Information processing method, apparatus, and device, and non‑transitory readable storage medium
By determining the priority value of CSI reporting information, the problem of processing CSI reporting information when the terminal simultaneously sends on-demand and periodic SSBs in the cell is solved, achieving higher accuracy CSI reporting and reduced energy consumption.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- DATANG MOBILE COMM EQUIP CO LTD
- Filing Date
- 2026-01-06
- Publication Date
- 2026-07-30
AI Technical Summary
When the cell simultaneously sends on-demand synchronization signal blocks and periodic SSBs, the terminal cannot determine how to process the CSI reporting information, making it difficult to implement related solutions and affecting accuracy.
By determining the priority value of the Channel State Information (CSI) reporting information, and based on whether the first information, including the reporting parameters or configuration of the CSI reporting information, contains an on-demand reference signal, whether it is obtained by on-demand reference signal measurement, and the type of reference signal, the processing method of the CSI reporting information is determined.
Clarify the processing method for CSI reported information, improve the accuracy of related solutions, support on-demand measurement and reporting of reference signals, and reduce the energy consumption of terminal and network-side equipment.
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Figure CN2026070726_30072026_PF_FP_ABST
Abstract
Description
An information processing method, apparatus, device, and non-transiently readable storage medium
[0001] This disclosure claims priority to Chinese Patent Application No. 202510118739.0, filed on January 24, 2025, entitled "An Information Processing Method, Apparatus, Device and Non-Transiently Readable Storage Medium", the entire contents of which are incorporated herein by reference. Technical Field
[0002] This disclosure relates to the field of communication technology, and in particular to an information processing method, apparatus, device and non-transiently readable storage medium. Background Technology
[0003] In related technologies, there may be situations where a cell simultaneously transmits Synchronization Signal Blocks (SSBs) and periodic SSBs. In this case, the terminal cannot determine how to process (e.g., report or delete) the Channel Status Information (CSI) reporting information related to these two types of SSBs, which makes the implementation of the solution difficult and affects the accuracy of the related solutions.
[0004] As shown above, the relevant processing solutions for CSI reported information in related technologies have problems such as difficulty in implementation. Summary of the Invention
[0005] The purpose of this disclosure is to provide an information processing method, apparatus, device, and non-transiently readable storage medium to solve the problem that related processing schemes for CSI reporting information in the relevant art are difficult to implement.
[0006] To address the aforementioned technical problems, this disclosure provides an information processing method applied to a terminal, comprising:
[0007] Based on the first information, determine the priority value of the Channel State Information (CSI) reporting information; the first information includes at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurements, and the signal type used to obtain the reference signal for the CSI reporting information;
[0008] The processing method for the CSI reported information is determined based on the priority value.
[0009] This disclosure also provides an information processing method applied to a network-side device, including:
[0010] The receiving terminal sends CSI reporting information based on the priority value of the CSI reporting information; wherein the priority value is determined based on first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
[0011] This disclosure also provides an information processing device, which is a terminal, including a memory, a transceiver, and a processor.
[0012] A memory for storing computer programs; a transceiver for sending and receiving data under the control of the processor; and a processor for reading the computer programs from the memory and performing the following operations:
[0013] Based on the first information, determine the priority value of the Channel State Information (CSI) reporting information; the first information includes at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurements, and the signal type used to obtain the reference signal for the CSI reporting information;
[0014] The processing method for the CSI reported information is determined based on the priority value.
[0015] This disclosure also provides an information processing device, which is a network-side device, including a memory, a transceiver, and a processor.
[0016] A memory for storing computer programs; a transceiver for sending and receiving data under the control of the processor; and a processor for reading the computer programs from the memory and performing the following operations:
[0017] The transceiver receives CSI reporting information sent by the receiving terminal based on the priority value of the CSI reporting information; wherein the priority value is determined based on first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
[0018] This disclosure also provides an information processing apparatus for use in a terminal, comprising:
[0019] The first determining unit is configured to determine the priority value of the Channel State Information (CSI) reporting information based on the first information; the first information includes at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information includes parameters or configuration of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurements, and the signal type used to obtain the reference signal of the CSI reporting information.
[0020] The second determining unit is used to determine the processing method of the CSI reported information based on the priority value.
[0021] This disclosure also provides an information processing apparatus, applied to a network-side device, including:
[0022] The first receiving unit is configured to receive CSI reporting information sent by the terminal according to the priority value of the CSI reporting information; wherein the priority value is determined based on first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
[0023] This disclosure also provides a non-transitory readable storage medium storing a program for causing a processor to execute the aforementioned terminal-side or network-side device-side information processing method.
[0024] The beneficial effects of the above-mentioned technical solution disclosed herein are as follows:
[0025] In the above scheme, the information processing method determines the priority value of Channel State Information (CSI) reporting information based on first information. The first information includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations of on-demand reference signals; whether the CSI reporting information is obtained based on on-demand reference signal measurements; and the signal type used to obtain the reference signal for the CSI reporting information. Based on the priority value, the processing method of the CSI reporting information is determined. This method can support explicit processing methods for CSI reporting information, thereby facilitating the implementation of relevant processing schemes for CSI reporting information and improving the accuracy of relevant schemes. In addition, it can also support the implementation of relevant schemes for measurement and reporting when on-demand reference signals are present, thereby ensuring the execution of on-demand reference signal-related schemes, reducing the energy consumption of terminal and network-side equipment, and effectively solving the problem that relevant processing schemes for CSI reporting information are difficult to implement in related technologies. Attached Figure Description
[0026] Figure 1 is a schematic diagram of the wireless communication system architecture according to an embodiment of this disclosure;
[0027] Figure 2 is a schematic diagram of Pcell and Scell according to an embodiment of this disclosure;
[0028] Figure 3 is a schematic flowchart of an information processing method according to an embodiment of this disclosure;
[0029] Figure 4 is a schematic flowchart of the information processing method according to an embodiment of this disclosure.
[0030] Figure 5 is a schematic diagram illustrating a specific implementation of the information processing method according to an embodiment of this disclosure;
[0031] Figure 6 is a schematic diagram of a specific implementation of the information processing method according to an embodiment of this disclosure;
[0032] Figure 7 is a schematic diagram of a specific implementation of the information processing method according to an embodiment of this disclosure;
[0033] Figure 8 is a schematic diagram illustrating a specific implementation of the information processing method according to an embodiment of this disclosure;
[0034] Figure 9 is a schematic diagram of a specific implementation of the information processing method according to an embodiment of this disclosure;
[0035] Figure 10 is a schematic diagram of the structure of an information processing device according to an embodiment of this disclosure;
[0036] Figure 11 is a second schematic diagram of the structure of the information processing device according to an embodiment of this disclosure;
[0037] Figure 12 is a schematic diagram of the information processing device structure according to an embodiment of this disclosure;
[0038] Figure 13 is a schematic diagram of the structure of the information processing device according to an embodiment of this disclosure. Detailed Implementation
[0039] The technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, and not all embodiments. Based on the embodiments of this disclosure, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this disclosure.
[0040] In this disclosure, the term "and / or" describes the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent three cases: A alone, A and B simultaneously, and B alone. The character " / " generally indicates that the preceding and following related objects have an "or" relationship.
[0041] In this disclosure, the term "multiple" refers to two or more, and other quantifiers are similar.
[0042] It should be noted that the technical solutions provided in this disclosure are applicable to a variety of systems. For example, applicable systems may include Global System for Mobile Communication (GSM), Code Division Multiple Access (CDMA), Wideband Code Division Multiple Access (WCDMA) General Packet Radio Service (GPRS), Long Term Evolution (LTE), LTE Frequency Division Duplex (FDD), LTE Time Division Duplex (TDD), Long Term Evolution Advanced (LTE-A), Universal Mobile Telecommunications System (UMTS), Worldwide Interoperability for Microwave Access (WiMAX), 5G New Radio (NR) and its evolutionary communication systems, and 6G (sixth generation mobile communication technology) systems. All of these systems include terminal equipment (also referred to as terminals) and network equipment. The system may also include a core network component, such as the Evolved Packet System (EPS) or the 5G system (5GS).
