Method and apparatus used in node for wireless communication

By receiving the first information block and the first physical channel in the wireless communication system, and generating a scrambling sequence or RS sequence using one of the Q indexes, the challenge of determining the physical channel sequence in a complex network environment is solved, and more stable and flexible wireless communication is achieved.

WO2025108422A1PCT designated stage expired Publication Date: 2025-05-30SHANGHAI LANGYAO COMMUNICATION TECHNOLOGY CO LTD
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Patent Information

Application Number
PCT/CN2024/133823
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-11-24
Filing Date
2024-11-22
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

In future wireless communication systems, there are challenges in how to determine the scrambling sequence of the physical channel or/and the RS sequence of the DMRS of the physical channel, especially in complex multi-cell, multi-TRP, multi-antenna panel and CoMP scenarios.

Method used

By receiving the first information block, a first set of resources on the first cell is indicated and a first physical channel is received in the resource set. One of the Q indexes is used to generate a scrambled sequence of the first physical channel or an RS sequence of DMRS, Q is a positive integer greater than 1, each index is carried by at least one synchronization signal. According to whether the first resource set belongs to the first type of resource set or the second type of resource set, an index for generating the scrambling sequence or the RS sequence is determined.

Benefits of technology

This method is applicable to complex network environments such as multi-cell, multi-TRP, multi-antenna panel and CoMP, improving the stability of system information transmission, reducing the probability of user handover failure, reducing the overhead and delay of user link reconfiguration, and improving the system's support for user mobility.

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Abstract

The present application discloses a method and apparatus used in a node for wireless communication. A first node receives a first information block indicating a first resource set on a first cell. A first physical channel is received in the first resource set. One index among Q indexes is used for generating at least one of a scrambling code sequence of the first physical channel or an RS sequence of a DMRS of the first physical channel. Each index among the Q indexes is carried by at least one synchronization signal. The first resource set belongs to one of a first category of resource sets on the first cell or a second category of resource sets on the first cell. Which one of the Q indexes is to be used for generating the at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource sets or the second category of resource sets.
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Description

A method and device used in a node for wireless communication Technical Field

[0001] The present application relates to a transmission method and apparatus in a wireless communication system, and in particular to a transmission method and apparatus for wireless signals in a wireless communication system supporting a cellular network. Background Art

[0002] In future wireless communication systems, the number of mobile terminals will grow exponentially, driving higher system capacity demands. By deploying multiple sites (including base stations, Transmit-Receive Points (TRPs), relays, and reconfigurable smart metasurfaces) across a wider geographic area and forming larger MIMO (Multiple-Input Multiple-Output) clusters across multiple sites and one or more antenna channels within each site, spectrum efficiency can be significantly improved. Furthermore, sites can interact and collaborate on demand at different levels: for basic, simple services, multiple sites perform simple information exchange to coordinate resource allocation, scheduling, and beamforming. For enhanced, complex services, multiple sites collaborate deeply and engage in extensive information exchange, effectively transforming interference sources into useful signals. This intelligent interaction and collaboration effectively eliminates interference and enhances signal reception quality, while also enhancing coverage and eliminating user boundaries, providing a truly borderless user experience for wireless networks.

[0003] In addition, the Reconfigurable Intelligent Surface (RIS) is being widely studied as a candidate technology for 6G due to its unique low cost, low energy consumption, programmability, and easy deployment. It is an artificial electromagnetic surface structure with programmable electromagnetic properties, containing a large number of independent, low-cost passive subwavelength resonant units. Each RIS unit has independent electromagnetic wave control capabilities, and the response of each unit to wireless signals, such as phase, amplitude, and polarization, can be controlled by changing the parameters and spatial distribution of the RIS unit. By superimposing the wireless response signals of a large number of RIS units, specific beam propagation characteristics are formed on a macro scale, thereby forming a flexible and controllable shaped beam, achieving the effect of eliminating coverage blind spots, enhancing edge coverage, and increasing the rank of multi-stream transmission. Summary of the Invention

[0004] Research has found that scenarios for future wireless communication systems will be more complex, and determining the scrambling code sequence of the physical channel and / or the RS (Reference signal) sequence of the DMRS (Demodulation reference signal) of the physical channel is a key issue.

[0005] In response to the above technical problems, this application discloses a solution. It should be noted that in the description of this application, the 5GNR (New Radio) system is used as an example. This application is also applicable to scenarios such as the future 6G system to achieve technical effects similar to the NR system. In addition, this application only uses multi-cell scenarios, multi-TRP (Transmit-Receive Point) scenarios, multi-antenna panel scenarios, CoMP (Coordinated Multipoint) scenarios, distributed MIMO (Multiple-Input Multiple-Output) scenarios, virtual MIMO, and RIS scenarios as some typical application scenarios or examples. This application can also be applied to other non-multi-cell scenarios, non-multi-TRP (Transmit-Receive Point) scenarios, non-multi-antenna panel (antenna panel) scenarios, non-CoMP (Coordinated Multipoint) scenarios, non-distributed MIMO (Multiple-Input Multiple-Output) scenarios, non-virtual MIMO, non-RIS scenarios, capacity enhancement systems, short-range communication systems, unlicensed spectrum communications, IoT (Internet of Things) Furthermore, adopting a unified design for different scenarios can also help reduce hardware complexity and cost. Unless there is a conflict, the embodiments and features of any node in this application can be applied to any other node. Unless there is a conflict, the embodiments and features of the embodiments of this application can be combined with each other in any way.

[0006] As an example, the interpretation of terminology, nouns, functions, and variables in this application (unless otherwise specified) may refer to the definitions in the 3GPP specification protocols TS36 series, TS38 series, and TS37 series. If necessary, reference may be made to 3GPP standards TS38.211, TS38.212, TS38.213, TS38.214, TS38.215, TS38.321, TS38.331, TS38.305, TS38.304, and TS37.355 to assist in understanding this application.

[0007] The present application discloses a method in a first node used for wireless communication, characterized by comprising:

[0008] receiving a first information block indicating a first resource set on a first cell; and receiving a first physical channel in the first resource set;

[0009] Among them, one index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS (Reference signal) sequence of the DMRS (Demodulation reference signal) of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set and the second type of resource set are different; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0010] As an embodiment, the problem to be solved by the present application includes: how to determine the scrambling code sequence of the physical channel and / or the RS sequence of the DMRS of the physical channel; in the above method, this problem is solved by determining the index of the RS sequence used to generate the scrambling code sequence of the physical channel and / or the DMRS of the physical channel.

[0011] As an embodiment, the problem to be solved by the present application includes: how to determine the scrambling code sequence of the physical channel in different types of resource sets.

[0012] As an embodiment, the problem to be solved by the present application includes: how to determine the RS sequence of the DMRS of the physical channel in different types of resource sets.

[0013] As an embodiment, the essence of the above method includes: determining the index of the RS sequence used to generate the scrambling code sequence of the physical channel and / or the DMRS of the physical channel according to which type of resource set the first resource set belongs, thereby solving the above problem.

[0014] As an embodiment, the essence of the above method includes: according to whether the first resource set belongs to the first category of resource set or the second category of resource set, determining which index of the Q indexes is used to generate at least one of the scrambling sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel.

[0015] As an embodiment, the benefits of the above method include: adapting to but not limited to at least one of a multi-cell scenario, a multi-TRP (Transmit-Receive Point) scenario, a multi-antenna panel scenario, a CoMP (Coordinated Multipoint) scenario, a distributed MIMO (Multiple-Input Multiple-Output) scenario, a virtual MIMO, or a RIS scenario.

[0016] As an embodiment, the benefits of the above method include: adapting to more complex network environments and application scenarios.

[0017] As an embodiment, the benefits of the above method include: improving the stability of system information transmission, reducing the probability of user switching failure, and reducing the overhead and delay of user link reconfiguration.

[0018] As an embodiment, the benefits of the above method include: improving the system's support for user mobility.

[0019] As an embodiment, the benefits of the above method include: improving transmission reliability.

[0020] As an embodiment, the above method has the following advantages: good backward compatibility and reduced implementation complexity.

[0021] As an embodiment, the benefits of the above method include: simplifying system design and improving network flexibility.

[0022] As an embodiment, the benefits of the above method include: improving overall system performance.

[0023] According to one aspect of the present application, it is characterized in that the first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

[0024] As an embodiment, the benefits of the above method include: distinguishing different types of search space sets, designing the system in a more refined manner, and improving system performance.

[0025] As an embodiment, the benefits of the above method include: enhancing the flexibility and backward compatibility of the system.

[0026] According to one aspect of the present application, it is characterized in that the CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in the first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in the second identifier set, the first identifier set includes one or more identifiers, the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

[0027] As an embodiment, the benefits of the above method include: distinguishing different types of resource collections, designing the system in a more refined manner, and improving system performance.

[0028] As an embodiment, the benefits of the above method include: the first type of resource set uses a first identification set, and the second type of resource set uses a second identification set, which simplifies implementation complexity and improves system efficiency.

[0029] As an embodiment, the benefits of the above method include: enhancing the flexibility and backward compatibility of the system.

[0030] According to one aspect of the present application, it is characterized in that the spatial characteristics of the physical channels in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channels in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channels in the second type of resource set based on the at least one RS resource.

[0031] As an embodiment, the benefits of the above method include: distinguishing different types of resource collections, designing the system in a more refined manner, and improving system performance.

[0032] As an embodiment, the benefits of the above method include: the first node only needs to infer the spatial characteristics of the physical channel in the first type of resource set based on only one RS resource, which simplifies the implementation complexity and improves system efficiency.

[0033] As an embodiment, the benefits of the above method include: the first type of resource set can support multi-beam transmission, improving the reliability and performance of the system.

[0034] As an embodiment, the benefits of the above method include: the first type of resource set can support multi-point transmission, improving the reliability and performance of the system.

[0035] As an embodiment, the above method has the following benefits: the first type of resource set can support SFN (Single Frequency Network) transmission, thereby improving system reliability and performance.

[0036] As an embodiment, the benefits of the above method include: providing more possibilities and better adapting to different transmission environments.

[0037] As an embodiment, the benefits of the above method include: enhancing the flexibility and backward compatibility of the system.

[0038] As an embodiment, the benefits of the above method include: improving system robustness.

[0039] According to one aspect of the present application, it is characterized in that the second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

[0040] As an embodiment, the essence of the above method includes: the index used for the first type of resource set does not depend on the index used for the second type of resource set.

[0041] As an embodiment, the benefits of the above method include: distinguishing different types of resource collections, designing the system in a more refined manner, and improving system performance.

[0042] As an embodiment, the benefits of the above method include: the index used for the first type of resource set does not depend on the index used for the second type of resource set, reducing implementation complexity, reducing system overhead, and improving overall system performance.

[0043] According to one aspect of the present application, it is characterized in that when the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

[0044] As an embodiment, the essence of the above method includes: according to whether the first resource set belongs to the first category of resource set or the second category of resource set, determining which index of the Q indexes is used to generate at least one of the scrambling sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel.

[0045] As an embodiment, the benefits of the above method include: enhancing the robustness and flexibility of the system.

[0046] As an embodiment, the advantages of the above method include: good backward compatibility and minor changes to the standard.

[0047] According to one aspect of the present application, it is characterized by comprising:

[0048] receiving a second physical channel;

[0049] Alternatively, sending a second physical channel;

[0050] The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

[0051] As an embodiment, the advantages of the above method include: good backward compatibility and minor changes to the standard.

[0052] As an embodiment, the benefits of the above method include: at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel follows the first physical channel, thereby improving system performance.

[0053] The present application discloses a method used in a second node of wireless communication, characterized by comprising:

[0054] Sending a first information block, where the first information block indicates a first resource set on a first cell; and sending a first physical channel in the first resource set;

[0055] Among them, one index among the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set and the second type of resource set are different; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0056] According to one aspect of the present application, it is characterized in that the first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

[0057] According to one aspect of the present application, it is characterized in that the CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in the first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in the second identifier set, the first identifier set includes one or more identifiers, the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

[0058] According to one aspect of the present application, it is characterized in that the spatial characteristics of the physical channels in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channels in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channels in the second type of resource set based on the at least one RS resource.

[0059] According to one aspect of the present application, it is characterized in that the second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

[0060] According to one aspect of the present application, it is characterized in that when the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

[0061] According to one aspect of the present application, it is characterized by comprising:

[0062] sending a second physical channel;

[0063] Alternatively, receiving a second physical channel;

[0064] The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

[0065] The present application discloses a first node device used for wireless communication, characterized by comprising:

[0066] A first receiver receives a first information block, where the first information block indicates a first resource set on a first cell; and receives a first physical channel in the first resource set.

[0067] Among them, one index among the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set and the second type of resource set are different; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0068] The present application discloses a second node device used for wireless communication, characterized by comprising:

[0069] A second transmitter sends a first information block, where the first information block indicates a first resource set on a first cell; and sends a first physical channel in the first resource set;

[0070] Among them, one index among the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set and the second type of resource set are different; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0071] As an example, compared with traditional solutions, this application has the following advantages:

[0072] - Adapts to, but is not limited to, multi-cell scenarios, multi-TRP (Transmit-Receive Point) scenarios, multi-antenna panel scenarios, CoMP (Coordinated Multipoint) scenarios, distributed MIMO (Multiple-Input Multiple-Output) scenarios, virtual MIMO (Virtual MIMO), and RIS scenarios;

[0073] -Adapt to more complex network environments and application scenarios;

[0074] - Better support for multi-beam transmission / multi-point transmission / SFN (Single Frequency Network) transmission to improve system reliability and performance;

[0075] - Improve the stability of system information transmission, reduce the probability of user handover failure, and reduce the overhead and delay of user link reconfiguration;

[0076] -Improve the system's support for user mobility;

[0077] -Good backward compatibility and minimal changes to the standard;

[0078] -Simplify system design, improve network flexibility, and reduce implementation complexity;

[0079] - Enhance the robustness and stability of the system;

[0080] - Improve overall system performance. BRIEF DESCRIPTION OF THE DRAWINGS

[0081] Other features, objects and advantages of the present application will become more apparent upon reading the detailed description of non-limiting embodiments with reference to the following drawings:

[0082] FIG1 shows a flow chart of a first information block and a first physical channel according to an embodiment of the present application;

[0083] FIG2 shows a schematic diagram of a network architecture according to an embodiment of the present application;

[0084] FIG3 is a schematic diagram showing an embodiment of a radio protocol architecture of a user plane and a control plane according to an embodiment of the present application;

[0085] FIG4 shows a schematic diagram of a first communication device and a second communication device according to an embodiment of the present application;

[0086] FIG5 shows a flow chart of wireless transmission according to an embodiment of the present application;

[0087] FIG6 shows a schematic diagram of a first-category resource set and a second-category resource set according to an embodiment of the present application;

[0088] FIG7 shows a schematic diagram of a first type resource set and a second type resource set according to another embodiment of the present application;

[0089] FIG8 shows a schematic diagram of a first type resource set and a second type resource set according to another embodiment of the present application;

[0090] FIG9 shows a schematic diagram of a first type resource set and a second type resource set according to another embodiment of the present application;

[0091] FIG10 is a schematic diagram showing a relationship between a first physical channel and Q indexes according to an embodiment of the present application;

[0092] FIG11 shows a schematic diagram of a second physical channel according to an embodiment of the present application;

[0093] FIG12 is a schematic diagram showing a relationship between a given index and a given channel according to an embodiment of the present application;

[0094] FIG13 shows a structural block diagram of a processing device used in a first node device according to an embodiment of the present application;

[0095] FIG14 shows a structural block diagram of a processing device used in a second node device according to an embodiment of the present application. DETAILED DESCRIPTION

[0096] The technical solutions of this application will be further described below in conjunction with the accompanying drawings. It should be noted that the embodiments and features of the embodiments of this application may be arbitrarily combined with each other, provided that no conflicts exist. Based on considerations such as flexibility, complexity, overhead, and compatibility, those skilled in the art are motivated to flexibly combine the embodiments in different drawings, provided that no conflicts exist.

[0097] Example 1

[0098] Embodiment 1 illustrates a flowchart of a first information block and a first physical channel according to an embodiment of the present application, as shown in FIG1 . In FIG1 , each block 100 represents a step. In particular, the order of the steps in the blocks does not represent a specific temporal relationship between the steps.

[0099] In embodiment 1, the first node in the present application receives a first information block in step 101; receives a first physical channel in the first resource set in step 102; wherein the first information block indicates a first resource set on a first cell; one of the Q indexes is used to generate a scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to a first type of resource set on the first cell or one of the second type of resource sets on the first cell, and the first type of resource set and the second type of resource set are different; which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0100] As an embodiment, the first cell is a serving cell.

[0101] As an embodiment, the first cell is a PCell (Primary Cell).

[0102] As an embodiment, the first cell is a PSCell (Primary Secondary Cell).

[0103] As an embodiment, the first cell is a SpCell (Special Cell).

[0104] As an embodiment, the first cell is a cell in an MCG (Master Cell Group).

[0105] As an embodiment, the first cell is a cell in an SCG (Secondary Cell Group).

[0106] As an embodiment, the first cell is a SCell (secondary cell).

[0107] Typically, the SpCell in MCG is PCell, and the SpCell in SCG is PSCell.

[0108] Typically, SpCell is PCell or PSCell.

[0109] As an embodiment, the first physical channel is a physical downlink channel.

[0110] As an embodiment, the first physical channel is used to transmit control information.

[0111] As an embodiment, the first physical channel is used to transmit system information.

[0112] As an embodiment, the first physical channel is used to transmit system information and control information.

[0113] As an embodiment, the first physical channel is used to simultaneously transmit system information and control information.

[0114] As an embodiment, the first physical channel is a PBCH (Physical broadcast channel).

[0115] As an embodiment, the first physical channel is a PDCCH (Physical Downlink Control Channel).

[0116] As an embodiment, the first physical channel is at least one of PBCH or PDCCH.

[0117] As an embodiment, receiving the first physical channel includes: receiving a signal on the first physical channel.

[0118] As an embodiment, receiving the first physical channel includes: receiving a wireless signal on the first physical channel.

[0119] As an embodiment, receiving the first physical channel includes: receiving information carried by the first physical channel.

[0120] As an embodiment, the information carried by the first physical channel includes system information.

[0121] As an embodiment, the information carried by the first physical channel includes control information.

[0122] As an embodiment, the control information includes MIB (Master Information Block).

[0123] As an embodiment, the control information includes SIB (System Information Block).

[0124] As an embodiment, the control information includes SIB1.

