the second resource set if the symbol satisfies a first condition and a second condition, wherein, The first condition comprises that the symbol is located in a PUSCH transmission resource and does not overlap in a time domain position with a symbol of a DMRS and / or a symbol of a PTRS; and / or, The second condition comprises at least one of: The symbol is a first symbol; The symbol is a second symbol, which is determined according to the first symbol and at least one first offset; The symbol is a third symbol, which is a first symbol satisfying the first condition after the first symbol; The symbol is a fourth symbol, which is a first symbol satisfying the first condition after the second symbol; The symbol is a fifth symbol, which has an interval greater than or equal to a first interval with a symbol located in a second resource set and before and / or after the fifth symbol, and satisfies a third condition; The third condition comprises one of: A number of symbols in the second resource set is less than or equal to a first number; A number of symbols contained in the second resource set in a slot in which the fifth symbol is located is less than or equal to the first number; A number of symbols contained in the second resource set in a PUSCH transmission occasion in which the fifth symbol is located is less than or equal to the first number.

22. The method of claim 21, wherein, The first symbol satisfies one of the following conditions: The first symbol is a first symbol of a slot; The first symbol is a first symbol of each slot overlapping in a time domain with a PUSCH; The first symbol is a first symbol of a PUSCH; The first symbol is a first symbol of a PUSCH in each slot overlapping in a time domain with a PUSCH; The first symbol is a first symbol of each PUSCH transmission occasion; The first symbol is a first symbol of a first slot of each PUSCH transmission occasion; The first symbol is a first symbol of a PUSCH in each slot overlapping in a time domain with each PUSCH transmission occasion.

23. The method of claim 16, wherein, The first resource configuration comprises at least one of a fourth time domain configuration, a second frequency domain configuration, and a first enabling configuration, for the terminal to determine a second resource set according to the first resource configuration and a PUSCH transmission resource set.

24. The method of claim 16, wherein, The configuration and / or indication information is used by the terminal to determine one first resource configuration from the at least one first resource configuration according to time domain information of PUSCH transmission resources; or, determine one first resource configuration from the at least one first resource configuration according to DMRS configuration information and / or PTRS configuration information; or, The first indication field of the first indication information is used by the terminal to determine a first index, and determine one first resource configuration from the at least one first resource configuration according to the first index, wherein the first indication field is related to PUSCH time domain resource allocation; or, Part of bits of a second indication field of the first indication information is used by the terminal to determine a second index, and determine one first resource configuration from the at least one first resource configuration according to the second index, wherein the second indication field is related to PUSCH frequency domain resource allocation.

25. The method of claim 15, wherein, The first bit of the second indication field of the first indication information is used by the terminal to determine whether the first resource set is empty, wherein the second indication field is related to PUSCH frequency domain resource allocation; or, whether the first resource set is empty is determined by the terminal according to PUSCH transmission resource information.

26. The method of claim 24, wherein, The first indication field of the first indication information is used by the terminal to determine a first index, determine a first information element IE according to the first index, and determine one first resource configuration according to the first information element IE; the first information element IE is related to time domain resource allocation; the first information element IE includes the first resource configuration and / or an index of the first resource configuration; and / or, Part of bits of a second indication field of the first indication information is used by the terminal to determine a second index, determine a second information element IE according to the second index, and determine one first resource configuration according to the second information element IE; wherein the second information element IE includes the first resource configuration and / or an index of the first resource configuration.

27. The method of any one of claims 15 to 20 or 23, wherein, The first resource configuration includes at least one of the following: a first enabling configuration, a first frequency domain configuration, a second frequency domain configuration, a first time domain configuration, a second time domain configuration, a third time domain configuration, and a fourth time domain configuration; wherein, The first enabling configuration includes a first state indication or a second state indication; wherein the first state indication has one value, and the one value is used to indicate that the first function is used; the second state indication has two values, and the two values are respectively used to indicate whether the first function is used or not; The first frequency domain configuration includes at least one of the following: resource block (RB) resource set indication, comb value, and comb offset; The second frequency domain configuration includes at least one of the following: comb value and comb offset; The first time domain configuration includes at least one of the following: first period, second offset, bitmap corresponding to symbols, and time domain repetition pattern; The second time domain configuration includes at least one of the following: first period, second offset, time domain repetition pattern, first interval, first number, and at least one first offset. The third time domain configuration comprises at least one of the following: a time domain repetition pattern, a first interval, a first number, and at least one first offset. The fourth time domain configuration comprises at least one of the following: a bitmap corresponding to a symbol, and a time domain repetition pattern.

28. A resource determining apparatus, the apparatus being applied to a terminal, the apparatus comprising: The first processing unit is configured to determine, according to the configuration and / or indication information, the first resource set not used for the PUSCH transmission. The configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, demodulation reference signal (DMRS) configuration information, phase tracking reference signal (PTRS) configuration information, and a first parameter. 29.A resource determining apparatus, applied to a network device, the apparatus comprising: The second communication unit is configured to send, to the terminal, the configuration and / or indication information used to determine the first resource set not used for the PUSCH transmission. The configuration and / or indication information comprises at least one of the following: at least one first resource configuration, first indication information, demodulation reference signal (DMRS) configuration information, phase tracking reference signal (PTRS) configuration information, and a first parameter. 30.A computer readable storage medium having stored thereon a computer program, which processor executes the steps of the method of any one of claims 1 to 27. 31.A communication device comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, wherein the processor executes the program to implement the steps of the method of any one of claims 1 to 27. 32.A computer program product comprising computer program instructions to cause a computer to perform the steps of the method of any one of claims 1 to 27.

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