[0043] Figure 1 shows a block diagram of a wireless communication system applicable to embodiments of the present disclosure. The wireless communication system includes a terminal device (also referred to simply as a terminal) and a network device.
[0044] The terminal devices involved in the embodiments of this disclosure can be devices that provide voice and / or data connectivity to users, handheld devices with wireless connectivity, or other processing devices connected to a wireless modem. The names of the terminal devices may differ in different systems; for example, in 5G or 6G systems, the terminal device may be called User Equipment (UE). Wireless terminal devices can be USB storage devices, other personal computer memory devices, and dongles. They can also communicate with one or more core networks (CNs) via a Radio Access Network (RAN). Wireless terminal devices can be mobile terminal devices, such as mobile phones (or "cellular" phones) and computers with mobile terminal devices. For example, they can be portable, pocket-sized, handheld, computer-embedded, or vehicle-mounted mobile devices that exchange voice and / or data with the radio access network. Examples of such devices include Personal Communication Service (PCS) telephones, cordless phones, Session Initiated Protocol (SIP) phones, Wireless Local Loop (WLL) stations, Personal Digital Assistants (PDAs), personal computers, tablets, and Machine-type Communication (MTC) terminal devices. Wireless terminal devices can also be referred to as systems, subscriber units, subscriber stations, mobile stations, mobile devices, remote stations, access points, remote terminals, access terminals, user terminals, user agents, user devices, and wireless access devices and routers / modems that meet the limitations of this definition, but are not limited to these in the embodiments of this disclosure.
[0045] The network device involved in this disclosure can be a base station, which may include multiple cells providing services to terminals. Depending on the specific application, the base station may also be called an access point, or a device in the access network that communicates with the wireless terminal device through one or more sectors on the air interface, or other names. The network device can be used to exchange received air frames with Internet Protocol (IP) packets, acting as a router between the wireless terminal device and the rest of the access network, where the rest of the access network may include an Internet Protocol (IP) communication network. The network device can also coordinate the attribute management of the air interface. For example, the network equipment involved in this disclosure can be a base transceiver station (BTS) in a Global System for Mobile communications (GSM) or Code Division Multiple Access (CDMA), a NodeB in a Wide-band Code Division Multiple Access (WCDMA) system, an evolved Node B (eNB or e-NodeB) in a long term evolution (LTE) system, a 5G base station (gNB) in a next generation system, a 6G base station in a 6G network architecture, a Home evolved Node B (HeNB), a relay node, a femto, a pico, network testing equipment, etc., and is not limited in this disclosure. In some network architectures, network devices may include centralized unit (CU) nodes and distributed unit (DU) nodes, which may also be geographically separated.
[0046] Network devices and terminal devices can each use one or more antennas for Multiple Input Multiple Output (MIMO) transmission. MIMO transmission can be Single User MIMO (SU-MIMO) or Multiple User MIMO (MU-MIMO). Depending on the shape and number of antenna combinations, MIMO transmission can be two-dimensional MIMO (2D-MIMO), three-dimensional MIMO (3D-MIMO), full-dimensional MIMO (FD-MIMO), or massive-scale MIMO. It can also be diversity transmission, pre-coded transmission, or beamforming transmission, etc.
[0047] The following is a description of the solutions provided in the embodiments of this disclosure.
[0048] In a 5G NR (New Radio Access) system, for a terminal using carrier aggregation and in Radio Resource Control (RRC) connected state, its serving cell includes a primary cell (Pcell) and secondary cells (Scells). The primary cell (Pcell) continuously transmits SSBs to keep the terminal synchronized with the Pcell and establish a data communication link. There are a larger number of secondary cells (Scells). To conserve base station energy, some Scells also transmit SSBs so the terminal can receive their services. Other Scells are put into a power-saving state by the base station, where they either do not transmit SSBs or transmit long-period SSBs. When these power-saving Scells need to provide data transmission services to the terminal, they are instructed to transmit on-demand SSBs. This allows the terminal to complete random access and downlink fine synchronization based on on-demand SSBs. The terminal also reports the measurement results of the on-demand SSBs so the base station can select an appropriate Scell to activate the power-saving secondary cell.
[0049] As shown in Figure 2, for terminal 1 that uses carrier aggregation and is in RRC connected state, its serving cells include primary cell Pcell and secondary cell Scell1, while Scell2 is in power-saving state (represented by dashed lines). Scell2 cannot provide services to terminal 1, nor will it send any downlink signals or long-period SSBs, in order to achieve the purpose of network power saving.
[0050] Before a terminal reports the measurement results of on-demand SSBs, the base station needs to instruct the terminal on the reporting configuration and resource configuration of on-demand SSBs so that the terminal can complete the reporting of on-demand SSB measurement results according to the configuration. Furthermore, when a secondary cell is simultaneously configured to transmit both on-demand and periodic SSBs, the base station also needs to instruct the terminal which SSB should be measured and reported. Alternatively, the terminal can determine the reporting priority of different SSBs based on the CSI (Channel Status Information) reporting priority value to avoid ambiguity and uncertainty in the terminal's measurement reporting. In addition, there are situations where multiple secondary cells simultaneously transmit on-demand and periodic SSBs, which makes it difficult for the terminal to determine the priority of various SSBs in multiple secondary cells. Currently, there is no relevant technical solution for how the terminal calculates the priority value of on-demand SSBs or other on-demand transmitted reference signals, resulting in the terminal's inability to determine the priority of on-demand and periodic SSBs, and therefore, the terminal cannot determine whether it should measure and report on-demand SSBs or periodic SSBs.
[0051] Furthermore, allowing terminals to decide which SSB to report without any regulations—for example, choosing the SSB with the highest SSB_RSRP (Reference Signal Receiving Power) from all SSBs—can also cause problems. For instance, because on-demand SSBs are more densely distributed, their measurement accuracy is higher, and they better reflect the downlink channel state of the current secondary cell. Therefore, base stations might prefer terminals to prioritize reporting on-demand SSB measurement results, even if the RSRP of on-demand SSBs is lower than that of periodic SSBs. This is because periodic SSBs are sparser and have longer periods; even if their RSRP is higher, they might not reflect the latest channel state of the current secondary cell.
[0052] In addition to on-demand SSB, wireless communication systems may introduce other on-demand reference signals in the future, such as on-demand CSI-RS (Channel Status Information Reference Signal) and on-demand TRS (Tracking Reference Signal). These on-demand reference signals also have similar priority value calculation problems as on-demand SSB.
[0053] Therefore, designing a method for calculating the priority values of on-demand reference signals and non-on-demand reference signals for measurement reporting, thereby clarifying the priority of on-demand reference signals and non-on-demand reference signals for terminal measurement reporting, and enabling the terminal to perform relevant processing according to priority (such as measurement reporting of these two types of reference signals), is a key problem that needs to be solved.
[0054] Based on the above, this disclosure provides an information processing method, apparatus, device, and non-transitory readable storage medium to address the problem that related processing schemes for CSI reporting information in the relevant art are difficult to implement. The method, apparatus, device, and non-transitory readable storage medium are based on the same application concept. Since the principles by which the method, apparatus, device, and non-transitory readable storage medium solve the problem are similar, their implementations can be mutually referred to, and repeated details will not be elaborated further.