[0125] As an embodiment, the control information includes SIBx; x is a non-negative integer, or x is a positive integer.

[0126] As an embodiment, the control information includes DCI (Downlink Control Information, downlink control information).

[0127] As an embodiment, the control information includes at least one of MIB and SIB.

[0128] As an embodiment, the control information includes at least one of MIB, SIB, and DCI.

[0129] As an embodiment, the control information includes at least one of MIB, SIB, SIB1 and DCI.

[0130] As an embodiment, the control information includes at least one of MIB, SIB, SIB1, SIBx, and DCI; x is a non-negative integer, or x is a positive integer.

[0131] As an embodiment, the first resource set is used to transmit system information therein.

[0132] As an embodiment, the first resource set is used to transmit control information therein.

[0133] As an embodiment, the first resource set is used to transmit at least one of system information and control information.

[0134] As an embodiment, the first resource set is used to transmit system information and control information.

[0135] As an embodiment, the first resource set includes a set of PDCCH (Physical downlink control channel) candidates.

[0136] As an embodiment, the first resource set includes one or more PDCCH candidates.

[0137] As an embodiment, the first resource set includes one or more search space sets.

[0138] As an embodiment, the first resource set includes one or more search spaces.

[0139] As an embodiment, the first resource set includes at least one of a CSS (Common Search Space) or a USS (UE-specific Search Space).

[0140] As an embodiment, the first resource set includes a CSS or a USS.

[0141] As an embodiment, the first resource set includes at least one CSS.

[0142] As an embodiment, the first resource set includes at least one USS.

[0143] As an embodiment, the first resource set is a CSS or a USS.

[0144] As an embodiment, a search space set is a search space.

[0145] As an embodiment, a search space set includes one or more search spaces.

[0146] As an embodiment, the first resource set includes a search space set, and the configuration information of the first resource set includes the configuration information of the search space set.

[0147] As an embodiment, the first resource set is a search space set, and the configuration information of the first resource set is the configuration information of the search space set.

[0148] As an embodiment, the first resource set is associated with a CORESET (Control resource set).

[0149] As an embodiment, the first resource set includes one or more CORESETs.

[0150] As an embodiment, the first resource set includes a CORESET, and the configuration information of the first resource set includes the configuration information of the CORESET.

[0151] As an embodiment, the first resource set is a CORESET, and the configuration information of the first resource set is the configuration information of the CORESET.

[0152] As an embodiment, the configuration information of a search space set includes at least one of a search space set index, an index of an associated CORESET, occupied time domain resources, or occupied frequency domain resources.

[0153] As an embodiment, the configuration information of a search space set includes a search space set index, an index of an associated CORESET, a periodicity and offset of PDCCH monitoring, a PDCCH monitoring pattern within a time slot, the number of time slots in which the search space set exists or the number of time slots in a consecutive time slot group, a bit map indicating the time slots in the time slot group used for PDCCH monitoring, the number of PDCCH alternatives for each CCE (Control Channel Element) aggregation level, a search space type indication, or at least one of an indication of linking to another search space set.

[0154] As an embodiment, the configuration information of a CORESET includes at least one of a CORESET index, occupied time domain resources, occupied frequency domain resources, or quasi-co-location of antenna ports.

[0155] As an embodiment, the configuration information of a CORESET includes at least one of a CORESET index, an initialization value of a DMRS (Demodulation reference signal) scrambling sequence, a precoder granularity, occupied time domain resources, occupied frequency domain resources, CCE (Control Channel Element) to REG (Resource Element Group) mapping parameters, antenna port quasi-co-location, and a TCI (Transmission Configuration Indication) field indication.

[0156] As an embodiment, the configuration information of a CORESET includes at least one of a CORESET index, an initialization value of a DMRS scrambling sequence, a precoding granularity, occupied time domain resources, occupied frequency domain resources, CCE to REG mapping parameters, the number of REGs included in a REG packet, an interleaving parameter, an antenna port quasi-co-location, and a TCI field indication.

[0157] As an embodiment, the first resource set includes a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set, a Type0B-PDCCH CSS set, a Type1-PDCCH CSS set, a Type1A-PDCCH CSS set, a Type2-PDCCH CSS set, a Type2A-PDCCH CSS set, a Type3-PDCCH CSS set, or one of a USS set.

[0158] As an embodiment, the first resource set includes a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set, a Type0B-PDCCH CSS set, a Type1-PDCCH CSS set, a Type1A-PDCCH CSS set, a Type2-PDCCH CSS set, a Type2A-PDCCH CSS set, a Type3-PDCCH CSS set, or multiple of a USS set.

[0159] As an embodiment, the first resource set includes at least one of a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set, a Type0B-PDCCH CSS set, a Type1-PDCCH CSS set, a Type1A-PDCCH CSS set, a Type2-PDCCH CSS set, a Type2A-PDCCH CSS set, a Type3-PDCCH CSS set, or a USS set.

[0160] As an embodiment, the first type of resource set includes at least one PDCCH candidate.

[0161] As an embodiment, the first type of resource set is a set of at least one PDCCH candidate.

[0162] As an embodiment, the first type of resource set includes at least one search space.

[0163] As an embodiment, the first type of resource set is a set of at least one search space.

[0164] As an embodiment, the first type of resource set includes at least one search space set.

[0165] As an embodiment, the first type of resource set is a set of at least one search space set.

[0166] As an embodiment, the first type of resource set includes at least one CSS.

[0167] As an embodiment, the first type of resource set is a set of at least one CSS.

[0168] As an embodiment, the first type of resource set includes at least one CSS set.

[0169] As an embodiment, the first type of resource set is a set of at least one CSS set.

[0170] As an embodiment, the first type of resource set includes at least one USS.

[0171] As an embodiment, the first type of resource set is a set of at least one USS.

[0172] As an embodiment, the first type of resource set includes at least one USS set.

[0173] As an embodiment, the first type resource set is a set of at least one USS set.

[0174] As an embodiment, the first type of resource set includes at least one CORESET.

[0175] As an embodiment, the first type of resource set is a set of at least one CORESET.

[0176] As an embodiment, the first type of resource set includes at least one CORESET set.

[0177] As an embodiment, the first type of resource set is a set of at least one CORESET set.

[0178] As an embodiment, the second type of resource set includes at least one PDCCH candidate.

[0179] As an embodiment, the second type of resource set is a set of at least one PDCCH candidate.

[0180] As an embodiment, the second type of resource set includes at least one search space.

[0181] As an embodiment, the second type of resource set is a set of at least one search space.

[0182] As an embodiment, the second type of resource set includes at least one search space set.

[0183] As an embodiment, the second type resource set is a set of at least one search space set.

[0184] As an embodiment, the second type of resource set includes at least one CSS.

[0185] As an embodiment, the second type of resource set is a set of at least one CSS.

[0186] As an embodiment, the second type of resource set includes at least one CSS set.

[0187] As an embodiment, the second type of resource set is a set of at least one CSS set.

[0188] As an embodiment, the second type resource set includes at least one USS.

[0189] As an embodiment, the second type resource set is a set of at least one USS.

[0190] As an embodiment, the second type of resource set includes at least one USS set.

[0191] As an embodiment, the second type resource set is a set of at least one USS set.

[0192] As an embodiment, the second type of resource set includes at least one CORESET.

[0193] As an embodiment, the second type of resource set is a set of at least one CORESET.

[0194] As an embodiment, the second type of resource set includes at least one CORESET set.

[0195] As an embodiment, the second type resource set is a set of at least one CORESET set.

[0196] As an embodiment, the first type of resource set includes at least one PDCCH candidate, and the second type of resource set includes at least one PDCCH candidate.

[0197] As an embodiment, the first type resource set includes at least one search space, and the second type resource set includes at least one search space.

[0198] As an embodiment, the first type of resource set includes at least one search space set, and the second type of resource set includes at least one search space set.

[0199] As an embodiment, the first-category resource set includes at least one CSS, and the second-category resource set includes at least one CSS.

[0200] As an embodiment, the first-category resource set includes at least one CSS set, and the second-category resource set includes at least one CSS set.

[0201] As an embodiment, the first-category resource set includes at least one CSS, and the second-category resource set includes at least one USS.

[0202] As an embodiment, the first-category resource set includes at least one CSS set, and the second-category resource set includes at least one USS set.

[0203] As an embodiment, the first type of resource set includes at least one CORESET, and the second type of resource set includes at least one CORESET.

[0204] As an embodiment, the first type of resource set includes at least one CORESET set, and the second type of resource set includes at least one CORESET set.

[0205] As an embodiment, the first resource set and the second resource set are different.

[0206] As an embodiment, the first category resource set and the second category resource set are of different types.

[0207] As an embodiment, the elements included in the first-category resource set and the elements included in the second-category resource set are of different types.

[0208] As an embodiment, the first resource set belongs to the first category resource set.

[0209] As an embodiment, the first resource set belongs to the first category resource set, and does not belong to the second category resource set.

[0210] As an embodiment, the first resource set belongs to the second resource set.

[0211] As an embodiment, the first resource set belongs to the second category resource set, and does not belong to the first category resource set.

[0212] As an embodiment, that the first resource set belongs to the first category of resource sets includes: the first resource set is an element in the first category of resource sets.

[0213] As an embodiment, the first resource set belonging to the first category of resource set includes: the first resource set is the first category of resource set.

[0214] As an embodiment, that the first resource set belongs to the second type of resource set includes: the first resource set is an element in the second type of resource set.

[0215] As an embodiment, the first resource set belonging to the second type of resource set includes: the first resource set is the second type of resource set.

[0216] As an embodiment, the first information block indicating the first resource set on the first cell includes: the first information block indicating configuration information of the first resource set on the first cell.

[0217] As an embodiment, the first information block indicating the first resource set on the first cell includes: the first information block displays configuration information indicating the first resource set on the first cell.

[0218] As an embodiment, the first information block indicating the first resource set on the first cell includes: the first information block implicitly indicating configuration information of the first resource set on the first cell.

[0219] As an embodiment, the first information block indicating the first resource set on the first cell includes: part of the content of the first information block indicating configuration information of the first resource set on the first cell.

[0220] As an embodiment, the first information block indicating the first resource set on the first cell includes: the first information block indicating partial configuration information of the first resource set on the first cell.

[0221] As an embodiment, the first information block indicating the first resource set on the first cell includes: the first information block is used to configure the first resource set on the first cell.

[0222] As an embodiment, the first information block indicating the first resource set on the first cell includes: the first information block is directly used to configure the first resource set on the first cell.

[0223] As an embodiment, the first information block indicating the first resource set on the first cell includes: the first information block is indirectly used to configure the first resource set on the first cell.

[0224] As an embodiment, the first information block indicating the first resource set on the first cell includes: information carried by the first information block is used to configure the first resource set on the first cell.

[0225] As an embodiment, the first information block indicating the first resource set on the first cell includes: part of the content of the first information block is used to configure the first resource set on the first cell.

[0226] As an embodiment, the first information block belongs to the configuration information of the first cell.

[0227] As an embodiment, the first information block is carried by physical layer signaling.

[0228] As an embodiment, the first information block is DCI (Downlink Control Information, downlink control information).

[0229] As an embodiment, the first information block is carried by at least one of higher layer signaling or physical layer signaling.

[0230] As an embodiment, the first information block is carried by higher layer signaling and physical layer signaling.

[0231] As an embodiment, the first information block is carried by higher-layer signaling.

[0232] As an embodiment, the first information block is carried by RRC (Radio Resource Control) signaling.

[0233] As an embodiment, the first information block is carried by an RRC IE (Information Element).

[0234] As an embodiment, the first information block includes one or more RRC IEs.

[0235] As an embodiment, the first information block includes part or all of the fields in an RRC IE.

[0236] As an embodiment, the first information block includes part or all of the fields in each RRC IE in multiple RRC IEs.

[0237] As an embodiment, the first information block is a MAC CE (Medium Access Control layer Control Element).

[0238] As an embodiment, the first information block includes one or more MAC CEs (Medium Access Control layer Control Element).

[0239] As an embodiment, the first information block is carried by at least one of RRC signaling or MAC CE signaling.

[0240] As an embodiment, the first information block includes IE NonCellDefiningSSB.

[0241] As an embodiment, the first information block includes part or all of the fields in IE NonCellDefiningSSB.

[0242] As an embodiment, the first information block includes a field whose name includes "ssb-Periodicity", the first physical channel is an SS / PBCH block or the first physical channel includes PBCH.

[0243] As an embodiment, the first information block includes ssb-Periodicity, the first physical channel is an SS / PBCH block or the first physical channel includes PBCH.

[0244] As an embodiment, the first information block includes a field whose name includes "ssb-TimeOffset", the first physical channel is an SS / PBCH block or the first physical channel includes PBCH.

[0245] As an embodiment, the first information block includes ssb-TimeOffset, the first physical channel is an SS / PBCH block or the first physical channel includes PBCH.

[0246] As an embodiment, the first information block includes IE ServingCellConfigCommon.

[0247] As an embodiment, the first information block includes part or all of the fields in the IE ServingCellConfigCommon.

[0248] As an embodiment, the first information block includes IE ServingCellConfigCommonSIB.

[0249] As an embodiment, the first information block includes part or all of the fields in the IE ServingCellConfigCommonSIB.

[0250] As an embodiment, the first information block includes ssb-periodicityServingCell, the first physical channel is an SS / PBCH block or the first physical channel includes PBCH.

[0251] As an embodiment, the first information block includes ssb-PositionsInBurst, the first physical channel is an SS / PBCH block or the first physical channel includes PBCH.

[0252] As an embodiment, for the specific definitions of IE NonCellDefiningSSB, IE ServingCellConfigCommon, ssb-Periodicity, ssb-TimeOffset, and IE ServingCellConfigCommonSIB, please refer to Section 6.3.2 of 3GPP TS 38.331.

[0253] As an embodiment, for the specific definitions of ssb-periodicityServingCell and ssb-PositionsInBurst, please refer to Section 4.1 of 3GPP TS 38.213 and Section 6.3.2 of 3GPP TS 38.331.

[0254] As an embodiment, the first information block includes an RRC IE whose name includes "PUCCH-Config".

[0255] As an embodiment, the first information block includes IE PUCCH-ConfigCommon.

[0256] As an embodiment, the first information block includes part or all of the fields in the IE PUCCH-ConfigCommon.

[0257] As an embodiment, the first information block includes IE PUCCH-Config.

[0258] As an embodiment, the first information block includes part or all of the fields in the IE PUCCH-Config.

[0259] As an embodiment, the first information block includes resourceSetToAddModList in IE PUCCH-Config.

[0260] As an embodiment, the first information block includes resourceToAddModList in IE PUCCH-Config.

[0261] As an embodiment, the first information block includes part or all of the fields in the IE PUCCH-Resource.

[0262] As an embodiment, the first information block includes part or all of the fields in the IE PUCCH-FormatConfig.

[0263] As an embodiment, for the specific definitions of IE PUCCH-ConfigCommon, IE PUCCH-Config, IE PUCCH-Resource, and IE PUCCH-FormatConfig, refer to Section 6.3.2 of 3GPP TS 38.331.

[0264] As an embodiment, the first information block includes an RRC IE whose name includes ControlResourceSet.

[0265] As an embodiment, the first information block includes one or more RRC IE ControlResourceSet.

[0266] As an embodiment, the first information block includes an RRC IE ControlResourceSet.

[0267] As an embodiment, the first information block includes an RRC IE ControlResourceSetZero.

[0268] As an embodiment, the first information block includes at least one of RRC IE ControlResourceSet or RRC IE ControlResourceSetZero.

[0269] As an embodiment, the specific definition of RRC IE ControlResourceSet refers to Section 6.3.2 of 3GPP TS 38.331.

[0270] As an embodiment, the specific definition of RRC IE ControlResourceSetZero refers to Section 6.3.2 of 3GPP TS 38.331.

[0271] As an embodiment, the first information block includes one or more RRC IE SearchSpaces.

[0272] As an embodiment, the first information block includes an RRC IE SearchSpace.

[0273] As an embodiment, the first information block includes at least one of RRC IE SearchSpace or RRC IE SearchSpaceZero.

[0274] As an embodiment, the specific definition of RRC IE SearchSpace refers to Section 6.3.2 of 3GPP TS 38.331.

[0275] As an embodiment, for the specific definition of RRC IE SearchSpaceZero, refer to Section 6.3.2 of 3GPP TS 38.331.

[0276] As an embodiment, the first information block includes an RRC IE whose name includes SearchSpace.

[0277] As an embodiment, the first information block includes an RRC IE whose name includes searchSpace.

[0278] As an embodiment, the first information block includes an RRC IE whose name includes pdcch-Config.

[0279] As an embodiment, the first information block includes an RRC IE whose name includes PDCCH.

[0280] As an embodiment, the first information block includes an RRC IE whose name includes pdcch.

[0281] As an embodiment, the first information block includes at least one of MIB, PDCCH-ConfigCommon, or PDCCH-Config.

[0282] As an embodiment, the first information block includes part or all of the fields included in one of MIB, PDCCH-ConfigCommon, or PDCCH-Config.

[0283] As an embodiment, the first information block includes at least one of pdcch-ConfigSIB1, searchSpaceSIB1, searchSpaceZero, searchSpaceOtherSystemInformation, or SearchSpace.

[0284] As an embodiment, the first information block includes pdcch-ConfigSIB1 in MIB, searchSpaceSIB1 in PDCCH-ConfigCommon, searchSpaceZero in PDCCH-ConfigCommon, searchSpaceOtherSystemInformation in PDCCH-ConfigCommon, ra-SearchSpace in PDCCH-ConfigCommon, sdt-SearchSpace in PDCCH-ConfigCommon, pagingSearchSpace in PDCCH-ConfigCommon, searchSpaceMCC, searchSpaceMTCH, pei-SearchSpace in pei-ConfigBWP, SearchSpace in PDCCH-Config, and at least one of SearchSpace, searchSpaceMCCH, or searchSpaceMTCH in pdcch-ConfigMulticast.

[0285] As an embodiment, the first information block includes at least one of pdcch-ConfigSIB1 in MIB, searchSpaceSIB1 in PDCCH-ConfigCommon, or searchSpaceZero in PDCCH-ConfigCommon; the first resource set includes a Type0-PDCCH CSS set.

[0286] As an embodiment, the first information block includes searchSpaceOtherSystemInformation in PDCCH-ConfigCommon; the first resource set includes a Type0A-PDCCH CSS set.

[0287] As an embodiment, the first information block includes at least one of searchSpaceMCCH or searchSpaceMTCH; the first resource set includes a Type0B-PDCCH CSS set.