[0055] The information processing method provided in this disclosure embodiment, applied to a terminal, as shown in FIG3, includes:
[0056] Step 31: Determine the priority value of the Channel State Information (CSI) reporting information based on the first information; the first information includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurements, and the signal type used to obtain the reference signal for the CSI reporting information;
[0057] Step 32: Determine the processing method for the CSI reported information based on the priority value.
[0058] Wherein, the CSI corresponding to the CSI reported information is obtained by measuring the reference signal; and / or, the on-demand reference signal refers to: a reference signal sent in response to the needs of a network element (such as a terminal) or a reference signal triggered by a network element, but is not limited thereto.
[0059] The information processing method provided in this embodiment determines the priority value of Channel State Information (CSI) reporting information based on first information. The first information includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations for on-demand reference signals; whether the CSI reporting information is obtained based on on-demand reference signal measurements; and the signal type used to obtain the reference signal for the CSI reporting information. Based on the priority value, the processing method for the CSI reporting information is determined. This method supports clearly defining the processing method for CSI reporting information, thereby facilitating the implementation of relevant processing schemes for CSI reporting information and improving the accuracy of relevant schemes. Furthermore, it can support the implementation of measurement and reporting schemes when on-demand reference signals are present, thereby ensuring the execution of on-demand reference signal-related schemes, reducing the energy consumption of terminal and network-side equipment, and effectively solving the problem of difficulty in implementing relevant processing schemes for CSI reporting information in related technologies.
[0060] The signal type includes at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission. This clearly defines the signal type. In this scheme, the signal type may also include other types, such as a third type of semi-on-demand transmission that falls between on-demand and non-on-demand transmission, etc., which are not limited here.
[0061] In this embodiment of the disclosure, the first type of reference signal may include at least one of: On-Demand Synchronization Signal Block (SSB), On-Demand Channel State Information Reference Signal (CSI-RS), and On-Demand Tracking Reference Signal (TRS); and / or, the second type of reference signal may include at least one of: Periodic SSB, Always-on SSB (AO-SSB), Periodic CSI-RS, Semi-Continuous CSI-RS, Aperiodic CSI-RS, Periodic TRS, Semi-Continuous TRS, and Aperiodic TRS. This clarifies the specific reference signal.
[0062] In this scheme, the smaller the priority value of the CSI reporting information, the higher the reporting priority of the corresponding CSI reporting information. This clarifies the correspondence between priority value and reporting priority. In this scheme, it can also correspond to: the larger the priority value of the CSI reporting information, the lower the reporting priority of the corresponding CSI reporting information; however, this is not a limitation.
[0063] In this embodiment of the disclosure, determining the processing method for the CSI reporting information based on the priority value includes: determining, based on the priority value, to report the CSI reporting information (which may correspond to determining the processing method as reporting), or to determine to delete the CSI reporting information (which may correspond to determining the processing method as deletion). This clarifies the processing method.
[0064] The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: determining the priority value of the CSI reporting information based on the first information using a first formula; wherein the first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0065] Or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0066] or,
[0067] Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; where...
[0068] Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by: o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number. This allows for the specific acquisition of the aforementioned priority value.
[0069] In this embodiment of the disclosure, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal is the second type of non-on-demand transmission, o takes the value 1; or, (2) when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes both the first and second types, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; or, (3) when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes both the first and second types, o takes the value 2; when the signal type of the reference signal is the second type, o takes the value 3. This clarifies the multiple possible values for parameter o.
[0070] The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: determining the priority value of the CSI reporting information based on the first information using a second formula; wherein the second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0071] Or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0072] or,
[0073] Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s×c+s+X1×o+X2×a; where...
[0074] Pri iCSI (o,y,k,c,s,a) represents the priority value; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by: s; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers. This also allows for the specific acquisition of the aforementioned priority values.
[0075] In this embodiment of the disclosure, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; and / or, (2) when the cell is not configured with AO-SSB, a takes the value 0; when the cell is configured with AO-SSB, a takes the value 1. This clarifies the value schemes for parameters o and a.
[0076] Wherein, (1) when the CSI reporting information is carried aperiodically via the Physical Uplink Shared Channel (PUSCH), y = 0; when the CSI reporting information is carried semi-persistently via the PUSCH, y = 1; when the CSI reporting information is carried semi-persistently via the Physical Uplink Control Channel (PUCCH), y = 2; when the CSI reporting information is carried periodically via the PUCCH, y = 3; and / or, (2) when the first CSI reporting information includes Layer 1 Reference Signal Received Power (L1-RSRP) or Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; when the first CSI reporting information does not include L1-RSRP and L1-SINR, k = 1. This clarifies the specific values of parameters y and k.
[0077] In this embodiment of the disclosure, the cell is either a serving cell or a measurement cell. This allows for multiple implementations of the solution.
[0078] Wherein, the N cellsThis refers to the value of a higher-level parameter; the higher-level parameter is the maximum number of serving cells, maxNrofServingCells. This clarifies N. cells The specific value to be taken.
[0079] In this embodiment of the disclosure, (1) when the signal type of the reference signal is a first type of on-demand transmission: 1) c is the serving cell index number where the channel state information report configuration (CSI reportconfig) associated with the first reference signal is located; the first reference signal is the reference signal of the first type; 2) s is the value corresponding to the channel state information report configuration identifier (CSI-ReportConfigID) associated with the first reference signal; 3) M s Configure the maximum number of CSI-ReportConfigurations for the channel state information reports associated with the first reference signal configured by the higher layers;
[0080] And / or, (2) in the case that the signal type of the reference signal is a second type of non-on-demand transmission: 1) c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located; the second reference signal is the reference signal of the second type; 2) s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the second reference signal configured for higher layers;
[0081] And / or, (3) when the signal type of the reference signal includes the first type and the second type: 1) c is the serving cell index number where the CSI reportconfig associated with the first reference signal and the second reference signal is located; 2) s is the value corresponding to the CSI-ReportConfigID associated with the first reference signal and the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured for higher layers. This clarifies the parameters c, s, and M. s The specific meaning of .
[0082] This disclosure also provides an information processing method applied to a network-side device, as shown in Figure 4, including:
[0083] Step 41: Receive the CSI reporting information sent by the receiving terminal according to the priority value of the CSI reporting information; wherein the priority value is determined according to first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information includes parameters or configuration of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
[0084] The CSI reporting information sent by the receiving terminal according to the priority value of the CSI reporting information may include: the CSI reporting information sent by the receiving terminal in a first case; the first case includes: the case where the processing method of the CSI reporting information is determined to be reporting (the CSI reporting information) according to the priority value of the CSI reporting information, but is not limited thereto.
[0085] The information processing method provided in this embodiment receives CSI reporting information sent by a terminal according to a priority value of the CSI reporting information. The priority value is determined based on first information, which includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations for on-demand reference signals; whether the CSI reporting information is obtained based on on-demand reference signal measurements; and the signal type used to obtain the reference signal for the CSI reporting information. This method supports solutions for enabling terminals to explicitly process CSI reporting information, thereby facilitating the implementation of relevant processing solutions and improving the accuracy of related solutions. Furthermore, it supports solutions for measurement and reporting when on-demand reference signals are present, ensuring the execution of on-demand reference signal-related solutions, reducing energy consumption of terminals and network-side devices, and effectively solving the problem of difficulty in implementing relevant processing solutions for CSI reporting information in related technologies.
[0086] The signal type includes at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission.
[0087] In this embodiment of the disclosure, the first type of reference signal includes at least one of: on-demand synchronization signal block SSB, on-demand channel state information reference signal CSI-RS, and on-demand tracking reference signal TRS; and / or, the second type of reference signal includes at least one of: periodic SSB, normally open SSB, periodic CSI-RS, semi-persistent CSI-RS, aperiodic CSI-RS, periodic TRS, semi-persistent TRS, and aperiodic TRS.
[0088] The smaller the priority value of the CSI reporting information, the higher the reporting priority of the CSI reporting information.