[0288] As an embodiment, the first information block includes ra-SearchSpace in PDCCH-ConfigCommon; the first resource set includes a Type1-PDCCH CSS set.

[0289] As an embodiment, the first information block includes sdt-SearchSpace in PDCCH-ConfigCommon; the first resource set includes a Type1A-PDCCH CSS set.

[0290] As an embodiment, the first information block includes pagingSearchSpace in PDCCH-ConfigCommon; the first resource set includes a Type2-PDCCH CSS set.

[0291] As an embodiment, the first information block includes the pei-SearchSpace in the pei-ConfigBWP; the first resource set includes a Type2A-PDCCH CSS set.

[0292] As an embodiment, the first information block includes at least one of SearchSpace in PDCCH-Config, SearchSpace in pdcch-ConfigMulticast, searchSpaceMCCH, or searchSpaceMTCH; the first resource set includes a Type3-PDCCH CSS set.

[0293] As an embodiment, the first information block includes SearchSpace in PDCCH-Config; the first resource set includes a USS set.

[0294] As an embodiment, Q is equal to 2.

[0295] As an embodiment, Q is greater than 2.

[0296] As an embodiment, Q is a positive integer.

[0297] As an embodiment, the Q is configurable.

[0298] As an embodiment, there is at least one candidate value for the value of Q.

[0299] As an embodiment, the Q is indicated by MIB.

[0300] As an embodiment, the Q is carried by PBCH.

[0301] As an embodiment, the Q is configured by RRC signaling.

[0302] As an embodiment, the Q is configured by higher layer signaling.

[0303] As an embodiment, the Q has at least one candidate value, and which candidate value the Q is is indicated by the MIB.

[0304] As an embodiment, the Q has at least one candidate value, and which candidate value the Q is is indicated by RRC signaling.

[0305] As an embodiment, the Q has at least one candidate value, and which candidate value the Q is is indicated by higher layer signaling.

[0306] As an embodiment, each of the Q indexes is a PCI (Physical Cell Identity).

[0307] As an embodiment, at least one index among the Q indexes is a PCI (Physical Cell Identity).

[0308] As an embodiment, each index of the Q indexes is used to identify at least one cell.

[0309] As an embodiment, at least one index among the Q indexes is used to identify at least one cell.

[0310] As an embodiment, each of the Q indexes is used to identify at least one synchronization signal.

[0311] As an embodiment, at least one index among the Q indexes is used to identify at least one synchronization signal.

[0312] As an embodiment, each of the Q indexes is used to identify at least one TRP (Transmit-Receive Point).

[0313] As an embodiment, at least one index among the Q indexes is used to identify at least one TRP (Transmit-Receive Point).

[0314] As an embodiment, each of the Q indexes is used to identify at least one antenna panel.

[0315] As an embodiment, at least one index among the Q indexes is used to identify at least one antenna panel.

[0316] As an embodiment, each of the Q indexes is used to identify at least one RS resource.

[0317] As an embodiment, at least one index among the Q indexes is used to identify at least one RS resource.

[0318] As an embodiment, each of the Q indexes is used to identify at least one RS resource group.

[0319] As an embodiment, at least one index among the Q indexes is used to identify at least one RS resource group.

[0320] As an embodiment, one index among the Q indexes is used to generate a scrambling code sequence of the first physical channel.

[0321] As an embodiment, one index among the Q indexes is used to generate the RS sequence of the DMRS of the first physical channel.

[0322] As an embodiment, one index among the Q indexes is used to generate the scrambling code sequence of the first physical channel and the RS sequence of the DMRS of the first physical channel.

[0323] As an embodiment, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first category of resource set or the RS sequences of the DMRS of the physical channels in the first category of resource set, and the first index is one of the Q indexes; the second index is used to generate at least one of the scrambling code sequences of the physical channels in the second category of resource set or the RS sequences of the DMRS of the physical channels in the second category of resource set, and the second index is one of the Q indexes.

[0324] As a sub-embodiment of the above embodiment, the first index is used to generate a scrambling code sequence for a physical channel in the first type resource set.

[0325] As a sub-embodiment of the above embodiment, the first index is used to generate an RS sequence of a DMRS of a physical channel in the first type of resource set.

[0326] As a sub-embodiment of the above embodiment, the first index is used to generate a scrambling code sequence of a physical channel in the first type of resource set and an RS sequence of a DMRS of the physical channel in the first type of resource set.

[0327] As a sub-embodiment of the above embodiment, the second index is used to generate a scrambling code sequence for a physical channel in the second type resource set.

[0328] As a sub-embodiment of the above embodiment, the second index is used to generate an RS sequence of a DMRS of a physical channel in the second type of resource set.

[0329] As a sub-embodiment of the above embodiment, the second index is used to generate a scrambling code sequence of a physical channel in the second type of resource set and an RS sequence of a DMRS of the physical channel in the second type of resource set.

[0330] As an embodiment, the synchronization signal is an SS / PBCH (Synchronization Signal / Physical Broadcast Channel) block.

[0331] As an embodiment, the synchronization signal includes at least one of a primary synchronization signal (Primary Synchronization Signal) or a secondary synchronization signal (Secondary Synchronization Signal).

[0332] As an embodiment, the synchronization signal includes a primary synchronization signal and a secondary synchronization signal.

[0333] As an embodiment, the synchronization signal includes a primary synchronization signal.

[0334] As an embodiment, the synchronization signal includes a secondary synchronization signal.

[0335] As an embodiment, the synchronization signal is a primary synchronization signal.

[0336] As an embodiment, the synchronization signal is a secondary synchronization signal.

[0337] As an embodiment, each of the Q indexes is carried by at least one synchronization signal, including: each of the Q indexes is used to generate a sequence of the at least one synchronization signal.

[0338] As an embodiment, each of the Q indexes is carried by at least one synchronization signal, including: each of the Q indexes is directly used to generate a sequence of the at least one synchronization signal.

[0339] As an embodiment, each of the Q indexes is carried by at least one synchronization signal, including: each of the Q indexes is indirectly used to generate a sequence of the at least one synchronization signal.

[0340] As an embodiment, each of the Q indexes is carried by at least one synchronization signal, including: each of the Q indexes can be detected from the at least one synchronization signal.

[0341] As an embodiment, each of the Q indexes is carried by at least one synchronization signal, including: each of the Q indexes can be undoubtedly obtained from the at least one synchronization signal.

[0342] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of at least one synchronization signal, including: the sequence of at least one synchronization signal and the given index are in a functional relationship.

[0343] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of at least one synchronization signal, including: the sequence of at least one synchronization signal and the given index are in a mapping relationship.

[0344] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of at least one synchronization signal, including: the sequence of at least one synchronization signal and the given index are in a one-to-one correspondence.

[0345] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of at least one synchronization signal, including: the sequence of at least one synchronization signal is obtained by a sequence generation algorithm, wherein the given index is a parameter of the sequence generation algorithm.

[0346] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of at least one synchronization signal, including: the sequence of at least one synchronization signal is obtained by a sequence generation algorithm with the given index as a seed.

[0347] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of at least one synchronization signal, including: the sequence of at least one synchronization signal is obtained by a random sequence generation algorithm with the given index as a random seed.

[0348] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of the at least one synchronization signal, including: the given index includes a first sub-index and a second sub-index, and at least one of the first sub-index or the second sub-index is used to generate a sequence of the at least one synchronization signal.

[0349] As an embodiment, the given index is one of the Q indexes; the given index is used to generate a sequence of the at least one synchronization signal, including: the given index depends on a first sub-index and a second sub-index, and at least one of the first sub-index or the second sub-index is used to generate a sequence of the at least one synchronization signal.

[0350] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: the sequence of the at least one synchronization signal and at least one of the first sub-index or the second sub-index are in a functional relationship.

[0351] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: a mapping relationship between the sequence of the at least one synchronization signal and at least one of the first sub-index or the second sub-index.

[0352] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: the sequence of the at least one synchronization signal and at least one of the first sub-index or the second sub-index are in a one-to-one correspondence.

[0353] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: the sequence of the at least one synchronization signal is obtained by a sequence generation algorithm, wherein at least one of the first sub-index or the second sub-index is a parameter of the sequence generation algorithm.

[0354] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: the sequence of the at least one synchronization signal is obtained by a sequence generation algorithm with at least one of the first sub-index or the second sub-index as a seed.

[0355] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: the sequence of the at least one synchronization signal is obtained by a random sequence generation algorithm with at least one of the first sub-index or the second sub-index as a random seed.

[0356] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: the at least one synchronization signal includes a primary synchronization signal, and the second sub-index is used to generate the sequence of the primary synchronization signal.

[0357] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate the sequence of the at least one synchronization signal, including: the at least one synchronization signal includes a secondary synchronization signal, and the second sub-index is used to generate the sequence of the secondary synchronization signal.

[0358] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate a sequence of the at least one synchronization signal, including: the at least one synchronization signal includes a secondary synchronization signal, and the first sub-index and the second sub-index are used to generate a sequence of the secondary synchronization signal.

[0359] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate a sequence of the at least one synchronization signal, including: the at least one synchronization signal includes a primary synchronization signal and a secondary synchronization signal; the second sub-index is used to generate a sequence of the primary synchronization signal, and the first sub-index is used to generate a sequence of the secondary synchronization signal.

[0360] As an embodiment, at least one of the first sub-index or the second sub-index is used to generate a sequence of the at least one synchronization signal, including: the at least one synchronization signal includes a primary synchronization signal and a secondary synchronization signal; the second sub-index is used to generate a sequence of the primary synchronization signal, and the first sub-index and the second sub-index are used to generate a sequence of the secondary synchronization signal.

[0361] As an embodiment, the second sub-index is used to generate the sequence of the primary synchronization signal, including: the sequence of the primary synchronization signal and the second sub-index are in a functional relationship.

[0362] As an embodiment, the second sub-index is used to generate the sequence of the primary synchronization signal, including: the sequence of the primary synchronization signal and the second sub-index are in a mapping relationship.

[0363] As an embodiment, the second sub-index is used to generate the sequence of the primary synchronization signal, including: the sequence of the primary synchronization signal and the second sub-index are in a one-to-one correspondence.

[0364] As an embodiment, the second sub-index is used to generate the sequence of the primary synchronization signal, including: the sequence of the primary synchronization signal is obtained by a sequence generation algorithm, wherein the second sub-index is a parameter of the sequence generation algorithm.

[0365] As an embodiment, the second sub-index is used to generate the sequence of the primary synchronization signal, including: the sequence of the primary synchronization signal is obtained by a sequence generation algorithm using the second sub-index as a seed.

[0366] As an embodiment, the second sub-index is used to generate the sequence of the primary synchronization signal, including: the sequence of the primary synchronization signal is obtained by a random sequence generation algorithm using the second sub-index as a random seed.

[0367] As an embodiment, the second sub-index is used to generate the sequence of the primary synchronization signal, including: the sequence of the primary synchronization signal is obtained by a sequence generation algorithm, wherein the second sub-index is a parameter of the sequence generation algorithm, and the specific implementation method of the sequence generation algorithm refers to Section 7.2.2.2 of 3GPP TS 38.211.

[0368] As an embodiment, the first sub-index and the second sub-index are used to generate the sequence of the secondary synchronization signal, including: the sequence of the secondary synchronization signal is a function of the first sub-index and the second sub-index.

[0369] As an embodiment, the first sub-index and the second sub-index are used to generate the sequence of the secondary synchronization signal, including: the sequence of the secondary synchronization signal is a function with the first sub-index and the second sub-index as parameters.

[0370] As an embodiment, the first sub-index and the second sub-index are used to generate the sequence of the secondary synchronization signal, including: the sequence of the secondary synchronization signal is a function with the first sub-index and the second sub-index as input parameters.

[0371] As an embodiment, the first sub-index and the second sub-index are used to generate the sequence of the secondary synchronization signal, including: the sequence of the secondary synchronization signal is obtained by a sequence generation algorithm, wherein the first sub-index and the second sub-index are parameters of the sequence generation algorithm.

[0372] As an embodiment, the first sub-index and the second sub-index are used to generate the sequence of the secondary synchronization signal, including: the sequence of the secondary synchronization signal is obtained by a sequence generation algorithm using the first sub-index and the second sub-index as seeds.

[0373] As an embodiment, the first sub-index and the second sub-index are used to generate the sequence of the secondary synchronization signal, including: the sequence of the secondary synchronization signal is obtained by a random sequence generation algorithm with the first sub-index and the second sub-index as random seeds.

[0374] As an embodiment, the first sub-index and the second sub-index are used to generate the sequence of the secondary synchronization signal, including: the sequence of the secondary synchronization signal is obtained by a sequence generation algorithm, wherein the first sub-index and the second sub-index are parameters of the sequence generation algorithm, and the specific implementation method of the sequence generation algorithm refers to Section 7.2.2.3 of 3GPP TS 38.211.

[0375] As an embodiment, the physical channels in the first type of resource set and the physical channels in the second type of resource set are both physical downlink channels.

[0376] As an embodiment, the physical channel in the first type of resource set and the physical channel in the second type of resource set are the same physical downlink channel.

[0377] As an embodiment, some physical channels in the first type of resource set and some physical channels in the second type of resource set are the same physical downlink channels.

[0378] As an embodiment, the physical channel in the first type of resource set and the physical channel in the second type of resource set are different physical downlink channels.

[0379] As an embodiment, the physical channels in the first type of resource set and the physical channels in the second type of resource set are different physical downlink channels and do not overlap with each other.

[0380] As an embodiment, the physical channels in the first type of resource set and the physical channels in the second type of resource set are different physical downlink channels, but overlap with each other.

[0381] As an embodiment, the physical channel in the first type of resource set is used to transmit at least one of control information or system information.

[0382] As an embodiment, the physical channel in the first type of resource set is a PBCH (physical broadcast channel).

[0383] As an embodiment, the physical channel in the first type of resource set is a PDCCH (Physical downlink control channel).

[0384] As an embodiment, the first type of physical channel is one of PBCH or PDCCH.

[0385] As an embodiment, the physical channel in the second type of resource set is used to transmit at least one of control information or system information.

[0386] As an embodiment, the physical channel in the second type of resource set is PBCH.

[0387] As an embodiment, the physical channel in the second type of resource set is PDCCH.

[0388] As an embodiment, the second type of physical channel is one of PBCH or PDCCH.

[0389] As an embodiment, the spatial characteristics of the physical channels in the first type of resource set depend on an RS resource.

[0390] As an embodiment, the spatial characteristics of the physical channels in the first type of resource set depend on multiple RS resources.

[0391] As an embodiment, the spatial characteristics of the physical channels in the first type of resource set depend on at least one RS resource.

[0392] As an embodiment, the spatial characteristics of the physical channels in the second type of resource set depend on one RS resource.

[0393] As an embodiment, the spatial characteristics of the physical channels in the second type of resource set depend on multiple RS resources.

[0394] As an embodiment, the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource.

[0395] As an embodiment, one synchronization signal determines a first type of search space set, and the first type of search space sets respectively determined by two synchronization signals carrying different indexes among the Q indexes are overlapping.

[0396] As an embodiment, a synchronization signal determines a first type of search space set, and the first type of search space sets determined by two synchronization signals carrying different indexes among the Q indexes are overlapping, and the UE (user equipment) infers the large-scale characteristics of the physical channel in the first type of resource set based only on one of the two synchronization signals.

[0397] As an embodiment, a synchronization signal determines a first type of search space set, and the first type of search space sets determined by two synchronization signals carrying different indexes among the Q indexes are overlapping, and the UE (user equipment) infers the large-scale characteristics of the physical channel in the first type of resource set only based on one of the detected synchronization signals of the two synchronization signals.

[0398] As an embodiment, one synchronization signal determines a first type of search space set, and the first type of search space sets respectively determined by two synchronization signals carrying different indexes among the Q indexes are non-overlapping.

[0399] As an embodiment, a synchronization signal determines a first type of search space set, and the first type of search space sets determined by two synchronization signals carrying different indexes among the Q indexes are non-overlapping, and the UE (user equipment) infers the large-scale characteristics of two different physical channels in the second type of resource set based on the two synchronization signals.

[0400] As an embodiment, a synchronization signal determines a first type of search space set, and the first type of search space sets determined by two synchronization signals carrying different indexes among the Q indexes are non-overlapping, and the UE (user equipment) infers the large-scale characteristics of the physical channels in the first type of resource set and the second type of resource set based on the two synchronization signals.

[0401] As an embodiment, the large-scale characteristic of the physical channel is a large-scale characteristic of a channel transmitting the physical channel.

[0402] As an embodiment, the large-scale characteristic of the physical channel is a large-scale characteristic of a channel that transmits a signal on the physical channel.

[0403] As an embodiment, the large scale properties include one or more of delay spread, Doppler spread, Doppler shift, average delay, average gain or spatial Rx parameter.

[0404] As an embodiment, the large-scale characteristics include: delay spread, Doppler spread, Doppler shift and average delay.

[0405] As an embodiment, the large-scale characteristics include: delay spread, Doppler spread, Doppler shift, average delay and spatial reception parameters.

[0406] As an embodiment, the large-scale characteristics include: delay spread, Doppler spread, Doppler shift, average delay, spatial transmission parameters and spatial reception parameters.

[0407] As an embodiment, the large-scale characteristics include: spatial reception parameters.

[0408] As an embodiment, the large-scale characteristics include: spatial transmission parameters.

[0409] As an embodiment, the large-scale characteristics include: at least one of a spatial transmission parameter or a spatial reception parameter.

[0410] As an embodiment, the large-scale characteristics include: spatial transmission parameters and spatial reception parameters.

[0411] As an embodiment, the large-scale characteristics include: Doppler spread and Doppler shift.

[0412] As an embodiment, the large-scale characteristics include: Doppler shift and average delay.

[0413] As an embodiment, the method for estimating the large-scale characteristics of the channel includes but is not limited to: channel estimation, equalization, averaging, filtering, receive beam scanning, RSRP (Reference signal received power) / RSRQ (Reference Signal Received Quality) measurement, angle of arrival (Angle of Arrival) / angle of departure (Angle-of-Departure) estimation, channel decomposition, mathematical operations, matrix decomposition, quantization, interpolation or table lookup or one or more.

[0414] As an embodiment, which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: the first node determines which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to whether the first resource set is the first category of resource set or the second category of resource set.

[0415] As an embodiment, which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: the first node determines which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to whether the first resource set belongs to the first category of resource set or the second category of resource set.