[0089] In this embodiment of the disclosure, the priority value is determined by the terminal using a first formula and based on first information; wherein, the first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0090] Or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0091] or,
[0092] Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; where...
[0093] Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum value of the number of CSI report configurations associated with the reference signal configured by the higher layer; o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number.
[0094] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal is the second type of non-on-demand transmission, o takes the value 1; or, (2) when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes the first type and the second type, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; or, (3) when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes the first type and the second type, o takes the value 2; when the signal type of the reference signal is the second type, o takes the value 3.
[0095] In this embodiment of the disclosure, the priority value is determined by the terminal based on the first information using a second formula; wherein, the second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0096] Or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0097] or,
[0098] Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a; where...
[0099] Pri iCSI(o,y,k,c,s,a) represents the priority value; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by s; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is configured; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers.
[0100] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; and / or, (2) when the cell is not configured with AO-SSB, a takes the value 0; when the cell is configured with AO-SSB, a takes the value 1.
[0101] In this embodiment of the present disclosure, (1) when the CSI reporting information is carried by the Physical Uplink Shared Channel (PUSCH) for non-periodic reporting, y = 0; when the CSI reporting information is carried by the PUSCH for semi-persistent reporting, y = 1; when the CSI reporting information is carried by the Physical Uplink Control Channel (PUCCH) for semi-persistent reporting, y = 2; when the CSI reporting information is carried by the PUCCH for periodic reporting, y = 3; and / or, (2) when the first CSI reporting information includes Layer 1 Reference Signal Received Power (L1-RSRP) or Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; when the first CSI reporting information does not include L1-RSRP and L1-SINR, k = 1.
[0102] The cell in question is either a serving cell or a measurement cell.
[0103] In this embodiment of the disclosure, the N cells The value is a higher-level parameter; the higher-level parameter is the maximum number of serving cells, maxNrofServingCells.
[0104] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission: 1) c is the serving cell index number where the channel state information report configuration (CSI reportconfig) associated with the first reference signal is located; the first reference signal is the reference signal of the first type; 2) s is the value corresponding to the channel state information report configuration identifier (CSI-ReportConfigID) associated with the first reference signal; 3) M s Configure the maximum number of CSI-ReportConfigurations for the channel state information reports associated with the first reference signal configured by the higher layers;
[0105] And / or, (2) in the case that the signal type of the reference signal is a second type of non-on-demand transmission: 1) c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located; the second reference signal is the reference signal of the second type; 2) s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the second reference signal configured for higher layers;
[0106] And / or, (3) when the signal type of the reference signal includes the first type and the second type: 1) c is the serving cell index number where the CSI reportconfig associated with the first reference signal and the second reference signal is located; 2) s is the value corresponding to the CSI-ReportConfigID associated with the first reference signal and the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured for higher layers.
[0107] It should be noted that the relevant content on the terminal side and the network side can be referred to each other, and the repeated parts will not be repeated.
[0108] The following is an example illustrating the information processing method provided in the embodiments of this disclosure, with a base station as an example of the network-side device.
[0109] To address the aforementioned technical problems, this disclosure provides an information processing method, specifically a method for calculating the priority value of on-demand reference signal (correlated) measurement information reporting. The method mainly involves: a terminal measuring a reference signal to obtain a first CSI; the terminal calculating a first priority value associated with the first CSI reporting information (corresponding to the aforementioned CSI reporting information) based on first information. The terminal then determines whether to report or delete the first CSI reporting information based on the first priority value (corresponding to the processing method of determining the CSI reporting information based on the priority value). The first information includes at least one of the following: the type of reference signal on which the first CSI measurement reporting is based (corresponding to the signal type of the reference signal used to obtain the CSI reporting information); whether the first CSI measurement reporting is based on on-demand reference signal measurement (corresponding to whether the aforementioned CSI reporting information is based on on-demand reference signal measurement); and whether the reporting parameters or configuration (i.e., CSI report configuration) of the first CSI includes on-demand reference signals (corresponding to whether the reporting parameters or configuration of the aforementioned CSI reporting information includes on-demand reference signal parameters or configuration). The reference signal type includes at least two types: on-demand reference signals (corresponding to the first type of on-demand transmission mentioned above) and non-on-demand reference signals (corresponding to the second type of non-on-demand transmission mentioned above).
[0110] In this scheme, the terminal can receive reference signals sent by multiple cells, calculate the priority values of all received reference signals, and then determine the processing method of the CSI reporting information corresponding to each reference signal, but is not limited to this.
[0111] The following are examples illustrating the content involved in this plan.
[0112] 1. Based on the first piece of information, calculate the priority value of the CSI reported information:
[0113] (1) The first information may include: the type of reference signal on which the first CSI measurement report is based, whether the first CSI measurement report is obtained based on on-demand reference signal measurement, and whether the reporting parameters or reporting configuration of the first CSI include at least one of the information of on-demand reference signal.
[0114] (2) The reference signal types include at least two types: a first reference signal (corresponding to the first type mentioned above) and a second reference signal (corresponding to the second type mentioned above). Different types may be represented by different bit values, but this is not a limitation.
[0115] (3) The first reference signal refers to a reference signal sent on demand (which can be understood as a reference signal sent according to or in response to the needs of network elements), which may include at least one of the following: on-demand SSB (i.e., OD-SSB), on-demand CSI-RS, on-demand TRS, etc.
[0116] (4) The second reference signal refers to a reference signal that is not sent on demand, which may include at least one of the following: periodic SSB, normally open SSB (i.e., AO-SSB), periodic CSI-RS, semi-continuous CSI-RS, aperiodic CSI-RS, periodic TRS, semi-continuous TRS, aperiodic TRS, etc.
[0117] (5) If the first priority value associated with the first CSI reporting information is small, then its priority (i.e. the corresponding reporting priority) can be high, so that the terminal can report the first CSI reporting information first; corresponding to the above, the CSI reporting information can be determined to be reported based on the priority value.
[0118] (6) If the first priority value associated with the first CSI report information is large, then its priority can be low, so the terminal can delete the first CSI report information first; corresponding to the above-mentioned determination to delete the CSI report information based on the priority value.
[0119] 2. Priority value calculation scheme 1: Introduce one parameter 'o' to represent the reference signal type, and this parameter can have two values:
[0120] (7) The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information in any of the following ways (which can correspond to the above-mentioned determination of the priority value of the CSI reporting information based on the first information using the first formula):
[0121] Method 1 (where P is the adjustment factor; P is a positive integer, for example, P = 8): Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0122] Method 2: Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s×o;
[0123] Method 3 (X is a positive number): Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o;
[0124] P=8 ensures that when o=0, the priority value is the lowest and the corresponding priority level is the highest.
[0125] (8) The meaning (indicating the reference signal type) and value of the parameter “o” in the above formula:
[0126] When the terminal measures the first reference signal and obtains the first CSI, the parameter “o” = 0; this corresponds to the above case where the signal type of the reference signal is the first type of on-demand transmission, where o takes the value of 0.
[0127] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 1; this corresponds to the case where the signal type of the reference signal is the second type of non-on-demand transmission, where o takes the value 1.
[0128] It should be noted that the parameter o introduced in the priority value calculation schemes of the embodiments of this disclosure can also be used to represent whether the reporting parameters or reporting configuration of the CSI reporting information includes parameters or configurations of on-demand reference signals, or to represent whether the CSI reporting information is obtained based on on-demand reference signal measurement; of course, different values can also be used to represent different combinations of at least two of the following: whether the reporting parameters or reporting configuration of the CSI reporting information includes parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type of the reference signal used to obtain the CSI reporting information (for example, if the reporting parameters or reporting configuration of the CSI reporting information includes parameters or configurations of on-demand reference signals, and the CSI reporting information is obtained based on on-demand reference signal measurement, then o = 1), which is not limited here.