[0416] As an embodiment, which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: how to determine the index of the Q indexes of at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, depending on whether the first resource set belongs to the first category of resource set or the second category of resource set.

[0417] As an embodiment, which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: whether the first resource set belongs to the first category of resource set or the second category of resource set is used to determine which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel.

[0418] As an embodiment, which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

[0419] As an embodiment, which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, a predefined or default index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel; when the first resource set belongs to the first category of resource set, the first node determines, according to the indication of the base station, which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel.

[0420] As an embodiment, which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, the first index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel; when the first resource set belongs to the first category of resource set, the first node determines which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to the indication of the base station.

[0421] As an embodiment, which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, the last index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel; when the first resource set belongs to the first category of resource set, the first node determines which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to the indication of the base station.

[0422] As an embodiment, which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, one of the Q indexes determined by the first node itself is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel; when the first resource set belongs to the first category of resource set, the first node determines which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to the indication of the base station.

[0423] As an embodiment, which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, one of the Q indexes indicated by the first information block is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel; when the first resource set belongs to the first category of resource set, the first node determines which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to the indication of the base station.

[0424] As an embodiment, which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, one of the Q indexes carried by the synchronization signal detected by the first node is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel; when the first resource set belongs to the first category of resource set, the first node determines which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to the indication of the base station.

[0425] As an embodiment, which of the Q indexes is used to generate the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: whether the first index is used to generate the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, and the first index is one of the Q indexes.

[0426] As an embodiment, whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: the first node determines whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel based on whether the first resource set belongs to the first category of resource set or the second category of resource set.

[0427] As an embodiment, whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel.

[0428] As an embodiment, whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the second category of resource set, the first index is not used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel.

[0429] As an embodiment, whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the second category of resource set, the first node determines whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel according to the instructions of the base station.

[0430] As an embodiment, whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first category of resource set or the second category of resource set, including: when the first resource set belongs to the second category of resource set, the first node determines by itself whether the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel.

[0431] As an embodiment, a CORESET (Control Resource Set) includes multiple REs (Resource Elements).

[0432] Typically, a resource element occupies a subcarrier in the frequency domain and a symbol in the time domain.

[0433] As an embodiment, the symbol is a single carrier symbol.

[0434] As an embodiment, the symbol is a multi-carrier symbol.

[0435] As an embodiment, the multi-carrier symbol is an OFDM (Orthogonal Frequency Division Multiplexing) symbol.

[0436] As an embodiment, the symbol is obtained by performing OFDM symbol generation on the output of a transform precoding.

[0437] As an embodiment, the symbol is an SC-FDMA (Single Carrier-Frequency Division Multiple Access) symbol.

[0438] As an embodiment, the symbol is a DFT-S-OFDM (Discrete Fourier Transform Spread OFDM) symbol.

[0439] As an embodiment, the multi-carrier symbol is a FBMC (Filter Bank Multi Carrier) symbol.

[0440] As an embodiment, the multi-carrier symbol includes a CP (Cyclic Prefix).

[0441] As an embodiment, a CORESET (Control Resource Set, CORESET) includes at least one CCE (Control Channel Element, control channel element).

[0442] As an embodiment, one CCE includes 9 REGs (Resource Element Groups), and one REG includes 4 REs.

[0443] As an embodiment, one CCE includes 6 REGs, and one REG includes 12 REs.

[0444] As an embodiment, a CORESET is configured by RRC IE (Information Element) ControlResourceSet.

[0445] As an embodiment, the specific definition of CORESET refers to Chapter 10 of 3GPP TS 38.213.

[0446] As an embodiment, the specific definition of RRC IE ControlResourceSet refers to Section 6.3.2 of 3GPP TS 38.331.

[0447] As an embodiment, a CORESET corresponds to at least one search space (Search Space) set.

[0448] As an embodiment, any CORESET among the multiple CORESETs corresponds to one or more search space sets.

[0449] As an embodiment, any CORESET among the multiple CORESETs corresponds to only one search space set.

[0450] As an embodiment, a search space set corresponding to a CORESET is a USS set or a CSS set.

[0451] As an embodiment, a PDCCH (Physical Downlink Control CHannel) candidate in a CORESET belongs to the CORESET in the frequency domain.

[0452] As an embodiment, a PDCCH candidate in a CORESET is a PDCCH candidate in a search space set corresponding to the CORESET.

[0453] As an embodiment, a PDCCH candidate in a CORESET consists of at least one CCE in the CORESET.

[0454] As an embodiment, any PDCCH candidate in the search space set corresponding to a CORESET is composed of at least one CCE of the CORESET.

[0455] As an embodiment, a PDCCH candidate in a search space set corresponding to a CORESET belongs to the CORESET.

[0456] As an embodiment, the search space set corresponding to a CORESET includes: the search space set corresponding to a CORESET is associated with the CORESET.

[0457] As an embodiment, a search space set is associated with a CORESET, including: the CORESET corresponds to the search space set.

[0458] As an embodiment, a search space set is associated with a CORESET, including: the configuration information of the search space set includes an index of the CORESET.

[0459] As an embodiment, the search space set corresponding to a CORESET includes: a CORESET is used to determine the time-frequency resources occupied by the search space set corresponding to the CORESET in a PDCCH monitoring occasion (Monitoring Occasion).

[0460] As an embodiment, the search space set corresponding to a CORESET includes: a CORESET includes time-frequency resources occupied by the search space set corresponding to the CORESET in a PDCCH monitoring occasion (Monitoring Occasion).

[0461] As an embodiment, the search space set corresponding to a CORESET includes: REs occupied by a CORESET include REs occupied by the search space set corresponding to the CORESET in a PDCCH monitoring occasion (Monitoring Occasion).

[0462] As an embodiment, the search space set corresponding to a CORESET includes: RB(s) occupied by a CORESET in the frequency domain includes RB(s) occupied by the search space set corresponding to a CORESET in the frequency domain.

[0463] As an embodiment, the search space set corresponding to a CORESET includes: the frequency domain resources occupied by a CORESET include the frequency domain resources occupied by the search space set corresponding to the CORESET.

[0464] As an embodiment, the search space set corresponding to a CORESET includes: symbols (symbol(s)) occupied by a CORESET are used to determine symbols (symbol(s)) occupied by the search space set corresponding to the CORESET in a PDCCH monitoring opportunity.

[0465] As an embodiment, the search space set corresponding to a CORESET includes: the symbols (symbol(s)) occupied by a CORESET include the symbols (symbol(s)) occupied by the search space set corresponding to the CORESET in a PDCCH monitoring opportunity.

[0466] As an embodiment, the symbols (symbol(s)) occupied by a PDCCH monitoring opportunity of a CORESET belong to the symbols occupied by the CORESET.

[0467] As an embodiment, the symbols (symbol(s)) occupied by a PDCCH monitoring opportunity of a CORESET include the symbols occupied by the CORESET.

[0468] As an embodiment, the search space set corresponding to a CORESET includes: the configuration information of the search space set corresponding to a CORESET includes the index of the CORESET.

[0469] As an embodiment, the search space set corresponding to a CORESET includes: the search space set corresponding to a CORESET is a search space set configured with an index of the CORESET.

[0470] As an embodiment, a PDCCH monitoring occasion (Monitoring Occasion) includes a time period.

[0471] As an embodiment, a PDCCH monitoring occasion (Monitoring Occasion) includes one or more symbols.

[0472] As an embodiment, a PDCCH monitoring occasion (Monitoring Occasion) includes a time slot (slot).

[0473] As an embodiment, a PDCCH monitoring occasion (Monitoring Occasion) includes a sub-slot (sub-slot).

[0474] As an embodiment, one PDCCH monitoring occasion (Monitoring Occasion) includes one subframe (subframe).

[0475] As an embodiment, a PDCCH monitoring occasion (Monitoring Occasion) includes one or more symbols in a time slot.

[0476] As an embodiment, a PDCCH monitoring occasion (Monitoring Occasion) includes a symbol occupied by a CORESET in a time slot.

[0477] Example 2

[0478] Example 2 illustrates a schematic diagram of a network architecture according to an embodiment of the present application, as shown in Figure 2.

[0479] FIG2 illustrates a network architecture 200. The network architecture 200 is a 5G NR (New Radio) / LTE (Long-Term Evolution) / LTE-A (Long-Term Evolution Advanced) system, or a 5G+ network architecture, or a 6G network architecture, or a network architecture adopted by 3GPP in future evolution. The network architecture 200 may be referred to as a 5GS (5G System) / EPS (Evolved Packet System), or a 6GS (6G System). The network architecture 200 includes at least one of a UE (User Equipment) 201, a RAN (Radio Access Network) 202, a core network 210, a Home Subscriber Server (HSS) / Unified Data Management (UDM) 220, and an Internet service 230. The network architecture 200 can be interconnected with other access networks, but for simplicity these entities / interfaces are not shown. As shown, the network architecture 200 provides packet-switched services, but those skilled in the art will readily appreciate that the various concepts presented throughout this application can be extended to networks providing circuit-switched services or other cellular networks. The RAN includes a node 203. The RAN may also include other nodes 204. The node 203 provides user and control plane protocol terminations towards the UE 201. The node 203 may be connected to the other nodes 204 via an Xn interface (e.g., backhaul) / X2 interface. The node 203 may also be referred to as a base station, a base transceiver station, a radio base station, a radio transceiver, a transceiver function, a basic service set (BSS), an extended service set (ESS), a TRP (transmitter receive node), or some other appropriate terminology. The core network 210 is 5GC (5G Core Network) / EPC (Evolved Packet Core), or the core network 210 is 6GC; the node 203 provides an access point to the core network 210 for the UE 201.Examples of UE 201 include cellular phones, smart phones, Session Initiation Protocol (SIP) phones, laptop computers, personal digital assistants (PDAs), satellite radios, non-terrestrial base station communications, satellite mobile communications, global positioning systems, multimedia devices, video devices, digital audio players (e.g., MP3 players), cameras, game consoles, drones, aircraft, narrowband Internet of Things devices, machine type communication devices, land vehicles, cars, wearable devices, or any other similar functional devices. Those skilled in the art may also refer to UE 201 as a mobile station, subscriber station, mobile unit, subscriber unit, wireless unit, remote unit, mobile device, wireless device, wireless communication device, remote device, mobile subscriber station, access terminal, mobile terminal, wireless terminal, remote terminal, handset, user agent, mobile client, client, or some other suitable term. Node 203 is connected to the core network 210 via an S1 / NG interface. The core network 210 includes the MME (Mobility Management Entity) / AMF (Authentication Management Field) / SMF (Session Management Function) 211, other MMEs / AMFs / SMFs 214, the S-GW (Service Gateway) / UPF (User Plane Function) 212, and the P-GW (Packet Data Network Gateway) / UPF 213. The MME / AMF / SMF 211 is the control node that handles signaling between the UE 201 and the core network 210. Generally, the MME / AMF / SMF 211 provides bearer and connection management. All user Internet Protocol (IP) packets are transmitted through the S-GW / UPF 212, which is itself connected to the P-GW / UPF 213. The P-GW provides UE IP address allocation and other functions. The P-GW / UPF 213 is connected to the Internet service 230. Internet services 230 include operator-specific Internet protocol services, which may include the Internet, intranet, IMS (IP Multimedia Subsystem), and packet-switched streaming services.

[0480] As an embodiment, the first node in the present application includes the UE201.

[0481] As an embodiment, the second node in the present application includes the gNB203.

[0482] As an embodiment, the wireless link between the UE201 and the gNB203 includes a cellular network link.

[0483] As an embodiment, the gNB203 supports multiple TRP / panel transmission.

[0484] As an embodiment, the UE201 or the UE241 supports multiple TRP / panel transmissions.

[0485] As an embodiment, the gNB203 supports multi-cell transmission.

[0486] As an embodiment, the UE 201 supports multi-cell transmission.

[0487] As an embodiment, the gNB203 supports reconfigurable intelligent surface (RIS) transmission.

[0488] As an embodiment, the UE 201 supports Reconfigurable Intelligent Surface (RIS) transmission.

[0489] As an embodiment, the gNB203 supports distributed MIMO transmission.

[0490] As an embodiment, the UE 201 supports distributed MIMO transmission.

[0491] As an embodiment, the gNB203 supports coordinated multi-point (CoMP) transmission.

[0492] As an embodiment, the UE 201 supports coordinated multi-point (CoMP) transmission.

[0493] Example 3

[0494] Embodiment 3 illustrates a schematic diagram of an embodiment of a wireless protocol architecture of a user plane and a control plane according to an embodiment of the present application, as shown in FIG3 .

[0495] Embodiment 3 illustrates a schematic diagram of an embodiment of a radio protocol architecture for a user plane and a control plane according to the present application, as shown in FIG3 . FIG3 is a schematic diagram illustrating an embodiment of a radio protocol architecture for a user plane 350 and a control plane 300. FIG3 illustrates the radio protocol architecture of the control plane 300 for communication between a first communication node device (UE, gNB, or RSU in V2X) and a second communication node device (gNB, UE, or RSU in V2X), or between two UEs, using three layers: Layer 1, Layer 2, and Layer 3. Layer 1 (L1 layer) is the lowest layer and implements various PHY (physical layer) signal processing functions. The L1 layer will be referred to herein as PHY 301. Layer 2 (L2 layer) 305, located above PHY 301, is responsible for the link between the first communication node device and the second communication node device, or between two UEs. The L2 layer 305 includes a MAC (Medium Access Control) sublayer 302, an RLC (Radio Link Control) sublayer 303, and a PDCP (Packet Data Convergence Protocol) sublayer 304, which terminate at the second communication node device. The PDCP sublayer 304 provides multiplexing between different radio bearers and logical channels. The PDCP sublayer 304 also provides security by encrypting data packets, and provides support for inter-zone mobility of the first communication node device between the second communication node devices. The RLC sublayer 303 provides segmentation and reassembly of upper layer data packets, retransmission of lost data packets, and reordering of data packets to compensate for out-of-order reception due to HARQ. The MAC sublayer 302 provides multiplexing between logical and transport channels. The MAC sublayer 302 is also responsible for allocating various radio resources (e.g., resource blocks) in a cell between the first communication node devices. The MAC sublayer 302 is also responsible for HARQ operations. The RRC (Radio Resource Control) sublayer 306 in Layer 3 (L3 layer) in the control plane 300 is responsible for obtaining radio resources (i.e., radio bearers) and configuring lower layers using RRC signaling between the second communication node device and the first communication node device. The radio protocol architecture of the user plane 350 includes Layer 1 (L1 layer) and Layer 2 (L2 layer). The radio protocol architecture for the first communication node device and the second communication node device in the user plane 350 is substantially the same as the corresponding layers and sublayers in the control plane 300 for the physical layer 351, the PDCP sublayer 354 in the L2 layer 355, the RLC sublayer 353 in the L2 layer 355, and the MAC sublayer 352 in the L2 layer 355. However, the PDCP sublayer 354 also provides header compression for upper layer data packets to reduce radio transmission overhead.The L2 layer 355 in the user plane 350 also includes an SDAP (Service Data Adaptation Protocol) sublayer 356. The SDAP sublayer 356 is responsible for mapping between QoS flows and data radio bearers (DRBs) to support service diversity. Although not shown in the figure, the first communication node device may have several upper layers above the L2 layer 355, including a network layer (e.g., an IP layer) terminated at the P-GW on the network side and an application layer terminated at the other end of the connection (e.g., a remote UE, a server, etc.).

[0496] As an embodiment, the wireless protocol architecture in FIG3 is applicable to the first node in this application.

[0497] As an embodiment, the wireless protocol architecture in FIG3 is applicable to the second node in this application.

[0498] As an embodiment, the first information block is generated in the RRC sublayer 306.

[0499] As an embodiment, the first information block is generated in the MAC sublayer 302 or the MAC sublayer 352.

[0500] As an embodiment, the first information block is generated in PHY301 or PHY351.

[0501] As an embodiment, the second information block is generated in the RRC sublayer 306.

[0502] As an embodiment, the second information block is generated in the MAC sublayer 302 or the MAC sublayer 352.

[0503] As an embodiment, the second information block is generated in PHY301 or PHY351.

[0504] As an embodiment, the third information block is generated in the RRC sublayer 306.

[0505] As an embodiment, the third information block is generated in the MAC sublayer 302 or the MAC sublayer 352 .

[0506] As an embodiment, the third information block is generated in PHY301 or PHY351.

[0507] As an embodiment, the first physical channel is generated by the PHY301 or the PHY351.

[0508] As an embodiment, the first physical channel is generated in at least one of the MAC sublayer 302 , the MAC sublayer 352 , the PHY 301 or the PHY 351 .

[0509] As an embodiment, the second physical channel is generated by the PHY301 or the PHY351.

[0510] As an embodiment, the first signal is generated by the PHY 301 or the PHY 351 .

[0511] As an embodiment, the higher layer in this application refers to a layer above the physical layer.

[0512] As an embodiment, the higher layer in this application refers to the MAC layer.

[0513] As an embodiment, the higher layer in this application refers to the physical layer.

[0514] As an embodiment, the higher layer in this application refers to the MAC layer or the physical layer.

[0515] Example 4

[0516] Embodiment 4 illustrates a schematic diagram of a first communication device and a second communication device according to an embodiment of the present application, as shown in Figure 4. Figure 4 is a block diagram of a first communication device 410 and a second communication device 450 communicating with each other in an access network.

[0517] The first communications device 410 includes a controller / processor 475 , a memory 476 , a receive processor 470 , a transmit processor 416 , a multi-antenna receive processor 472 , a multi-antenna transmit processor 471 , a transmitter / receiver 418 , and an antenna 420 .

[0518] The second communication device 450 includes a controller / processor 459 , a memory 460 , a data source 467 , a transmit processor 468 , a receive processor 456 , a multi-antenna transmit processor 457 , a multi-antenna receive processor 458 , a transmitter / receiver 454 and an antenna 452 .

[0519] In transmission from the first communications device 410 to the second communications device 450, at the first communications device 410, upper layer data packets from the core network are provided to the controller / processor 475. The controller / processor 475 implements the functionality of the L2 layer. In the DL, the controller / processor 475 provides header compression, encryption, packet segmentation and reordering, multiplexing between logical and transport channels, and allocation of radio resources to the second communications device 450 based on various priority metrics. The controller / processor 475 is also responsible for HARQ operations, retransmission of lost packets, and signaling to the second communications device 450. The transmit processor 416 and the multi-antenna transmit processor 471 implement various signal processing functions for the L1 layer (i.e., the physical layer). The transmit processor 416 implements coding and interleaving to facilitate forward error correction (FEC) at the second communication device 450, as well as constellation mapping based on various modulation schemes (e.g., binary phase shift keying (BPSK), quadrature phase shift keying (QPSK), M-phase shift keying (M-PSK), M-quadrature amplitude modulation (M-QAM). The multi-antenna transmit processor 471 performs digital spatial precoding, including codebook-based precoding and non-codebook-based precoding, and beamforming processing on the coded and modulated symbols to generate one or more parallel The transmit processor 416 then maps each parallel stream to a subcarrier, multiplexes the modulated symbols with a reference signal (e.g., a pilot) in the time and / or frequency domain, and then uses an inverse fast Fourier transform (IFFT) to generate a physical channel carrying the time-domain multi-carrier symbol stream. The multi-antenna transmit processor 471 then performs transmit analog precoding / beamforming operations on the time-domain multi-carrier symbol stream. Each transmitter 418 converts the baseband multi-carrier symbol stream provided by the multi-antenna transmit processor 471 into a radio frequency stream, which is then provided to a different antenna 420.

[0520] During transmission from the first communications device 410 to the second communications device 450, each receiver 454 receives a signal at the second communications device 450 via its corresponding antenna 452. Each receiver 454 recovers the information modulated onto the RF carrier and converts the RF stream into a baseband multi-carrier symbol stream, which is provided to the receive processor 456. The receive processor 456 and the multi-antenna receive processor 458 implement various L1 signal processing functions. The multi-antenna receive processor 458 performs receive analog precoding / beamforming operations on the baseband multi-carrier symbol stream from the receiver 454. The receive processor 456 converts the baseband multi-carrier symbol stream, after the receive analog precoding / beamforming operations, from the time domain to the frequency domain using a fast Fourier transform (FFT). In the frequency domain, the physical layer data signal and reference signal are demultiplexed by the receive processor 456, where the reference signal is used for channel estimation. The data signal undergoes multi-antenna detection in the multi-antenna receive processor 458 to recover any parallel streams destined for the second communications device 450. The symbols on each parallel stream are demodulated and recovered in the receive processor 456, and soft decisions are generated. The receive processor 456 then decodes and deinterleaves the soft decisions to recover the upper layer data and control signals transmitted by the first communication device 410 on the physical channel. The upper layer data and control signals are then provided to the controller / processor 459. The controller / processor 459 implements the functions of the L2 layer. The controller / processor 459 may be associated with a memory 460 that stores program code and data. The memory 460 may be referred to as a computer-readable medium. In the DL (Downlink), the controller / processor 459 provides demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, and control signal processing to recover upper layer data packets from the core network. The upper layer data packets are then provided to all protocol layers above the L2 layer. Various control signals may also be provided to the L3 layer for L3 processing. The controller / processor 459 is also responsible for error detection using an acknowledgement (ACK) and / or negative acknowledgement (NACK) protocol to support HARQ operations.

[0521] During transmission from the second communications device 450 to the first communications device 410, at the second communications device 450, a data source 467 is used to provide upper layer data packets to the controller / processor 459. The data source 467 represents all protocol layers above the L2 layer. Similar to the transmit functionality at the first communications device 410 described in the DL, the controller / processor 459 implements header compression, encryption, packet segmentation and reordering, and multiplexing between logical and transport channels based on the radio resource allocation of the first communications device 410, implementing L2 layer functions for the user plane and control plane. The controller / processor 459 is also responsible for HARQ operations, retransmission of lost packets, and signaling to the first communications device 410. The transmit processor 468 performs modulation mapping and channel coding, while the multi-antenna transmit processor 457 performs digital multi-antenna spatial precoding, including codebook-based and non-codebook-based precoding, and beamforming. The transmit processor 468 then modulates the resulting parallel streams into multi-carrier / single-carrier symbol streams. After analog precoding and beamforming operations in the multi-antenna transmit processor 457, these streams are provided to different antennas 452 via the transmitter 454. Each transmitter 454 first converts the baseband symbol stream provided by the multi-antenna transmit processor 457 into a RF symbol stream before providing it to the antenna 452.

[0522] During transmission from the second communication device 450 to the first communication device 410, the functionality at the first communication device 410 is similar to the reception functionality at the second communication device 450 described for transmission from the first communication device 410 to the second communication device 450. Each receiver 418 receives RF signals via its corresponding antenna 420, converts the received RF signals into baseband signals, and provides the baseband signals to the multi-antenna receive processor 472 and the receive processor 470. The receive processor 470 and the multi-antenna receive processor 472 collectively implement L1 layer functionality. The controller / processor 475 implements L2 layer functionality. The controller / processor 475 may be associated with a memory 476 storing program code and data. The memory 476 may be referred to as a computer-readable medium. The controller / processor 475 provides demultiplexing between transmit and logical channels, packet reassembly, decryption, header decompression, and control signal processing to recover upper layer data packets from the second communication device 450. The upper layer data packets from the controller / processor 475 may be provided to the core network. The controller / processor 475 is also responsible for error detection using an ACK and / or NACK protocol to support HARQ operations.

[0523] The RIS 490 can be controlled by the first communication device 410 and / or the second communication device 450 to modify channel implementation in a controlled manner, improve channel diversity, and provide robustness to channel obstruction / fading. The first communication device 410 or the second communication device 450 can be referred to as a control node of the RIS 490. At least one of the transmit processor 416, receive processor 470, and controller / processor 475 of the first communication device 410 can be configured to perform various aspects in conjunction with the controller 491 of the RIS 490. Alternatively, at least one of the transmit processor 468, receive processor 456, and controller / processor 459 of the second communication device 450 can be configured to perform various aspects in conjunction with the controller 491 of the RIS 490.

[0524] The first communication device 410 and / or the second communication device 450 uses the RIS 490 to perform communication, sensing, and / or positioning functions. Information about the RIS 490 may be known to the network based on network planning, and the base station may provide the location of the RIS 490 and other information about the RIS 490 to other nodes (e.g., terminals in a cellular cell). For example, the base station may transmit information about the RIS 490 in system information. Each terminal within the coverage area of ​​the cellular cell may receive the system information to discover the existence, location, capabilities, or other information about the RIS 490.

[0525] During transmission when the first communication device 410 and / or the second communication device 450 communicate using the RIS 490, a plurality of resonant elements form a RIS surface 492 at the RIS 490. Downlink signals are received from the first communication device 410, or uplink signals are received from the second communication device 450. Each resonant element can adjust (e.g., apply a phase shift to directionally reflect the received signal) the corresponding received signal. A controller 491 can configure phase or amplitude changes by applying precoding weights to each resonant element, enabling the RIS 490 to reradiate the output beam in different directions given a specific input beam.

[0526] In some cases, when the RIS 490 operates passively to merely reflect or refract a beam from a transmitter to a receiver, the RIS 490 can function as a nearly passive device, operating without significant power consumption. In some cases, the direction of reflection or refraction can be controlled by a control node or network controller.

[0527] In transmission from the control node and the RIS 490, in the DL, at the RIS 490, the controller 491 may receive a signal from the control node and further process the received signal (e.g., digitize the received signal). In the UL, at the RIS 490, in response to information from the control node or data updates from the RIS 490, information / data from the controller 491 is sent or provided to the control node.

[0528] As an embodiment, the second communication device 450 includes: at least one processor and at least one memory, the at least one memory including computer program code; the at least one memory and the computer program code are configured to be used with the at least one processor. The second communication device 450 device at least: receives a first information block, the first information block indicating a first resource set on a first cell; receives a first physical channel in the first resource set; wherein one of Q indexes is used to generate at least one of a scrambling sequence of the first physical channel or an RS sequence of a DMRS of the first physical channel, Q is a positive integer greater than 1, and each index of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of a first type of resource set on the first cell or a second type of resource set on the first cell, the first type of resource set and the second type of resource set being different; which index of the Q indexes is used to generate at least one of the scrambling sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0529] As an embodiment, the second communication device 450 includes: a memory storing a computer-readable instruction program, the computer-readable instruction program generating an action when executed by at least one processor, the action including: receiving a first information block, the first information block indicating a first resource set on a first cell; receiving a first physical channel in the first resource set; wherein one of the Q indexes is used to generate a scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to a first type of resource set on the first cell or one of a second type of resource set on the first cell, the first type of resource set and the second type of resource set being different; which of the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0530] As an embodiment, the first communication device 410 includes: at least one processor and at least one memory, the at least one memory including computer program code; the at least one memory and the computer program code are configured to be used together with the at least one processor. The first communication device 410 device at least: sends a first information block, the first information block indicating a first resource set on a first cell; sends a first physical channel in the first resource set; wherein one of Q indexes is used to generate at least one of a scrambling sequence of the first physical channel or an RS sequence of a DMRS of the first physical channel, Q is a positive integer greater than 1, and each index of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of a first type of resource set on the first cell or a second type of resource set on the first cell, the first type of resource set and the second type of resource set being different; which index of the Q indexes is used to generate at least one of the scrambling sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0531] As an embodiment, the first communication device 410 includes: a memory storing a computer-readable instruction program, the computer-readable instruction program generating an action when executed by at least one processor, the action including: sending a first information block, the first information block indicating a first resource set on a first cell; sending a first physical channel in the first resource set; wherein one of the Q indexes is used to generate a scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to a first type of resource set on the first cell or a second type of resource set on the first cell, the first type of resource set and the second type of resource set are different; which of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0532] As an embodiment, the first node in the present application includes the second communication device 450.

[0533] As an embodiment, the second node in the present application includes the first communication device 410.

[0534] As an embodiment, the first node in the present application includes the second communication device 450 and the RIS 490 .

[0535] As an embodiment, the second node in the present application includes the first communication device 410 and the RIS 490 .

[0536] As an embodiment, the RIS 490 is controlled by the second communication device 450 .

[0537] As an embodiment, the RIS 490 is controlled by the first communication device 410 .

[0538] As an embodiment, the RIS 490 is controlled by the second communication device 450 and the first communication device 410 .

[0539] As an embodiment, the RIS 490 is controlled by the RIS 490 itself.

[0540] As an embodiment, at least one of {the antenna 452, the receiver 454, the receiving processor 456, the multi-antenna receiving processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the first information block in this application; and at least one of {the antenna 420, the transmitter 418, the transmitting processor 416, the multi-antenna transmitting processor 471, the controller / processor 475, and the memory 476} is used to send the first information block in this application.

[0541] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, the data source 467, the controller 491, the RIS surface 492} is used to receive the first information block in this application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476} is used to send the first information block in this application.

[0542] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the first information block in this application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476, the controller 491, and the RIS surface 492} is used to send the first information block in this application.

[0543] As an embodiment, at least one of {the antenna 452, the receiver 454, the receiving processor 456, the multi-antenna receiving processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the second information block in the present application; and at least one of {the antenna 420, the transmitter 418, the transmitting processor 416, the multi-antenna transmitting processor 471, the controller / processor 475, and the memory 476} is used to send the second information block in the present application.

[0544] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, the data source 467, the controller 491, the RIS surface 492} is used to receive the second information block in the present application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476} is used to send the second information block in the present application.

[0545] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the second information block in the present application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476, the controller 491, and the RIS surface 492} is used to send the second information block in the present application.

[0546] As an embodiment, at least one of {the antenna 452, the receiver 454, the receiving processor 456, the multi-antenna receiving processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the third information block in the present application; and at least one of {the antenna 420, the transmitter 418, the transmitting processor 416, the multi-antenna transmitting processor 471, the controller / processor 475, and the memory 476} is used to send the third information block in the present application.

[0547] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, the data source 467, the controller 491, the RIS surface 492} is used to receive the third information block in the present application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476} is used to send the third information block in the present application.

[0548] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the third information block in the present application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476, the controller 491, and the RIS surface 492} is used to send the third information block in the present application.

[0549] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the first physical channel in this application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, and the memory 476} is used to send the first physical channel in this application.

[0550] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, the data source 467, the controller 491, the RIS surface 492} is used to receive the first physical channel in this application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476} is used to send the first physical channel in this application.

[0551] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the first physical channel in this application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476, the controller 491, and the RIS surface 492} is used to send the first physical channel in this application.

[0552] As an embodiment, at least one of {the antenna 452, the transmitter 454, the transmit processor 468, the multi-antenna transmit processor 457, the controller / processor 459, and the memory 460} is used to send the first signal in this application; and at least one of {the antenna 420, the receiver 418, the receive processor 470, the multi-antenna receive processor 472, the controller / processor 475, and the memory 476} is used to receive the first signal in this application.

[0553] As an embodiment, at least one of {the antenna 452, the transmitter 454, the transmit processor 468, the multi-antenna transmit processor 457, the controller / processor 459, the memory 460, the controller 491, the RIS surface 492} is used to send the first signal in this application; at least one of {the antenna 420, the receiver 418, the receive processor 470, the multi-antenna receive processor 472, the controller / processor 475, the memory 476} is used to receive the first signal in this application.

[0554] As an embodiment, at least one of {the antenna 452, the transmitter 454, the transmit processor 468, the multi-antenna transmit processor 457, the controller / processor 459, and the memory 460} is used to send the first signal in this application; and at least one of {the antenna 420, the receiver 418, the receive processor 470, the multi-antenna receive processor 472, the controller / processor 475, the memory 476, the controller 491, and the RIS surface 492} is used to receive the first signal in this application.

[0555] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the second physical channel in this application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, and the memory 476} is used to send the second physical channel in this application.

[0556] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, the data source 467, the controller 491, the RIS surface 492} is used to receive the second physical channel in this application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476} is used to send the second physical channel in this application.

[0557] As an embodiment, at least one of {the antenna 452, the receiver 454, the receive processor 456, the multi-antenna receive processor 458, the controller / processor 459, the memory 460, and the data source 467} is used to receive the second physical channel in the present application; and at least one of {the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the controller / processor 475, the memory 476, the controller 491, and the RIS surface 492} is used to send the second physical channel in the present application.

[0558] As an embodiment, at least one of {the antenna 452, the transmitter 454, the transmit processor 468, the multi-antenna transmit processor 457, the controller / processor 459, and the memory 460} is used to send the second physical channel in this application; and at least one of {the antenna 420, the receiver 418, the receive processor 470, the multi-antenna receive processor 472, the controller / processor 475, and the memory 476} is used to receive the second physical channel in this application.

[0559] As an embodiment, at least one of {the antenna 452, the transmitter 454, the transmit processor 468, the multi-antenna transmit processor 457, the controller / processor 459, the memory 460, the controller 491, the RIS surface 492} is used to send the second physical channel in this application; at least one of {the antenna 420, the receiver 418, the receive processor 470, the multi-antenna receive processor 472, the controller / processor 475, the memory 476} is used to receive the second physical channel in this application.

[0560] As an embodiment, at least one of {the antenna 452, the transmitter 454, the transmit processor 468, the multi-antenna transmit processor 457, the controller / processor 459, and the memory 460} is used to send the second physical channel in this application; and at least one of {the antenna 420, the receiver 418, the receive processor 470, the multi-antenna receive processor 472, the controller / processor 475, the memory 476, the controller 491, and the RIS surface 492} is used to receive the second physical channel in this application.

[0561] Example 5

[0562] Example 5 illustrates a flowchart of wireless transmission according to an embodiment of the present application, as shown in FIG5 . In FIG5 , the first node U1 and the second node N2 are two communicating nodes transmitting via an air interface, wherein the steps in blocks F51 through F55 are optional. In particular, the order of the steps in the blocks does not represent a specific temporal relationship between the steps.

[0563] For the first node U1, receive the first information block in step S5101; receive the second information block in step S5102; receive the third information block in step S5103; send the first signal in step S5104; receive the first physical channel in the first resource set in step S5105; receive the second physical channel in step S5106; and send the second physical channel in step S5107.

[0564] For the second node N2, a first information block is sent in step S5201; a second information block is sent in step S5202; a third information block is sent in step S5203; a first signal is received in step S5204; a first physical channel is sent in the first resource set in step S5205; a second physical channel is sent in step S5206; and a second physical channel is received in step S5207.

[0565] In embodiment 5, the first information block indicates a first resource set on a first cell; one of the Q indexes is used to generate a scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to a first type of resource set on the first cell or one of the second type of resource sets on the first cell, and the first type of resource set and the second type of resource set are different; which index of the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0566] As an embodiment, the first node U1 is the first node in this application.

[0567] As an embodiment, the second node N2 is the second node in this application.

[0568] As an embodiment, the air interface between the second node N2 and the first node U1 includes a wireless interface between a base station and a user equipment.

[0569] As an embodiment, the air interface between the second node N2 and the first node U1 includes a wireless interface between a relay node and a user equipment.

[0570] As an embodiment, the air interface between the second node N2 and the first node U1 includes a wireless interface between user equipments.

[0571] As an embodiment, the second node N2 is a base station maintaining a serving cell of the first node U1.

[0572] As an embodiment, the base station includes at least one of gNB or TRP.

[0573] As an embodiment, the first information block is transmitted in a PDSCH (Physical downlink shared channel).

[0574] As an embodiment, the first information block is transmitted in a PDCCH (Physical Downlink Control Channel).

[0575] As an embodiment, the second information block is transmitted in a PDSCH (Physical downlink shared channel).

[0576] As an embodiment, the second information block is transmitted in a PDCCH (Physical Downlink Control Channel).

[0577] As an embodiment, the third information block is transmitted in a PDSCH (Physical downlink shared channel).

[0578] As an embodiment, the third information block is transmitted in a PDCCH (Physical Downlink Control Channel).

[0579] As an embodiment, the first physical channel is transmitted in a PDSCH (Physical downlink shared channel).

[0580] As an embodiment, the first physical channel is transmitted in a PDCCH (Physical Downlink Control Channel).

[0581] As an embodiment, the first physical channel is transmitted in an SS / PBCH block.

[0582] As an embodiment, the first signal is transmitted in a PUSCH (Physical Uplink Shared Channel).

[0583] As an embodiment, the first signal is transmitted in a PUCCH (Physical Uplink Control Channel).

[0584] As an embodiment, the first signal is transmitted in a PRACH (Physical Random Access Channel).

[0585] As an embodiment, the first signal is transmitted in a random access preamble.

[0586] As an embodiment, the step in box F51 in FIG. 5 exists, and the method in the first node U1 used for wireless communication includes: receiving a second information block, where the second information block indicates the first index.

[0587] As an embodiment, the step in box F51 in FIG. 5 exists, and the method in the second node N2 used for wireless communication includes: sending a second information block, where the second information block indicates the first index.