[0129] 3. Priority value calculation scheme 2: Introduce one parameter 'o' to represent the reference signal type, and this parameter can have three values:
[0130] (9) The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information in any of the following ways (which may correspond to the above-mentioned determination of the priority value of the CSI reporting information based on the first information using the first formula):
[0131] Method 1 (where P is the adjustment factor, P is a positive integer, for example, P = 8): Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0132] Method 2: Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0133] Method 3 (X is a positive number): Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o;
[0134] P=8 ensures that when o=0, the priority value is the lowest and the corresponding priority level is the highest.
[0135] (10) The meaning (indicating the reference signal type) and value of the parameter “o” in the above formula:
[0136] When the terminal measures the first reference signal to obtain the first CSI, the parameter “o” = 0; this corresponds to the above-mentioned case where the signal type of the reference signal is the first type, where o takes the value of 0.
[0137] When the terminal measures the first reference signal and the second reference signal to obtain the first CSI, the parameter “o” = 1; this corresponds to the above situation where the signal type of the reference signal includes the first type and the second type, where o takes the value of 1.
[0138] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 2; this corresponds to the above situation where the signal type of the reference signal is the second type, and o takes the value 2.
[0139] 4. Priority value calculation scheme 3: Introduce one parameter 'o' to represent the reference signal type, and this parameter can have four possible values:
[0140] (11) The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information in any of the following ways (which may correspond to the above-mentioned determination of the priority value of the CSI reporting information based on the first information using the first formula):
[0141] Method 1 (where P is the adjustment factor, P is a positive integer, for example, P = 8): Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0142] Method 2: Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0143] Method 3 (X is a positive number): Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o;
[0144] P=8 ensures that when o=0, the priority value is the lowest and the corresponding priority level is the highest.
[0145] (12) The meaning (indicating the reference signal type) and value of parameter “o” in the above formula:
[0146] When the terminal measures the first reference signal to obtain the first CSI, and the cell is not configured with AO-SSB, the parameter "o" = 0; this corresponds to the case where the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block AO-SSB, where o takes the value 0; wherein, the cell is the cell that transmits the reference signal, which can be the serving cell or the measuring cell, etc., and is not limited here.
[0147] When the terminal measures the first reference signal to obtain the first CSI, and the cell is configured with AO-SSB, the parameter "o" = 1; this corresponds to the case where the signal type of the reference signal is the first type and the cell is configured with AO-SSB, where o takes the value 1; wherein, the cell is the cell that transmits the reference signal, which can be the serving cell or the measuring cell, etc., and is not limited here.
[0148] When the terminal measures the first reference signal and the second reference signal to obtain the first CSI, the parameter “o” = 2; this corresponds to the above situation where the signal type of the reference signal includes the first type and the second type, where o takes the value of 2.
[0149] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 3; when the signal type of the reference signal is the second type, o takes the value 3.
[0150] 5. Priority value calculation scheme 4: Introduce two parameters, o and a, to represent the reference signal type and whether the cell is configured with AO-SSB, respectively.
[0151] (13) The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information in any of the following ways (which can correspond to the above-mentioned determination of the priority value of the CSI reporting information based on the first information using the second formula):
[0152] Method 1 (where P and Q are adjustment factors, both positive integers, e.g., P = 8, Q = 16): Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0153] Method 2: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0154] Method 3 (X1 and X2 are positive numbers): Pri iCSI (o,y,k,c,s,a)=2×Ncells ×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a;
[0155] P = 8 and Q = 16, which ensures that when o = 0, the priority value is the lowest and the priority level is the highest.
[0156] (14) The meaning and values of parameters “o” and “a” in the above formula (“o” represents the reference signal type, and “a” represents whether the cell is configured with AO-SSB):
[0157] When the terminal measures the first reference signal and obtains the first CSI, the parameter “o” = 0; this corresponds to the above case where the signal type of the reference signal is the first type of on-demand transmission, where o takes the value of 0.
[0158] When the terminal measures the first reference signal and the second reference signal to obtain the first CSI, the parameter “o” = 1; this can correspond to the above situation where the signal type of the reference signal includes the first type and the second type that is not transmitted on demand, where o takes the value of 1.
[0159] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 2; this corresponds to the above case where the signal type of the reference signal is the second type, where o takes the value of 2.
[0160] When the cell is not configured with AO-SSB, parameter "a" = 0; this corresponds to the case described above where a takes the value 0 when the cell is not configured with AO-SSB; where the cell is the cell transmitting the reference signal, which can be a serving cell or a measurement cell, etc., and is not limited here.
[0161] When the cell is configured with AO-SSB, parameter "a" = 1; this corresponds to the case where a takes the value 1 when the cell is configured with AO-SSB as described above; wherein, the cell is the cell transmitting the reference signal, which can be a serving cell or a measurement cell, etc., and is not limited here.
[0162] 6. The meaning and values of other parameters in priority value calculation schemes 1-4:
[0163] (15) For aperiodic first CSI reporting information carried via PUSCH (Physical Uplink Shared Channel), y = 0 (corresponding to the above-mentioned case where the CSI reporting information is carried aperiodically via PUSCH, y = 0); for semi-persistent (first) CSI reporting information carried via PUSCH, y = 1 (corresponding to the above-mentioned case where the CSI reporting information is carried semi-persistently via PUSCH, y = 1); for information carried via PUCCH (Physical Uplink Control Channel)... The Physical Uplink Control Channel (PUCCH) carries semi-persistent (first) CSI reporting information, y = 2 (which can correspond to the case where the CSI reporting information is carried by the PUCCH for semi-persistent reporting, y = 2); for periodic (first) CSI reporting information carried by the PUCCH, y = 3 (which can correspond to the case where the CSI reporting information is carried by the PUCCH for periodic reporting, y = 3); where y represents an adjustment parameter, which can correspond to the reporting type, but is not limited to it.
[0164] (16) For the first CSI reporting information carrying L1-RSRP or L1-SINR (Signal to Interference plus Noise Ratio), k = 0 (which can correspond to the case where the first CSI reporting information includes the L1-RSRP or L1-SINR, k = 0); for the first CSI reporting information not carrying L1-RSRP and L1-SINR, k = 1 (which can correspond to the case where the first CSI reporting information does not include L1-RSRP and L1-SINR, k = 1); where k represents the adjustment parameter, which can correspond to the type of reported (measurement) result, but is not limited to this.
[0165] (17)N cells It is the value of the higher-level parameter maxNrofServingCells (maximum number of serving cells);
[0166] (18) For CSI reporting associated with the first reference signal (which may correspond to the case described above where the signal type of the reference signal is the first type that is sent on demand):
[0167] c is the serving cell index number where the CSI reportconfig associated with the first reference signal is located;
[0168] s is the CSI-ReportConfigID (report configuration identifier) associated with the first reference signal;
[0169] M s It is the maximum number of CSI-ReportConfigurations associated with the first reference signal configured at higher levels.
[0170] (19) For CSI reporting associated with the second reference signal (which may correspond to the case described above where the signal type of the reference signal is the second type that is not transmitted on demand):
[0171] c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located;
[0172] s is the CSI-ReportConfigID (corresponding value) associated with the second reference signal;
[0173] M s It is the maximum number of CSI-ReportConfigurations associated with the second reference signal in the higher-level configuration.
[0174] (20) For CSI reporting associated with the first reference signal and the second reference signal (which may correspond to the case described above where the signal type of the reference signal includes the first type and the second type):
[0175] c is the serving cell index number where the CSI reportconfig associated with the first and second reference signals is located;
[0176] s is the CSI-ReportConfigID associated with the first reference signal and the second reference signal;
[0177] M s It is the maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured at higher levels.
[0178] The following provides a specific example illustrating this solution.