[0588] As an embodiment, the step in box F52 in FIG. 5 exists, and the method in the first node U1 used for wireless communication includes: receiving a third information block, wherein the third information block indicates the second index.

[0589] As an embodiment, the step in box F52 in FIG. 5 exists, and the method in the second node N2 used for wireless communication includes: sending a third information block, wherein the third information block indicates the second index.

[0590] As an embodiment, the step in box F53 in FIG. 5 exists, and the method in the first node U1 used for wireless communication includes: sending a first signal, where the first signal indicates the second index.

[0591] As an embodiment, the step in box F53 in FIG. 5 exists, and the method in the second node N2 used for wireless communication includes: receiving a first signal, wherein the first signal indicates the second index.

[0592] As an embodiment, the steps in block F54 and the steps in block F55 in FIG. 5 do not exist at the same time.

[0593] Example 6

[0594] Example 6 illustrates a schematic diagram of a first type resource set and a second type resource set according to an embodiment of the present application; as shown in Figure 6.

[0595] In embodiment 6, the first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

[0596] As an embodiment, the first type of resource set includes a CSS (Common Search Space) set, and the second type of resource set includes a USS (UE-specific Search Space) set.

[0597] As an embodiment, the first-category resource set includes at least one CSS set, and the second-category resource set includes at least one USS set.

[0598] As an embodiment, the first type of resource set is a CSS set, and the second type of resource set is a USS set.

[0599] As an embodiment, the first type of resource set includes a CSS set of some types, and the second type of resource set includes a USS set.

[0600] As an embodiment, the first type of resource set includes all CSS sets, and the second type of resource set includes USS sets.

[0601] As an embodiment, the first type of resource set includes a CSS set of some types, and the second type of resource set includes a CSS set of some types and a USS set.

[0602] As an embodiment, the first-category resource set includes a partial CSS set, and the second-category resource set includes a USS set and a partial CSS set different from the first-category resource set.

[0603] As an embodiment, the first type resource set and the second type resource set respectively include different search space sets in a reference search space pool, and the reference search space pool includes multiple search space sets.

[0604] As a sub-embodiment of the above embodiment, the reference search space pool includes a CSS set and a USS set.

[0605] As a sub-embodiment of the above embodiment, the reference search space pool includes a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set, a Type0B-PDCCH CSS set, a Type1-PDCCH CSS set, a Type1A-PDCCH CSS set, a Type2-PDCCH CSS set, a Type2A-PDCCH CSS set, a Type3-PDCCH CSS set, or multiple USS sets.

[0606] As an embodiment, the first type of resource set includes one or more of a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set, a Type0B-PDCCH CSS set, a Type1-PDCCH CSS set, a Type1A-PDCCH CSS set, a Type2-PDCCH CSS set, a Type2A-PDCCH CSS set, or a Type3-PDCCH CSS set.

[0607] As an embodiment, the first type of resource set includes a Type0-PDCCH CSS set.

[0608] As an embodiment, the first type of resource set includes a Type0-PDCCH CSS set and a Type0A-PDCCH CSS set.

[0609] As an embodiment, the first type of resource set includes a Type0-PDCCH CSS set and a Type2-PDCCH CSS set.

[0610] As an embodiment, the first type of resource set includes a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set and a Type2-PDCCH CSS set.

[0611] As an embodiment, the first type of resource set includes a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set, a Type2-PDCCH CSS set and a Type2A-PDCCH CSS set.

[0612] As an embodiment, the first type of resource set includes a Type0-PDCCH CSS set and at least one CSS set different from the Type0-PDCCH CSS set.

[0613] As an embodiment, the second type of resource set includes a USS set.

[0614] As an embodiment, the second type of resource set includes a USS set and a partial CSS set.

[0615] As an embodiment, the second-category resource set includes a USS set and a CSS set that does not belong to the first-category resource set.

[0616] As an embodiment, the second type of resource set includes a USS set; the second type of resource set also includes one or more of a Type0-PDCCH CSS set, a Type0A-PDCCH CSS set, a Type0B-PDCCH CSS set, a Type1-PDCCH CSS set, a Type1A-PDCCH CSS set, a Type2-PDCCH CSS set, a Type2A-PDCCH CSS set, or a Type3-PDCCH CSS set.

[0617] Example 7

[0618] Example 7 illustrates a schematic diagram of a first type resource set and a second type resource set according to another embodiment of the present application; as shown in Figure 7.

[0619] In Example 7, the CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in a first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in a second identifier set, the first identifier set includes one or more identifiers, the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

[0620] As an embodiment, a control information in the first type of resource set is carried by a physical channel in the first type of resource set, and a control information in the second type of resource set is carried by a physical channel in the second type of resource set.

[0621] As an embodiment, one control information in the first type of resource set is DCI, and one control information in the second type of resource set is DCI.

[0622] As an embodiment, one control information in the first type of resource set is DCI, and one control information in the second type of resource set is DCI; one control information in the first type of resource set is carried by a PDCCH in the first type of resource set, and one control information in the second type of resource set is carried by a PDCCH in the second type of resource set.

[0623] As an embodiment, the CRC of a control information is scrambled by an identifier, including: CRC check bits (parity bits) of the control information are scrambled by the identifier.

[0624] As an embodiment, scrambling a CRC of a control message by an identifier includes: performing a mathematical operation on all or part of the CRC check bits (parity bits) of the control message and the identifier.

[0625] As an embodiment, scrambling a CRC of a control message by an identifier includes: performing a modulo 2 operation on all or part of the CRC check bits (parity bits) of the control message and all or part of the bits carried by the identifier.

[0626] As an embodiment, scrambling a CRC of a control message by an identifier includes: performing a modulo-2 operation bit by bit on all or part of the CRC parity bits of the control message and all or part of the bits carried by the identifier.

[0627] As an embodiment, scrambling a CRC of a control message by an identifier includes: performing a modulo 2 operation on a portion of the CRC check bits (parity bits) of the control message and the bits carried by the identifier.

[0628] As an embodiment, scrambling a CRC of a control message by an identifier includes: performing a modulo-2 operation on a bit-by-bit portion of the CRC parity bits of the control message and the bits carried by the identifier.

[0629] As an embodiment, the CRC of a control information is scrambled by an identifier, including: CRC check bits (parity bits) of a control information are scrambled by the identifier, wherein the specific scrambling process refers to Section 7.3.2 of 3GPP TS 38.212.

[0630] As an embodiment, the first identifier set includes one identifier.

[0631] As an embodiment, the first identifier set includes multiple identifiers.

[0632] As an embodiment, the second identifier set includes one identifier.

[0633] As an embodiment, the second identifier set includes multiple identifiers.

[0634] As an embodiment, any identifier in the first identifier set does not belong to the second identifier set.

[0635] As an embodiment, there is an identifier in the first identifier set that belongs to the second identifier set.

[0636] As an embodiment, each identifier in the first identifier set is common.

[0637] As an embodiment, at least one identifier in the first identifier set is public.

[0638] As an embodiment, the identifier being public includes: the identifier being public to the cell.

[0639] As an embodiment, the identifier being public includes: the identifier being public to a UE group.

[0640] As an embodiment, each identifier in the second identifier set is UE-specific.

[0641] As an embodiment, at least one identifier in the second identifier set is UE-specific.

[0642] As an embodiment, the first identifier set includes SI-RNTI (System Information-Radio Network Temporary Indentifier).

[0643] As an embodiment, the first identifier set includes at least SI-RNTI.

[0644] As an embodiment, the first identifier set includes a P-RNTI (Physical-Radio Network Temporary Identifier).

[0645] As an embodiment, the first identifier set includes at least one of SI-RNTI or P-RNTI.

[0646] As an embodiment, the first identifier set includes SI-RNTI and P-RNTI.

[0647] As an embodiment, the first identifier set includes SI-RNTI, MCCH-RNTI (Multicast Control Channel-radio network temporary identifier, multicast control channel wireless network temporary identifier), G-RNTI (group-radio network temporary identifier, cluster group wireless network temporary identifier), RA-RNTI (Random Access-radio network temporary identifier, random access wireless network temporary identifier), MsgB-RNTI (MsgB-radio network temporary identifier, MsgB wireless network temporary identifier), TC-RNTI (Temporary C-RNTI)), P-RNTI, PEI-RNTI (Paging Early Indication-radio network temporary identifier, PEI wireless network temporary identifier), INT-RNTI (Interruption Radio Network Temporary Identifier, interruption radio network temporary identifier), SFI-RNTI (slot format indication-Radio Network Temporary Identifier, SFI radio network temporary identifier), TPC-PUSCH-RNTI (Transmit Power Control-PUSCH-Radio Network Temporary Identifier), Identifier, PUSCH Transmit Power Control Radio Network Temporary Identifier), TPC-PUCCH-RNTI (Transmit Power Control-PUCCH-Radio Network Temporary Identifier, PUCCH Transmit Power Control Radio Network Temporary Identifier), TPC-SRS-RNTI (Transmit Power Control-SRS-Radio Network Temporary Identifier, SRS Transmit Power Control Radio Network Temporary Identifier), CI-RNTI (Radio Network Temporary Identifier of cancellation in the uplink, cancel uplink identifier), NES-RNTI,At least one of PS-RNTI (power saving Radio Network Temporary Identifier) ​​and G-CS-RNTI (Group Configured Scheduling Radio Network Temporary Identifier).

[0648] As an embodiment, the second identification set includes C-RNTI (Cell-Radio Network Temporary Identify).

[0649] As an embodiment, the second identifier set includes at least one of C-RNTI, MCS-C-RNTI (Modulcation Coding Scheme Cell-Radio Network Temmporary Identify, modulation coding cell wireless network temporary identifier), SP-CSI-RNTI (Semi-Persistent CSI Radio Network Temmporary Identify, semi-persistent CSI wireless network temporary identifier), or CS-RNTI (configured scheduling-Radio Network Temmporary Identify, configured scheduling wireless network temporary identifier).

[0650] As an embodiment, the second identifier set includes at least one of C-RNTI, MCS-C-RNTI, SP-CSI-RNTI, CS-RNTI, SL-RNTI (SideLink Radio Network Temmporary Identify), SL-CS-RNTI (Sidelink Configured Scheduling Radio Network Temmporary Identify), SL Semi-Persistent Scheduling V-RNTI, or NCR-RNTI (Network-Controlled Repeaters Radio Network Temmporary Identify).

[0651] As an embodiment, the first identifier set includes at least one of SI-RNTI or P-RNTI, and the second identifier set includes C-RNTI.

[0652] As an embodiment, the first identifier set and the second identifier set respectively include at least one of SI-RNTI, MCCH-RNTI, G-RNTI, MCCH-RNTI, RA-RNTI, MsgB-RNTI, TC-RNTI, P-RNTI, PEI-RNTI, INT-RNTI, SFI-RNTI, TPC-PUSCH-RNTI, TPC-PUCCH-RNTI, TPC-SRS-RNTI, CI-RNTI, NES-RNTI, PS-RNTI, G-CS-RNTI, C-RNTI, MCS-C-RNTI, SP-CSI-RNTI, CS-RNTI, SL-RNTI, SL-CS-RNTI, SL Semi-Persistent Scheduling V-RNTI, or NCR-RNTI.

[0653] Example 8

[0654] Example 8 illustrates a schematic diagram of a first type resource set and a second type resource set according to another embodiment of the present application; as shown in Figure 8.

[0655] In embodiment 8, the spatial characteristics of the physical channels in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channels in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channels in the second type of resource set based on the at least one RS resource.

[0656] As an embodiment, the RS resource includes RS.

[0657] As an embodiment, the RS resource is a synchronization signal.

[0658] As an embodiment, the RS resource is a CSI-RS (Channel State Information-Reference Signal) resource.

[0659] As an embodiment, the RS resource is a DMRS (Demodulation reference signal) resource.

[0660] As an embodiment, the RS resource is a downlink RS resource.

[0661] As an embodiment, the RS resource is an SS / PBCH block resource or a CSI-RS resource.

[0662] As an embodiment, the RS resource is a synchronization signal or a CSI-RS resource.

[0663] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, and the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, and the only one RS resource among the multiple RS resources is a synchronization signal carrying the first index, and the first index is one of the Q indexes.

[0664] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, and the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, and the only one RS resource among the multiple RS resources is associated with the synchronization signal carrying the first index, and the first index is one of the Q indexes.

[0665] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, and the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, and the only one RS resource among the multiple RS resources and the synchronization signal carrying the first index are quasi colocated (QCL), and the first index is one of the Q indexes.

[0666] As an embodiment, the spatial characteristics of the physical channels in the first type of resource set depend on multiple RS resources, and the spatial characteristics of the physical channels in the second type of resource set depend on one RS resource. The physical channels in the first type of resource set are transmitted in an SFN (Single Frequency Network) manner, and the physical channels in the second type of resource set are transmitted in a non-SFN manner.

[0667] As an embodiment, the first node detects only one synchronization signal among the multiple synchronization signals, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, and the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on the only one RS resource among the multiple RS resources.

[0668] As an embodiment, the first node independently determines which one or more of the multiple synchronization signals to use to determine the large-scale characteristics of the physical channel in the first type of resource set.

[0669] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the large-scale characteristics of the multiple RS resources depend on multiple synchronization signals respectively, and two synchronization signals among the multiple synchronization signals are respectively generated by two indexes among the Q indexes.

[0670] As an embodiment, the large-scale characteristic of an RS resource depends on a synchronization signal, including: the RS resource and the synchronization signal are in a quasi-co-location relationship.

[0671] As an embodiment, the large-scale characteristic of an RS resource depends on a synchronization signal, including: the RS resource and the synchronization signal are quasi-co-located.

[0672] As an embodiment, the large-scale characteristic of an RS resource being dependent on a synchronization signal includes: the large-scale characteristic of the RS resource being inferred based on the synchronization signal.

[0673] As an embodiment, the large-scale characteristic of an RS resource being dependent on a synchronization signal includes: the large-scale characteristic of the RS resource is the same as the large-scale characteristic of the synchronization signal.

[0674] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the multiple RS resources are multiple synchronization signals, or any RS resource in the multiple RS resources depends on a synchronization signal; the multiple synchronization signals respectively carry different indexes among the Q indexes, one synchronization signal determines a first type of search space set, and the first type of search space sets determined by each of the multiple synchronization signals are overlapping.

[0675] As an embodiment, determining a first type search space set by a synchronization signal includes: determining a time domain resource where a first type search space set is located by a synchronization signal.

[0676] As an embodiment, a synchronization signal determines a first type search space set, including: a synchronization signal determines a time slot where a first type search space set is located.

[0677] As an embodiment, determining a first type search space set by a synchronization signal includes: determining a time slot where the first type search space set is located by an index of a synchronization signal.

[0678] As a sub-embodiment of the above embodiment, the index of the synchronization signal and the time slot where the first type search space set is located are in a functional relationship.

[0679] As a sub-embodiment of the above embodiment, the index of the synchronization signal and the time slot where the first type search space set is located are in a mapping relationship.

[0680] As a sub-embodiment of the above embodiment, the time slot where the first type search space set is located is a function with the index of the synchronization signal as a parameter, and the function also includes other parameters.

[0681] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the transmission beams of multiple RS resources are used to generate the transmission beams of the physical channel in the first type of resource set.

[0682] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the spatial transmission parameters of the physical channel in the first type of resource set include spatial transmission parameters of multiple RS resources.

[0683] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the transmission beam of the physical channel in the first type of resource set includes the transmission beam of multiple RS resources.

[0684] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: for the same quasi co-location type, the DMRS port of the physical channel in the first type of resource set and multiple RS resources are quasi co-located.

[0685] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the TCI state of the physical channel in the first type of resource set includes multiple RS resources for the same quasi-co-location type.

[0686] As an embodiment, the quasi-co-location type includes one or more of delay spread, Doppler spread, Doppler shift, average delay, average gain, spatial Tx parameter or spatial Rx parameter.

[0687] As an embodiment, the quasi-co-location type includes typeD.

[0688] As an embodiment, the quasi-co-location type includes one of typeA, typeB, typeC or typeD.

[0689] As an embodiment, type A includes Doppler shift, Doppler spread, average delay, and delay spread.

[0690] As an example, type B includes Doppler shift and Doppler spread.

[0691] As an embodiment, type C includes Doppler shift and average delay.

[0692] As an embodiment, typeD includes a Spatial Rx parameter.

[0693] As an embodiment, the quasi co-location type includes a spatial reception parameter (Spatial Rx parameter).

[0694] As an embodiment, the quasi co-location type includes a spatial transmission parameter (Spatial Tx parameter).

[0695] As an embodiment, the quasi co-location type is a large-scale characteristic.

[0696] As an embodiment, the quasi co-location type includes one or more large-scale characteristics.

[0697] As an embodiment, the spatial characteristics of the physical channels in the first type of resource set depend on multiple RS resources, including: the physical channels in the first type of resource set are transmitted in an SFN manner using multiple RS resources.

[0698] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the multiple RS resources are multiple synchronization signals, and two indexes among the Q indexes are respectively carried by two synchronization signals among the multiple synchronization signals.

[0699] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS resources, including: the multiple RS resources are two synchronization signals, and two indexes of the Q indexes are carried by the two synchronization signals respectively.

[0700] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, including: the DMRS port of the only one RS resource among the multiple RS resources and the physical channel in the first type of resource set are quasi colocated (QCL).

[0701] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, including: transmitting an estimate of the channel of only one RS resource among the multiple RS resources for channel estimation of the physical channel in the first type of resource set.

[0702] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, including: transmitting the large-scale characteristics of the channel of the only one RS resource among the multiple RS resources for channel estimation of the physical channel in the first type of resource set.

[0703] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, including: transmitting the large-scale characteristics of the channel of only one RS resource among the multiple RS resources for receiving the physical channel in the first type of resource set.

[0704] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, including: the large-scale characteristics of the channel transmitting the only one RS resource among the multiple RS resources are used to estimate the large-scale characteristics of the physical channel in the first type of resource set.

[0705] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources, including: transmitting the large-scale characteristics of the physical channel in the first type of resource set includes transmitting the large-scale characteristics of the channel of only one RS resource among the multiple RS resources.

[0706] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the at least one RS resource includes a synchronization signal, or the at least one RS resource is an RS resource and the one RS resource depends on a synchronization signal; the one synchronization signal carries one index among the Q indexes.

[0707] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the at least one RS resource includes a synchronization signal, or the at least one RS resource is an RS resource and the one RS resource depends on a synchronization signal; the one synchronization signal carries a second index, and the second index is one of the Q indexes.