[0179] Example 1 (Calculate the priority value of CSI reporting information based on the first information):
[0180] This plan includes:
[0181] The terminal measures a reference signal to obtain a first CSI; based on first information, the terminal calculates a first priority value associated with the first CSI reporting information. Based on the first priority value, the terminal determines whether to report the first CSI reporting information or delete it. The first information may include: the type of reference signal on which the first CSI measurement and reporting is based, whether the first CSI measurement and reporting is based on on-demand reference signal measurement, and whether the reporting parameters or configuration of the first CSI include at least one of the following: on-demand reference signals and non-on-demand reference signals. The reference signal type includes at least two types: on-demand transmitted reference signals and non-on-demand transmitted reference signals.
[0182] In this embodiment:
[0183] The first information includes at least one of the following: the type of reference signal on which the first CSI measurement report is based; whether the first CSI measurement report is obtained based on on-demand reference signal measurement; and whether the reporting parameters or configuration of the first CSI include on-demand reference signals. The reference signal type includes at least two types of reference signals: a first reference signal and a second reference signal. The first reference signal refers to an on-demand transmitted reference signal, which may include at least one reference signal such as on-demand SSB, on-demand CSI-RS, or on-demand TRS. The second reference signal refers to a non-on-demand transmitted reference signal, which may include at least one reference signal such as periodic SSB, normally open SSB, periodic CSI-RS, semi-continuous CSI-RS, aperiodic CSI-RS, periodic TRS, semi-continuous TRS, or aperiodic TRS. If the first priority value associated with the first CSI report information is small, its priority is high, and the terminal will prioritize reporting the first CSI report information. If the first priority value associated with the first CSI report information is large, its priority is low, and the terminal will prioritize deleting the first CSI report information.
[0184] Taking an example where the first reference signal is an On-Demand SSB (OD-SSB) and the second reference signal is a Normally Open SSB (AO-SSB), to conserve base station energy, during periods when the secondary cell is not activated, the secondary cell only sends long-period sparse AO-SSBs or does not send AO-SSBs at all, which is beneficial for base station energy conservation. After the base station decides to activate a secondary cell, it instructs multiple secondary cells to send OD-SSBs within a specified time period so that the terminal can perform L1 / L3 (Layer 1 / Layer 3) measurements, AGC (Automatic Gain Control), and time-frequency synchronization. The terminal measures the OD-SSBs sent by the secondary cells according to the instruction signaling configured by the base station and reports the OD-SSB measurement results to the base station. The base station then selects and activates a suitable secondary cell based on the measurement results. For a secondary cell configured to send OD-SSBs, it may also be configured to send AO-SSBs.
[0185] As shown in Figure 5, during time periods A and C, the base station only configures secondary cells to transmit long-period AO-SSB, and does not configure secondary cells to transmit OD-SSB. During time period B, the base station configures secondary cells to transmit OD-SSB. To regulate the terminal's measurement reporting behavior based on these two SSBs, a calculation scheme for the priority value of CSI reporting based on AO-SSB and OD-SSB measurements can be predefined (e.g., any of the four schemes mentioned above). Then, the terminal selects to report either AO-SSB or OD-SSB measurement results according to the priority of AO-SSB and OD-SSB measurement reporting. Specifically, during time periods A and C, the UE reports the AO-SSB measurement results; during time period B, if the priority of OD-SSB measurement result reporting is higher than that of AO-SSB, the UE can only report the OD-SSB measurement results and not the AO-SSB measurement results.
[0186] Therefore, by using the method provided in this embodiment, the following can be achieved: the terminal calculates the first priority value associated with the first CSI reporting information based on the first information; the terminal determines whether to report the first CSI reporting information or delete the first CSI reporting information based on the first priority value. Thus, using this method, the terminal can calculate and compare the priority values of the reported measurement results for on-demand reference signals and non-on-demand reference signals, and determine the reporting priority of the measurement results. This solves the problem of which measurement result the terminal should report when on-demand reference signals and non-on-demand reference signals are measured simultaneously, and also reduces the energy consumption of the base station and the terminal.
[0187] Example 2 (Priority value calculation scheme 1: Introduce one parameter 'o' to represent the reference signal type, and this parameter can have two values):
[0188] This plan includes:
[0189] The terminal measures a reference signal to obtain a first CSI; based on first information, the terminal calculates a first priority value associated with the first CSI reporting information. Based on the first priority value, the terminal determines whether to report the first CSI reporting information or delete it. The first information may include: the type of reference signal on which the first CSI measurement and reporting is based, whether the first CSI measurement and reporting is based on on-demand reference signal measurement, and whether the reporting parameters or configuration of the first CSI include at least one of the following: on-demand reference signals and non-on-demand reference signals. The reference signal type includes at least two types: on-demand transmitted reference signals and non-on-demand transmitted reference signals.
[0190] In this embodiment:
[0191] The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information according to any of the following methods:
[0192] Method 1 (where P is the adjustment factor; P is a positive integer, for example, P = 8): Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0193] Method 2: Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0194] Method 3 (X is a positive number): Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o;
[0195] (1) The meaning (indicating the reference signal type) and value of parameter “o” in the above formula:
[0196] When the terminal measures the first reference signal to obtain the first CSI, parameter “o” = 0;
[0197] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 1.
[0198] (2) For non-periodic first CSI reporting information carried through PUSCH, y = 0; for semi-persistent (first) CSI reporting information carried through PUSCH, y = 1; for semi-persistent (first) CSI reporting information carried through PUCCH, y = 2; for periodic (first) CSI reporting information carried through PUCCH, y = 3.
[0199] (3) For the first CSI report carrying L1-RSRP or L1-SINR, k = 0; for the first CSI report not carrying L1-RSRP and L1-SINR, k = 1;
[0200] (4)N cells It is the value of the higher-level parameter maxNrofServingCells;
[0201] (5) For CSI reporting associated with the first reference signal:
[0202] c is the serving cell index number where the CSI reportconfig associated with the first reference signal is located;
[0203] s is the CSI-ReportConfigID (corresponding value) associated with the first reference signal;
[0204] M s It is the maximum number of CSI-ReportConfigurations associated with the first reference signal in the higher-level configuration.
[0205] (6) For CSI reporting associated with the second reference signal:
[0206] c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located;
[0207] s is the CSI-ReportConfigID associated with the second reference signal;
[0208] M s It is the maximum number of CSI-ReportConfigurations associated with the second reference signal in the higher-level configuration.
[0209] As shown in Figure 6, the terminal is configured with two serving cells: serving cell 0 (corresponding to Serving Cell Index = 0) and serving cell 1 (corresponding to Serving Cell Index = 1), with each serving cell corresponding to a carrier. The reporting configuration (ReportConfigID = 0) in serving cell 0 is configured with AO-SSB (Always-on SSB), employing periodic reporting, and the reported content is the L1-RSRP measured based on AO-SSB. Similarly, the reporting configuration in serving cell 1 is configured with OD-SSB (On-demand SSB), also employing periodic reporting, and the reported content is the L1-RSRP measured based on OD-SSB. Taking the first reference signal as an on-demand SSB (i.e., OD-SSB) and the second reference signal as a normally open SSB (i.e., AO-SSB) as an example; for these two reporting configurations, since OD-SSB is configured in the 0th reporting configuration of the 1st serving cell, the CSI reporting priority value calculated according to the above formula is less than the 0th reporting configuration in the 0th serving cell. Therefore, the priority of the 0th reporting configuration in the 1st serving cell is higher than that of the 0th reporting configuration in the 0th serving cell.