[0708] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the at least one RS resource is multiple synchronization signals, or the multiple RS resources respectively depend on multiple synchronization signals; the multiple synchronization signals carry the same index among the Q indexes.

[0709] As an embodiment, the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, including: the at least one RS resource is multiple RS resources, and the physical channels in the second type of resource set are transmitted in SFN (Single Frequency Network) mode.

[0710] As an embodiment, the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, including: the at least one RS resource is an RS resource, and the physical channels in the second type of resource set are transmitted in a non-SFN (Single Frequency Network) manner.

[0711] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the transmission beam of the at least one RS resource is used to generate the transmission beam of the physical channel in the second type of resource set.

[0712] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the spatial transmission parameters of the physical channel in the second type of resource set include the spatial transmission parameters of the at least one RS resource.

[0713] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the transmission beam of the physical channel in the second type of resource set includes the transmission beam of the at least one RS resource.

[0714] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the receiving beam of the at least one RS resource is used to generate the receiving beam of the physical channel in the second type of resource set.

[0715] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the spatial reception parameters of the physical channel in the second type of resource set include the spatial reception parameters of the at least one RS resource.

[0716] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: the receiving beam of the physical channel in the second type of resource set includes the receiving beam of the at least one RS resource.

[0717] As an embodiment, the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, including: for the same quasi co-location type, the DMRS port of the physical channel in the second type of resource set and the at least one RS resource are quasi co-located.

[0718] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource, including: the DMRS port of the at least one RS resource and the physical channel in the second type of resource set is quasi colocated (QCL).

[0719] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource, including: an estimate of the channel for transmitting the at least one RS resource is used for channel estimation of the physical channel in the second type of resource set.

[0720] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource, including: the large-scale characteristics of the channel transmitting the at least one RS resource are used for channel estimation of the physical channel in the second type of resource set.

[0721] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource, including: the large-scale characteristics of the channel transmitting the at least one RS resource are used for receiving the physical channel in the second type of resource set.

[0722] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource, including: the large-scale characteristics of the channel transmitting the at least one RS resource are used to estimate the large-scale characteristics of the physical channel in the second type of resource set.

[0723] As an embodiment, the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource, including: the large-scale characteristics of the physical channel transmitting the second type of resource set are the same as the large-scale characteristics of the channel transmitting the at least one RS resource.

[0724] As an embodiment, the large scale properties include at least one of delay spread, Doppler spread, Doppler shift, average delay, average gain, spatial Tx parameter or spatial Rx parameter.

[0725] As an embodiment, the large scale properties include one of delay spread, Doppler spread, Doppler shift, average delay, average gain, spatial Tx parameter or spatial Rx parameter.

[0726] As an embodiment, the large-scale characteristics include: delay spread, Doppler spread, Doppler shift and average delay.

[0727] As an embodiment, the large-scale characteristics include: delay spread, Doppler spread, Doppler shift, average delay and spatial reception parameters.

[0728] As an embodiment, the large-scale characteristics include: delay spread, Doppler spread, Doppler shift, average delay, spatial transmission parameters and spatial reception parameters.

[0729] As an embodiment, the large-scale characteristics include: spatial reception parameters.

[0730] As an embodiment, the large-scale characteristics include: spatial transmission parameters.

[0731] As an embodiment, the large-scale characteristics include: at least one of a spatial transmission parameter or a spatial reception parameter.

[0732] As an embodiment, the large-scale characteristics include: spatial transmission parameters and spatial reception parameters.

[0733] As an embodiment, the large-scale characteristics include: Doppler spread and Doppler shift.

[0734] As an embodiment, the large-scale characteristics include: Doppler shift and average delay.

[0735] Example 9

[0736] Example 9 illustrates a schematic diagram of a first type resource set and a second type resource set according to another embodiment of the present application; as shown in Figure 9.

[0737] In embodiment 9, the second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

[0738] As an embodiment, the second index is the same as or different from the first index.

[0739] As an embodiment, whether the second index is the same as the first index is determined by the base station.

[0740] As an embodiment, whether the second index is the same as the first index is related to base station implementation.

[0741] As an embodiment, the first node detects only one synchronization signal among the multiple synchronization signals, and the second index is the index carried by the only one synchronization signal.

[0742] As an embodiment, the first node detects the multiple synchronization signals, and the first node independently determines which synchronization signal among the multiple synchronization signals carries the first index.

[0743] As an embodiment, the first index is an index carried by the synchronization signal detected by the first node.

[0744] As an embodiment, the first index is which index among the Q indexes does not depend on the second index.

[0745] As an embodiment, the second index is which index among the Q indexes does not depend on the first index.

[0746] As an embodiment, which index among the Q indexes the first index is has nothing to do with the second index.

[0747] As an embodiment, which one of the Q indexes the first index is has nothing to do with which one of the Q indexes the second index is.

[0748] As an embodiment, the second index is which one of the Q indexes is independent of the first index.

[0749] As an embodiment, which one of the Q indexes the second index is has nothing to do with which one of the Q indexes the first index is.

[0750] As an embodiment, which one of the Q indexes the second index is and which one of the Q indexes the first index is are independent of each other.

[0751] As an embodiment, which one of the Q indexes the second index is and which one of the Q indexes the first index is are unrelated to each other.

[0752] As an embodiment, which one of the Q indexes the second index is and which one of the Q indexes the first index is do not affect each other.

[0753] As an embodiment, the first index is which one of the Q indexes is fixed and does not depend on the second index.

[0754] As an embodiment, the first index is which one of the Q indexes is predefined and does not depend on the second index.

[0755] As an embodiment, the method for determining which index among the Q indexes the first index is is fixed and does not depend on the second index.

[0756] As an embodiment, the method for determining which index among the Q indexes the first index is is predefined and does not depend on the second index.

[0757] Example 10

[0758] Embodiment 10 illustrates a schematic diagram of the relationship between the first physical channel and Q indexes according to an embodiment of the present application; as shown in FIG10 .

[0759] In embodiment 10, when the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

[0760] As an embodiment, the first index is which index among the Q indexes is fixed.

[0761] As an embodiment, the first index is which index among the Q indexes is predefined.

[0762] As an embodiment, the first index is which index among the Q indexes is the default.

[0763] As an embodiment, the method for determining which index among the Q indexes the first index is is fixed.

[0764] As an embodiment, the method for determining which index among the Q indexes the first index is is predefined.

[0765] As an embodiment, the method of determining which index among the Q indexes the first index is is a default method.

[0766] As an embodiment, the first index is the first index among the Q indexes.

[0767] As an embodiment, the first index is the minimum index among the Q indexes.

[0768] As an embodiment, the first index is the maximum index among the Q indexes.

[0769] As an embodiment, the first index is an index among the Q indexes carried by the synchronization signal detected by the first node.

[0770] As an embodiment, the first index is an index identifying a specific cell among the Q indexes.

[0771] As an embodiment, the first index is an index identifying a specific synchronization signal among the Q indexes.

[0772] As an embodiment, the first index is an index identifying a specific TRP among the Q indexes.

[0773] As an embodiment, the first index is an index identifying a specific antenna panel among the Q indexes.

[0774] As an embodiment, the first index is an index identifying a specific RS resource among the Q indexes.

[0775] As an embodiment, the first index is an index identifying RIS among the Q indexes.

[0776] As an embodiment, the first index is an index related to RIS among the Q indexes.

[0777] As an embodiment, the first index is an index related to the RIS configuration among the Q indexes.

[0778] As an embodiment, the first index is configurable.

[0779] As an embodiment, the first index is determined by the first node itself.

[0780] As an embodiment, the first index is selected by the first node.

[0781] As an embodiment, the first information block indicates the first index.

[0782] As an embodiment, the first node device includes: the first receiver receives a second information block, and the second information block indicates the first index.

[0783] As an embodiment, the method in the first node includes: receiving a second information block, where the second information block indicates the first index.

[0784] As an embodiment, the second node device includes: the second transmitter sends a second information block, and the second information block indicates the first index.

[0785] As an embodiment, the method in the second node includes: sending a second information block, where the second information block indicates the first index.

[0786] As an embodiment, the second information block is carried by higher layer signaling.

[0787] As an embodiment, the second information block is carried by RRC signaling.

[0788] As an embodiment, the second information block is carried by MAC CE signaling.

[0789] As an embodiment, the second information block includes MIB.

[0790] As an embodiment, the second information block includes SIB.

[0791] As an embodiment, the second information block includes DCI.

[0792] As an embodiment, the first node device includes: the first receiver receives a third information block, and the third information block indicates the second index.

[0793] As an embodiment, the method in the first node includes: receiving a third information block, where the third information block indicates the second index.

[0794] As an embodiment, the second node device includes: the second transmitter sends a third information block, and the third information block indicates the second index.

[0795] As an embodiment, the method in the second node includes: sending a third information block, where the third information block indicates the second index.

[0796] As an embodiment, the third information block is used to indicate the second index from the Q indexes.

[0797] As an embodiment, the third information block is carried by higher layer signaling.

[0798] As an embodiment, the third information block is carried by RRC signaling.

[0799] As an embodiment, the third information block is carried by MAC CE signaling.

[0800] As an embodiment, the third information block includes MIB.

[0801] As an embodiment, the third information block includes SIB.

[0802] As an embodiment, the third information block includes DCI.

[0803] As an embodiment, the first node device includes: a first transmitter, sending a first signal, wherein the first signal indicates the second index.

[0804] As an embodiment, the method in the first node includes: sending a first signal, where the first signal indicates the second index.

[0805] As an embodiment, the second node device includes: a second receiver, receiving a first signal, where the first signal indicates the second index.

[0806] As an embodiment, the method in the second node includes: receiving a first signal, where the first signal indicates the second index.

[0807] As an embodiment, the first signal includes PUCCH.

[0808] As an embodiment, the first signal includes PUSCH.

[0809] As an embodiment, the first signal includes PRACH.

[0810] As an embodiment, the first signal includes a random access preamble.

[0811] Example 11

[0812] Example 11 illustrates a schematic diagram of a second physical channel according to an embodiment of the present application; as shown in Figure 11.

[0813] In embodiment 11, the first receiver receives a second physical channel; or the first transmitter sends a second physical channel; wherein the first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

[0814] As an embodiment, the first node receives a second physical channel, and the second physical channel is a physical downlink channel.

[0815] As an embodiment, the first node sends a second physical channel, and the second physical channel is a physical uplink channel.

[0816] As an embodiment, the first node receives a second physical channel, and the second physical channel is a PDSCH.

[0817] As an embodiment, the first node sends a second physical channel, and the second physical channel is PUSCH.

[0818] As an embodiment, the first node receives a second physical channel, the first physical channel is a PDCCH, and the second physical channel is a PDSCH.

[0819] As an embodiment, the first node sends a second physical channel, the first physical channel is PDCCH, and the second physical channel is PUSCH.

[0820] As an embodiment, the first physical channel is used to schedule the second physical channel, including: the first physical channel carries scheduling information of the second physical channel.

[0821] As an embodiment, the first physical channel is used to schedule the second physical channel, including: the first physical channel is a PDCCH, and the DCI carried by the first physical channel is used to schedule the second physical channel.

[0822] As an embodiment, the first physical channel is used to schedule the second physical channel, including: the first physical channel indicates at least one of the time domain resources occupied by the second physical channel or the frequency domain resources occupied by the second physical channel.

[0823] As an embodiment, the scheduling information of the second physical channel includes at least one of the time domain resources occupied by the second physical channel or the frequency domain resources occupied by the second physical channel.

[0824] As an embodiment, the scheduling information of the second physical channel includes at least one of the occupied time domain resources, occupied frequency domain resources, MCS (Modulation and Coding Scheme), antenna port, HARQ (Hybrid Automatic Repeat reQuest) process number, RV (Redundancy Version), and NDI (New Data Indicator).

[0825] As an embodiment, the scheduling information of the second physical channel includes at least one of the occupied time domain resources, occupied frequency domain resources, MCS (Modulation and Coding Scheme), antenna port, HARQ (Hybrid Automatic Repeat reQuest) process number, RV (Redundancy Version), NDI (New Data Indicator), and TCI status.

[0826] Example 12

[0827] Example 12 illustrates a schematic diagram of the relationship between a given index and a given channel according to an embodiment of the present application; as shown in Figure 12.

[0828] In Embodiment 12, a given index is used to generate at least one of a scrambling code sequence of a given channel or an RS sequence of a DMRS of a given channel. The given index is one of the Q indexes in this application, and the given channel is the first physical channel; or, the given index is the first index in this application, and the given channel is a physical channel in the first type of resource set; or, the given index is the second index in this application, and the given channel is a physical channel in the second type of resource set; or, the given index is one of the Q indexes in this application, and the given channel is the second physical channel.

[0829] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, including: an initial value of a scrambling sequence generator for the given channel depends on the given index.

[0830] As an embodiment, the initial value of the scrambling sequence generator of the given channel depending on the given index includes: the given index is the initial value of the scrambling sequence generator of the given channel.

[0831] As an embodiment, the initial value of the scrambling sequence generator of the given channel depends on the given index, including: the given channel is PBCH, and the given index is the initial value of the scrambling sequence generator of the given channel.

[0832] As an embodiment, the initial value of the scrambling sequence generator of the given channel depending on the given index includes: the given index is used to calculate the initial value of the scrambling sequence generator of the given channel.

[0833] As an embodiment, the initial value of the scrambling sequence generator of the given channel depending on the given index includes: the given channel is a PDCCH, and the given index is used to calculate the initial value of the scrambling sequence generator of the given channel.

[0834] As an embodiment, the initial value of the scrambling sequence generator of the given channel depending on the given index includes: the given channel is a PDSCH, and the given index is used to calculate the initial value of the scrambling sequence generator of the given channel.

[0835] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the given channel, which includes: the initial value of the scrambling code sequence generator of the given channel is in a functional relationship with the given index.

[0836] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the given channel, which includes: the initial value of the scrambling code sequence generator of the given channel is in a mapping relationship with the given index.

[0837] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the given channel, including: at least one of the given index or an RNTI (Radio Network Temporary Identifier) ​​is used to calculate the initial value of the scrambling code sequence generator of the given channel.

[0838] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the given channel, which includes: the initial value of the scrambling sequence generator of the given channel is in a functional relationship with the given index and an RNTI.

[0839] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the given channel, including: the initial value of the scrambling sequence generator of the given channel has a functional relationship with the given index and an RNTI, and the functional relationship includes a modular operation.

[0840] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the given channel, including: the given channel is PDCCH or PDSCH, the initial value of the scrambling code sequence generator of the given channel is a functional relationship with the given index and an RNTI, and the functional relationship includes a modular operation.

[0841] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the given channel, including: the initial value of the scrambling code sequence generator of the given channel has a functional relationship with the given index and an RNTI, and the functional relationship is a weighted sum of the given index and an RNTI.

[0842] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the given channel, including: the initial value of the scrambling code sequence generator of the given channel has a functional relationship with the given index and an RNTI, and the functional relationship is a weighted sum of the given index and an RNTI followed by modulo.

[0843] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the given channel, including: the given channel is PDCCH, the initial value of the scrambling sequence generator of the given channel is C init =(n RNTI 2 16 +n ID )mod 2 31 , where the given index is n ID , n RNTI It is 0 or C-RNTI.

[0844] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the given channel, which includes: the initial value of the scrambling code sequence generator of the given channel is in a linear relationship with the given index.

[0845] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the given channel, including: the given channel is PDSCH, and the initial value of the scrambling sequence generator of the given channel is in a linear relationship with the given index.

[0846] As an embodiment, the initial value of the scrambling code sequence generator of the given channel and the given index are in a linear relationship, which includes: the initial value of the scrambling code sequence generator of the given channel and the given index are in a linear relationship, and the linear correlation coefficient between the two is equal to 1.

[0847] As an embodiment, the linear relationship between the initial value of the scrambling code sequence generator of the given channel and the given index includes: the initial value of the scrambling code sequence generator of the given channel is equal to the sum of a non-negative integer and the given index.

[0848] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the given channel, which includes: the initial value of the scrambling sequence generator of the given channel has a linear function relationship with the given index and an RNTI.

[0849] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the given channel, including: the given channel is PDSCH, the initial value of the scrambling sequence generator of the given channel is C init =n RNTI 2 15 +q·2 14 +n ID , where the given index is n ID , n RNTI is the RNTI associated with a given channel and q is a parameter.

[0850] As a sub-embodiment of the above embodiment, the parameter q is a codeword index.

[0851] As a sub-embodiment of the above embodiment, the parameter q is equal to 0 or 1.

[0852] As a sub-embodiment of the above embodiment, during single-codeword transmission, the parameter q is equal to 0.

[0853] As an embodiment, the given index is used to generate a scrambling code sequence of a given channel, including: the scrambling code sequence of the given channel and the given index are in a functional relationship.

[0854] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, including: the scrambling sequence for the given channel depends on a sequence, and the sequence depends on the given index.

[0855] As an embodiment, the one sequence being dependent on a given index includes: the one sequence and the given index being in a functional relationship.

[0856] As an embodiment, the dependency of a sequence on a given index includes: a functional relationship between the sequence and the given index, and the functional relationship includes a modular operation.

[0857] As an embodiment, the one sequence dependency on a given index includes: the given index is an initial value of the one sequence generator.

[0858] As an embodiment, the one sequence dependency on a given index includes: the given index is used to calculate an initial value of the one sequence generator.

[0859] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, including: at least one parameter of a scrambling sequence generator for the given channel depends on the given index.

[0860] As an embodiment, the given index is used to generate a scrambling sequence of a given channel includes: the given index is used to calculate at least one parameter of a scrambling sequence generator of the given channel.

[0861] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, which includes: at least one parameter of a scrambling sequence generator for the given channel is in a functional relationship with the given index.

[0862] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, including: at least one parameter of a scrambling sequence generator for the given channel and the given index are in a linear functional relationship.

[0863] As an embodiment, the given index is used to generate a scrambling sequence of a given channel, including: at least one parameter of a scrambling sequence generator of the given channel and the given index are in a mapping relationship.

[0864] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, which includes: the scrambling sequence for the given channel is obtained by transforming a sequence output by a scrambling sequence generator, wherein the transformation depends on the given index.

[0865] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, which includes: the scrambling sequence for the given channel is obtained by transforming a sequence output by a scrambling sequence generator, and the given index is a parameter in the transformation operation.

[0866] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, which includes: the scrambling sequence for the given channel is obtained by transforming a sequence output by a scrambling sequence generator, and the given index is used to calculate parameters in the transformation operation.

[0867] As an embodiment, the given index is used to generate a scrambling sequence for a given channel, which includes: the scrambling sequence for the given channel is obtained by transforming a sequence output by a scrambling sequence generator, and the generator and the transformation depend on the given index.

[0868] As an embodiment, the given index is used to generate the RS sequence of the DMRS of the given channel, including: a scrambling code sequence of the RS sequence of the DMRS of the given channel and the given index are in a functional relationship.

[0869] As an embodiment, the given index is used to generate the RS sequence of the DMRS of the given channel, including: a generator of a scrambling sequence of the RS sequence of the DMRS of the given channel depends on the given index.

[0870] As an embodiment, the given index is used to generate the RS sequence of the DMRS of the given channel, including: the given index is a parameter of a generator of a scrambling sequence of the RS sequence of the DMRS of the given channel.

[0871] As an embodiment, the given index is used to generate the RS sequence of the DMRS of the given channel, including: the given index is used to calculate the parameters of the generator of the scrambling sequence of the RS sequence of the DMRS of the given channel.

[0872] As an embodiment, the given index is used to generate the RS sequence of the DMRS of the given channel, including: the scrambling sequence of the RS sequence of the DMRS of the given channel is obtained by transforming the sequence output by the scrambling sequence generator, and the transformation depends on the given index.

[0873] As an embodiment, the given index is used to generate the RS sequence of the DMRS of a given channel, including: the scrambling sequence of the RS sequence of the DMRS of the given channel is obtained by transforming the sequence output by a scrambling sequence generator, and the scrambling sequence generator and the transformation depend on the given index.

[0874] As an embodiment, the given index is used to generate the RS sequence of the DMRS of a given channel, including: the RS sequence of the DMRS of the given channel depends on a sequence, and the sequence depends on the given index.

[0875] As an embodiment, the given index is used to generate the RS sequence of the DMRS of the given channel, including: an initial value of a scrambling sequence generator of the RS sequence of the DMRS of the given channel depends on the given index.

[0876] As an embodiment, the initial value of the scrambling sequence generator of the RS sequence of the DMRS of the given channel depends on a given index, including: the given index is the initial value of the scrambling sequence generator of the RS sequence of the DMRS of the given channel.

[0877] As an embodiment, the initial value of the scrambling code sequence generator of the RS sequence of the DMRS of the given channel depends on a given index, including: the given index is used to calculate the initial value of the scrambling code sequence generator of the RS sequence of the DMRS of the given channel.

[0878] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the RS sequence of the DMRS of the given channel, including: the initial value of the scrambling code sequence generator of the RS sequence of the DMRS of the given channel and the given index are functionally related.

[0879] As an embodiment, the given index is used to calculate the initial value of the scrambling code sequence generator of the RS sequence of the DMRS of the given channel, including: the initial value of the scrambling code sequence generator of the RS sequence of the DMRS of the given channel and the given index are in a functional relationship, and the functional relationship includes a modulo operation.

[0880] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the RS sequence of the DMRS of the given channel, including: the given index is n ID , the initial value of the scrambling sequence generator of the RS sequence of the DMRS of the given channel is Where N, n, l, n λ ,λ are parameters.

[0881] As a sub-embodiment of the above embodiment, N is the number of symbols contained in a time slot, n is the number of time slots, and l is the number of symbols.

[0882] As a sub-embodiment of the above embodiment, λ is 0, n λ It is 0 or 1.

[0883] As a sub-embodiment of the above embodiment, λ is 0, n λ is 0 or 1; and n λ The value of depends on DMRS.

[0884] As a sub-embodiment of the above embodiment, λ is 0, n λ is 0 or 1; and n λ The value of depends on the mapping of DMRS.

[0885] As a sub-embodiment of the above embodiment, λ is 0, n λ is 0 or 1; and n λ The value of is indicated by the DMRS initialization field.

[0886] As a sub-embodiment of the above embodiment, λ is 0, n λ is 0 or 1; and n λ The value of is indicated by DCI.

[0887] As a sub-embodiment of the above embodiment, λ is 0, n λ is 0 or 1; and n λ The value of is indicated by higher layer signaling.

[0888] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups, n λ is 0 or 1; and nλ The value of depends on the value of λ.

[0889] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups; when λ=1, n λ =1-n SCID ; When λ=0 or λ=2, n λ =n SCID ; where n SCID It is 0 or 1.

[0890] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups; when λ=1, n λ =1-n SCID ; When λ=0 or λ=2, n λ =n SCID ; where n SCID Equal to 0.

[0891] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups; when λ=1, n λ =1-n SCID ; When λ=0 or λ=2, n λ =n SCID ; where n SCID is 0 or 1; and n SCID The value of depends on DMRS.

[0892] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups; when λ=1, n λ =1-n SCID ; When λ=0 or λ=2, n λ =n SCID ; where n SCID is 0 or 1; and n SCID The value of depends on the mapping of DMRS.

[0893] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups; when λ=1, n λ =1-n SCID ; When λ=1 or λ=2, n λ =n SCID ; where n SCID is 0 or 1; and n SCIDThe value of is indicated by the DMRS initialization field.

[0894] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups; when λ=1, n λ =1-n SCID ; When λ=0 or λ=2, n λ =n SCID ; where n SCID is 0 or 1; and n SCID The value of is indicated by DCI.

[0895] As a sub-embodiment of the above embodiment, λ is the number of CDM (Code Division Multiplexing) groups; when λ=1, n λ =1-n SCID ; When λ=0 or λ=2, n λ =n SCID ; where n SCID is 0 or 1; and n SCID The value of is indicated by higher layer signaling.

[0896] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the RS sequence of the DMRS of the given channel, including: the given index is n ID The initial value of the scrambling sequence generator of the DMRS RS sequence of the given channel is C init =(2 17 (N·n+1+1)(2n ID +1)+2n ID )mod 2 31 , where N, n, and l are parameters.

[0897] As a sub-embodiment of the above embodiment, N is the number of symbols contained in a time slot, n is the number of time slots, and l is the number of symbols.

[0898] As an embodiment, the given index is used to calculate the initial value of the scrambling sequence generator of the RS sequence of the DMRS of the given channel, including: the given index is n ID , the initial value of the scrambling sequence generator of the RS sequence of the DMRS of the given channel is in is a parameter.

[0899] As a sub-embodiment of the above embodiment, These are the two least significant bits of the candidate SS / PBCH block index.

[0900] As a sub-embodiment of the above embodiment, These are the three least significant bits of the candidate SS / PBCH block index.

[0901] As a sub-embodiment of the above embodiment, =i+4, where i represents the two least significant bits of the candidate SS / PBCH block index.

[0902] As a sub-embodiment of the above embodiment, The value of depends on the maximum number of candidate SS / PBCH blocks in the half-frame.

[0903] As a sub-embodiment of the above embodiment, when the maximum number of candidate SS / PBCH blocks in a half-frame is greater than 4, are the three least significant bits of the candidate SS / PBCH block index; when the maximum number of candidate SS / PBCH blocks in a half-frame is equal to 4, Equal to i + n hf , where i is the two least significant bits of the candidate SS / PBCH block index, n hf It is 0 or 1.

[0904] As a sub-embodiment of the above embodiment, when the maximum number of candidate SS / PBCH blocks in a half-frame is greater than 4, are the three least significant bits of the candidate SS / PBCH block index; when the maximum number of candidate SS / PBCH blocks in a half-frame is equal to 4, Equal to i + n hf , where i is the two least significant bits of the candidate SS / PBCH block index, n hf Is 0 or 1; when PBCH is transmitted in the first half frame, n hf Equal to 0; when PBCH is transmitted in the second half of the frame, n hf Equal to 1.

[0905] Example 13

[0906] Embodiment 13 illustrates a structural block diagram of a processing device in a first node according to an embodiment of the present application, as shown in FIG13. In FIG13, the processing device 1300 in the first node includes at least a first receiver 1301 or a first transmitter 1302, wherein the first transmitter 1302 is optional.

[0907] A first receiver 1301 receives a first information block, where the first information block indicates a first resource set on a first cell;

[0908] The first receiver 1301 receives a first physical channel in the first resource set.

[0909] In embodiment 13, one of the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set and the second type of resource set are different; which index of the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0910] As an embodiment, the first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

[0911] As an embodiment, the CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in a first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in a second identifier set, the first identifier set includes one or more identifiers, the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

[0912] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource.

[0913] As an embodiment, the second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

[0914] As an embodiment, when the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

[0915] As an embodiment, it includes:

[0916] A first receiver 1301 receives a second physical channel;

[0917] Alternatively, the first transmitter 1302 transmits a second physical channel;

[0918] The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

[0919] As an embodiment, the first node device is a user equipment.

[0920] As an embodiment, the first node device is a relay node device.

[0921] As an embodiment, the first receiver 1301 includes at least one of {antenna 452, receiver 454, receiving processor 456, multi-antenna receiving processor 458, controller / processor 459, memory 460, data source 467} in embodiment 4.

[0922] As an embodiment, the first receiver 1301 includes at least one of {antenna 452, receiver 454, receive processor 456, multi-antenna receive processor 458, controller / processor 459, memory 460, data source 467, controller 491, RIS surface 492} in Example 4.

[0923] As an embodiment, the first transmitter 1302 includes at least one of {antenna 452, transmitter 454, transmit processor 468, multi-antenna transmit processor 457, controller / processor 459, memory 460, data source 467} in embodiment 4.

[0924] As an embodiment, the first transmitter 1302 includes at least one of {antenna 452, transmitter 454, transmit processor 468, multi-antenna transmit processor 457, controller / processor 459, memory 460, data source 467, controller 491, RIS surface 492} in embodiment 4.

[0925] Example 14

[0926] Embodiment 14 illustrates a structural block diagram of a processing device in a second node according to an embodiment of the present application, as shown in FIG14. In FIG14, the processing device 1400 in the second node includes at least the second transmitter 1401 or the second receiver 1402, where the second receiver 1402 is optional.

[0927] The second transmitter 1401 sends a first information block, where the first information block indicates a first resource set on a first cell;

[0928] The second transmitter 1401 sends a first physical channel in the first resource set.

[0929] In embodiment 14, one of the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each of the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set and the second type of resource set are different; which index of the Q indexes is used to generate the scrambling code sequence of the first physical channel or at least one of the RS sequences of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

[0930] As an embodiment, the first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

[0931] As an embodiment, the CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in a first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in a second identifier set, the first identifier set includes one or more identifiers, the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

[0932] As an embodiment, the spatial characteristics of the physical channel in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channel in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channel in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channel in the second type of resource set based on the at least one RS resource.

[0933] As an embodiment, the second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

[0934] As an embodiment, when the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

[0935] As an embodiment, it includes:

[0936] The second transmitter 1401 sends a second physical channel;

[0937] Alternatively, the second receiver 1402 receives a second physical channel;

[0938] The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

[0939] As an embodiment, the second node device is a base station.

[0940] As an embodiment, the second node device is a user equipment.

[0941] As an embodiment, the second node device is a relay node device.

[0942] As an embodiment, the second transmitter 1401 includes at least one of {antenna 420, transmitter 418, transmit processor 416, multi-antenna transmit processor 471, controller / processor 475, memory 476} in embodiment 4.

[0943] As an embodiment, the second transmitter 1401 includes at least one of {antenna 420, transmitter 418, transmit processor 416, multi-antenna transmit processor 471, controller / processor 475, memory 476, controller 491, RIS surface 492} in embodiment 4.

[0944] As an embodiment, the second receiver 1402 includes at least one of {antenna 420, receiver 418, receiving processor 470, multi-antenna receiving processor 472, controller / processor 475, memory 476} in embodiment 4.

[0945] As an embodiment, the second receiver 1402 includes at least one of {antenna 420, receiver 418, reception processor 470, multi-antenna reception processor 472, controller / processor 475, memory 476, controller 491, RIS surface 492} in embodiment 4.

[0946] Those skilled in the art will appreciate that all or part of the steps in the above method can be completed by instructing relevant hardware through a program, and the program can be stored in a computer-readable storage medium, such as a read-only memory, a hard disk or an optical disk. Optionally, all or part of the steps in the above embodiment can also be implemented using one or more integrated circuits. Accordingly, each module unit in the above embodiment can be implemented in the form of hardware or in the form of a software functional module. This application is not limited to any specific form of combination of software and hardware. The user equipment, terminal and UE in this application include but are not limited to drones, communication modules on drones, remote-controlled aircraft, aircraft, small aircraft, mobile phones, tablet computers, notebooks, vehicle-mounted communication equipment, wireless sensors, internet cards, Internet of Things terminals, RFID terminals, NB-IOT terminals, MTC (Machine Type Communication) terminals, eMTC (enhanced MTC) terminals, data cards, internet cards, vehicle-mounted communication equipment, low-cost mobile phones, low-cost tablet computers and other wireless communication devices. The base stations or system devices in this application include but are not limited to macrocell base stations, microcell base stations, home base stations, relay base stations, gNB (NR node B) NR node B, TRP (Transmitter Receiver Point) and other wireless communication devices.

[0947] The above description is only a preferred embodiment of the present application and is not intended to limit the scope of protection of the present application. Any changes and modifications made based on the embodiments described in the specification, if they can achieve similar partial or complete technical effects, should be considered obvious and fall within the scope of protection of the present invention.

Claims

1. A first node device used for wireless communication, characterized in that: include: A first receiver receives a first information block, wherein the first information block indicates a first resource set on a first cell; The first receiver receives a first physical channel in the first resource set; Among them, one index among Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set is different from the second type of resource set; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

2. The first node device according to claim 1, characterized in that: The first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

3. The first node device according to claim 1 or 2, characterized in that: The CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in the first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in the second identifier set. The first identifier set includes one or more identifiers, and the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

4. The first node device according to any one of claims 1 to 3, characterized in that: The spatial characteristics of the physical channels in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channels in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channels in the second type of resource set based on the at least one RS resource.

5. The first node device according to any one of claims 1 to 4, characterized in that: The second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which one of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

6. The first node device according to any one of claims 1 to 5, characterized in that: When the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

7. The first node device according to any one of claims 1 to 6, characterized in that: include: The first receiver receives a second physical channel, or the first receiver sends a second physical channel; The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

8. A second node device used for wireless communication, characterized in that: include: A second transmitter sends a first information block, where the first information block indicates a first resource set on a first cell; The second transmitter sends a first physical channel in the first resource set; Among them, one index among Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set is different from the second type of resource set; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

9. The second node device according to claim 8, characterized in that: The first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

10. The second node device according to claim 8 or 9, characterized in that: The CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in the first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in the second identifier set. The first identifier set includes one or more identifiers, and the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

11. The second node device according to any one of claims 8 to 10, characterized in that: The spatial characteristics of the physical channels in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channels in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channels in the second type of resource set based on the at least one RS resource.

12. The second node device according to any one of claims 8 to 11, characterized in that: The second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which one of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

13. The second node device according to any one of claims 8 to 12, characterized in that: When the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

14. The second node device according to any one of claims 8 to 13, characterized in that: include: The second transmitter transmits a second physical channel, or the second receiver receives a second physical channel; The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

15. A method in a first node for wireless communication, characterized in that: include: receiving a first information block, wherein the first information block indicates a first set of resources on a first cell; Receiving a first physical channel in the first resource set; Among them, one index among Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set is different from the second type of resource set; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

16. The method according to claim 15, characterized in that The first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

17. The method according to claim 15 or 16, characterized in that The CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in the first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in the second identifier set. The first identifier set includes one or more identifiers, and the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

18. The method according to any one of claims 15 to 17, characterized in that The spatial characteristics of the physical channels in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channels in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channels in the second type of resource set based on the at least one RS resource.

19. The method according to any one of claims 15 to 18, characterized in that The second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which one of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

20. The method according to any one of claims 15 to 19, characterized in that When the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

21. The method according to any one of claims 15 to 20, characterized in that include: receiving a second physical channel, or sending a second physical channel; The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

22. A method in a second node for wireless communication, characterized in that: include: Sending a first information block, where the first information block indicates a first resource set on a first cell; Sending a first physical channel in the first resource set; Among them, one index among Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, Q is a positive integer greater than 1, and each index among the Q indexes is carried by at least one synchronization signal; the first resource set belongs to one of the first type of resource set on the first cell or the second type of resource set on the first cell, and the first type of resource set is different from the second type of resource set; which index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel depends on whether the first resource set belongs to the first type of resource set or the second type of resource set.

23. The method according to claim 22, characterized in that The first type of resource set includes part or all of the CSS set, and the second type of resource set includes the USS set.

24. The method according to claim 22 or 23, characterized in that The CRC (Cyclic redundancy check) of a control information in the first type of resource set is scrambled by an identifier in the first identifier set, and the CRC of a control information in the second type of resource set is scrambled by an identifier in the second identifier set. The first identifier set includes one or more identifiers, and the second identifier set includes one or more identifiers, and at least one identifier in the first identifier set does not belong to the second identifier set.

25. The method according to any one of claims 22 to 24, characterized in that The spatial characteristics of the physical channels in the first type of resource set depend on multiple RS (Reference Signal) resources, and the first node infers the large-scale characteristics of the physical channels in the first type of resource set based on only one RS resource among the multiple RS resources; the spatial characteristics of the physical channels in the second type of resource set depend on at least one RS resource, and the first node infers the large-scale characteristics of the physical channels in the second type of resource set based on the at least one RS resource.

26. The method according to any one of claims 22 to 25, characterized in that The second index is used to generate at least one of the scrambling code sequences of the physical channels in the second type of resource set or the RS sequences of the DMRS of the physical channels in the second type of resource set, and the second index is one of the Q indexes; regardless of which one of the Q indexes the second index is, the first index is used to generate at least one of the scrambling code sequences of the physical channels in the first type of resource set or the RS sequences of the DMRS of the physical channels in the first type of resource set, and the first index is one of the Q indexes.

27. The method according to any one of claims 22 to 26, characterized in that When the first resource set belongs to the first category of resource set, the first index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the first index is one of the Q indexes; when the first resource set belongs to the second category of resource set, the second index is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and the second index is one of the Q indexes.

28. The method according to any one of claims 22 to 27, characterized in that include: Sending a second physical channel, or receiving a second physical channel; The first physical channel is used to schedule the second physical channel; the same index among the Q indexes is used to generate at least one of the scrambling code sequence of the first physical channel or the RS sequence of the DMRS of the first physical channel, and at least one of the scrambling code sequence of the second physical channel or the RS sequence of the DMRS of the second physical channel.

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