[0210] Taking the example where the first reference signal is OD-SSB (reporting configuration 2 in serving cell 0) and the second reference signal is Aperiodic CSI-RS (reporting configuration 1 in serving cell 1), since OD-SSB is configured in reporting configuration 2 of serving cell 0, the CSI reporting priority value calculated according to the above formula is less than that in reporting configuration 1 of serving cell 1. Therefore, reporting configuration 2 of serving cell 0 has a higher priority than reporting configuration 1 of serving cell 1. Specifically, reporting configuration 2 of serving cell 0 uses semi-persistent reporting, reporting the L1-SINR measured based on OD-SSB; reporting configuration 1 of serving cell 1 uses aperiodic reporting, reporting the L1-RSRP measured based on aperiodic CSI-RS. Additionally, in reporting configuration 1 of serving cell 0, CQI stands for Channel Quality Indicator.
[0211] Specifically, the overall priority order calculated according to the above formula is shown in Figure 6 (on the left side of the box for each reported configuration). The smaller the number in the circle, the higher the priority. The highest priority is reported configuration number 2 in serving cell 0 (circle number 1), followed by reported configuration number 0 in serving cell 1 (circle number 2). The lowest priority is reported configuration number 0 in serving cell 0 (circle number 6).
[0212] In this scheme, the reporting configuration of the serving cell is as follows: the first item is the configuration number (i.e., the identifier ID), the second item is the reference signal to be measured (such as OD-SSB), the third item is the measurement reporting method (such as periodic), and the fourth item is the information to be reported (such as L1-RSRP obtained from the measurement of the reference signal).
[0213] Based on the above, the method provided in this embodiment can achieve the following: a parameter o is introduced into the priority value calculation formula to indicate whether the reference signal is sent on demand; this can support the priority of reporting measurement results obtained based on the on-demand transmitted reference signal, ensuring that the terminal can prioritize reporting the measurement results associated with the on-demand transmitted reference signal to the base station as soon as possible, so as to complete the secondary cell activation and other operations as soon as possible.
[0214] Example 3 (Priority value calculation scheme 2: Introducing a parameter 'o' to represent the reference signal type, and this parameter can have three values):
[0215] This plan includes:
[0216] The terminal measures a reference signal to obtain a first CSI; based on first information, the terminal calculates a first priority value associated with the first CSI reporting information. Based on the first priority value, the terminal determines whether to report the first CSI reporting information or delete it. The first information may include: the type of reference signal on which the first CSI measurement and reporting is based, whether the first CSI measurement and reporting is based on on-demand reference signal measurement, and whether the reporting parameters or configuration of the first CSI include at least one of the following: on-demand reference signals and non-on-demand reference signals. The reference signal type includes at least two types: on-demand transmitted reference signals and non-on-demand transmitted reference signals.
[0217] In this embodiment:
[0218] The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information according to any of the following methods:
[0219] Method 1 (where P is the adjustment factor; P is a positive integer, for example, P = 8): Pri iCSI (o,y,k,c,s)=P×N cells ×Ms ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0220] Method 2: Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0221] Method 3 (X is a positive number): Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o;
[0222] (1) The meaning (indicating the reference signal type) and value of parameter “o” in the above formula:
[0223] When the terminal measures the first reference signal to obtain the first CSI, parameter “o” = 0;
[0224] When the terminal measures the first reference signal and the second reference signal to obtain the first CSI, the parameter “o” = 1;
[0225] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 2.
[0226] (2) For non-periodic first CSI reporting information carried through PUSCH, y = 0; for semi-persistent (first) CSI reporting information carried through PUSCH, y = 1; for semi-persistent (first) CSI reporting information carried through PUCCH, y = 2; for periodic (first) CSI reporting information carried through PUCCH, y = 3.
[0227] (3) For the first CSI report carrying L1-RSRP or L1-SINR, k = 0; for the first CSI report not carrying L1-RSRP and L1-SINR, k = 1;
[0228] (4)N cells It is the value of the higher-level parameter maxNrofServingCells;
[0229] (5) For CSI reporting associated with the first reference signal:
[0230] c is the serving cell index number where the CSI reportconfig associated with the first reference signal is located;
[0231] s is the CSI-ReportConfigID (corresponding value) associated with the first reference signal;
[0232] M s It is the maximum number of CSI-ReportConfigurations associated with the first reference signal in the higher-level configuration.
[0233] (6) For CSI reporting associated with the second reference signal:
[0234] c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located;
[0235] s is the CSI-ReportConfigID associated with the second reference signal;
[0236] M s It is the maximum number of CSI-ReportConfigurations associated with the second reference signal in the higher-level configuration.
[0237] (7) For CSI reporting associated with the first reference signal and the second reference signal:
[0238] c is the serving cell index number where the CSI reportconfig associated with the first and second reference signals is located;
[0239] s is the CSI-ReportConfigID associated with the first reference signal and the second reference signal;
[0240] M s It is the maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured at higher levels.
[0241] As shown in Figure 7, the terminal is configured with two serving cells, namely serving cell 0 and serving cell 1, each corresponding to a carrier. The reporting configuration in serving cell 0 includes AO-SSB, using periodic reporting, and the reported content is the L1-RSRP measured based on AO-SSB. The reporting configuration in serving cell 0 includes OD-SSB and AO-SSB, using semi-persistent reporting, and the reported content is the L1-SINR measured based on OD-SSB and AO-SSB. Similarly, the reporting configuration in serving cell 1 includes OD-SSB, also using periodic reporting, and the reported content is the L1-RSRP measured based on OD-SSB. This is illustrated by an example where the first reference signal is an on-demand SSB (i.e., OD-SSB) and the second reference signal is a normally open SSB (i.e., AO-SSB). For these three reporting configurations, since reporting configuration 0 in serving cell 1 has OD-SSB configured, its CSI reporting priority value calculated using the above formula is the smallest, resulting in the highest reporting priority. Reporting configuration 2 in serving cell 0 has both OD-SSB and AO-SSB configured, resulting in the second smallest CSI reporting priority value calculated using the above formula (i.e., second in priority order), and the second highest reporting priority (i.e., second in priority order). Reporting configuration 0 in serving cell 0 has the largest CSI reporting priority value calculated using the above formula, resulting in the lowest reporting priority. Therefore, the priority order of these three reporting configurations from highest to lowest is: reporting configuration 0 in serving cell 1, reporting configuration 2 in serving cell 0, and reporting configuration 0 in serving cell 0.
[0242] Specifically, the overall priority order calculated according to the above formula is shown in the circled numbers in Figure 7. The smaller the number in the circle, the higher the priority. The highest priority is the 0th reported configuration in serving cell 1 (circled number 1), followed by the 2nd reported configuration in serving cell 0 (circled number 2). The lowest priority is the 0th reported configuration in serving cell 0 (circled number 6).
[0243] Therefore, by adopting the method provided in this embodiment, it is possible to introduce a parameter o into the priority value calculation formula to indicate whether the CSI is obtained based on on-demand reference signal measurement, or based on on-demand reference signal and non-on-demand reference signal measurement, or based on non-on-demand reference signal measurement. This allows for flexible priority of measurement result reporting based on whether on-demand reference signal is included, ensuring that the terminal can prioritize reporting measurement results associated with on-demand reference signal to the base station as soon as possible, so as to complete secondary cell activation and other operations as quickly as possible.
[0244] Example 4 (Priority value calculation scheme 3: Introducing a parameter 'o' to represent the reference signal type, and this parameter can have four values):
[0245] This plan includes:
[0246] The terminal measures a reference signal to obtain a first CSI; based on first information, the terminal calculates a first priority value associated with the first CSI reporting information. Based on the first priority value, the terminal determines whether to report the first CSI reporting information or delete it. The first information may include: the type of reference signal on which the first CSI measurement and reporting is based, whether the first CSI measurement and reporting is based on on-demand reference signal measurement, and whether the reporting parameters or configuration of the first CSI include at least one of the following: on-demand reference signals and non-on-demand reference signals. The reference signal type includes at least two types: on-demand transmitted reference signals and non-on-demand transmitted reference signals.
[0247] In this embodiment:
[0248] The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information according to any of the following methods:
[0249] Method 1 (where P is the adjustment factor; P is a positive integer, for example, P = 8): Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0250] Method 2: Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0251] Method 3 (X is a positive number): Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o;
[0252] (1) The meaning (indicating the reference signal type) and value of parameter “o” in the above formula:
[0253] When the terminal measures the first reference signal to obtain the first CSI, and the serving cell is not configured with AO-SSB, the parameter "o" = 0;
[0254] When the terminal measures the first reference signal to obtain the first CSI, and the serving cell is configured with AO-SSB, the parameter “o” = 1;
[0255] When the terminal measures the first reference signal and the second reference signal to obtain the first CSI, the parameter “o” = 2;
[0256] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 3.
[0257] (2) For non-periodic first CSI reporting information carried through PUSCH, y = 0; for semi-persistent (first) CSI reporting information carried through PUSCH, y = 1; for semi-persistent (first) CSI reporting information carried through PUCCH, y = 2; for periodic (first) CSI reporting information carried through PUCCH, y = 3.
[0258] (3) For the first CSI report carrying L1-RSRP or L1-SINR, k = 0; for the first CSI report not carrying L1-RSRP and L1-SINR, k = 1;
[0259] (4)N cells It is the value of the higher-level parameter maxNrofServingCells;
[0260] (5) For CSI reporting associated with the first reference signal:
[0261] c is the serving cell index number where the CSI reportconfig associated with the first reference signal is located;
[0262] s is the CSI-ReportConfigID (corresponding value) associated with the first reference signal;
[0263] M s It is the maximum number of CSI-ReportConfigurations associated with the first reference signal in the higher-level configuration.
[0264] (6) For CSI reporting associated with the second reference signal:
[0265] c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located;
[0266] s is the CSI-ReportConfigID associated with the second reference signal;
[0267] M s It is the maximum number of CSI-ReportConfigurations associated with the second reference signal in the higher-level configuration.
[0268] (7) For CSI reporting associated with the first reference signal and the second reference signal:
[0269] c is the serving cell index number where the CSI reportconfig associated with the first and second reference signals is located;
[0270] s is the CSI-ReportConfigID associated with the first reference signal and the second reference signal;
[0271] M s It is the maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured at higher levels.
[0272] As shown in Figure 8, the terminal is configured with two serving cells, namely serving cell 0 and serving cell 1, each corresponding to a carrier. Serving cell 0 is configured with an AO-SSB, while serving cell 1 is not. For serving cell 1, which lacks an AO-SSB, the OD-SSB in this serving cell becomes more important due to the absence of an AO-SSB, and therefore its reporting priority is higher than that of the OD-SSB in serving cell 0, which is configured with an AO-SSB.
[0273] In this configuration, the 0th reporting configuration of serving cell 0 includes an AO-SSB, which reports periodically, providing the L1-RSRP measured by the AO-SSB. The 2nd reporting configuration of serving cell 0 includes an OD-SSB, which reports semi-continuously, providing the L1-SINR measured by the OD-SSB. Similarly, the 0th reporting configuration of serving cell 1 includes an OD-SSB, also reporting periodically, providing the L1-RSRP measured by the OD-SSB. Taking an example where the first reference signal is an on-demand SSB (OD-SSB) and the second reference signal is a normally open SSB (AO-SSB), the 0th reporting configuration of serving cell 1 has the lowest CSI reporting priority value calculated using the above formula, resulting in the highest reporting priority. This is because serving cell 0 has an AO-SSB, serving cell 1 does not have an OD-SSB, and the 0th reporting configuration of serving cell 1 includes an OD-SSB. In the 2nd reporting configuration of serving cell 0, OD-SSB is configured. According to the formula above, its CSI reporting priority value is the second smallest, and its reporting priority is the second highest. Conversely, in the 0th reporting configuration of serving cell 0, the CSI reporting priority value is the largest, and its reporting priority is the lowest. Therefore, the priority order of these three reporting configurations from highest to lowest is: the priority of the 0th reporting configuration in serving cell 1, the priority of the 2nd reporting configuration in serving cell 0, and the priority of the 0th reporting configuration in serving cell 0.
[0274] Specifically, the overall priority order calculated according to the above formula can be shown in the circled numbers in Figure 8. The smaller the number in the circle, the higher the priority. The highest priority is the 0th reporting configuration in the 1st serving cell (the number in the circle is 1), followed by the 2nd reporting configuration in the 0th serving cell (the number in the circle is 2), and the lowest priority is the 0th reporting configuration in the 0th serving cell (the number in the circle is 6).
[0275] Therefore, by adopting the method provided in this embodiment, it is possible to: introduce a parameter o into the priority value calculation formula to indicate whether the CSI is obtained based on on-demand reference signal measurement, or based on on-demand reference signal and non-on-demand reference signal measurement, or based on non-on-demand reference signal measurement; and also introduce the priority value calculation condition of whether the serving cell is configured with AO-SSB; thus, the priority of measurement result reporting can be obtained flexibly based on whether the serving cell is configured with AO-SSB and whether it contains on-demand reference signal, ensuring that the terminal can prioritize reporting the measurement results associated with on-demand reference signal to the base station as soon as possible, so as to complete the secondary cell activation and other operations as soon as possible.
[0276] Example 5 (Priority value calculation scheme 4: Introducing two parameters o and a, representing the reference signal type and whether the cell is configured with AO-SSB, respectively):
[0277] This plan includes:
[0278] The terminal measures a reference signal to obtain a first CSI; based on first information, the terminal calculates a first priority value associated with the first CSI reporting information. Based on the first priority value, the terminal determines whether to report the first CSI reporting information or delete it. The first information may include: the type of reference signal on which the first CSI measurement and reporting is based, whether the first CSI measurement and reporting is based on on-demand reference signal measurement, and whether the reporting parameters or configuration of the first CSI include at least one of the following: on-demand reference signals and non-on-demand reference signals. The reference signal type includes at least two types: on-demand transmitted reference signals and non-on-demand transmitted reference signals.
[0279] In this embodiment:
[0280] The terminal measures the reference signal to obtain the first CSI, and the terminal calculates the priority value of the first CSI reporting information according to any of the following methods:
[0281] Method 1 (where P and Q are adjustment factors, both positive integers; for example, P = 16, Q = 8): Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0282] Method 2: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0283] Method 3 (X1 and X2 are positive numbers): Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s×c+s+X1×o+X2×a;
[0284] (1) The meaning and values of parameters “o” and “a” in the above formula (“o” represents the reference signal type, and “a” represents whether the cell is configured with AO-SSB):
[0285] When the terminal measures the first reference signal to obtain the first CSI, parameter “o” = 0;
[0286] When the terminal measures the first reference signal and the second reference signal to obtain the first CSI, the parameter “o” = 1;
[0287] When the terminal measures the second reference signal to obtain the first CSI, the parameter “o” = 2;
[0288] When the serving cell is not configured with AO-SSB, parameter "a" = 0;
[0289] When the serving cell is configured with AO-SSB, parameter "a" = 1.
[0290] (2) For non-periodic first CSI reporting information carried through PUSCH, y = 0; for semi-persistent (first) CSI reporting information carried through PUSCH, y = 1; for semi-persistent (first) CSI reporting information carried through PUCCH, y = 2; for periodic (first) CSI reporting information carried through PUCCH, y = 3.
[0291] (3) For the first CSI report carrying L1-RSRP or L1-SINR, k = 0; for the first CSI report not carrying L1-RSRP and L1-SINR, k = 1;
[0292] (4)N cells It is the value of the higher-level parameter maxNrofServingCells;
[0293] (5) For CSI reporting associated with the first reference signal:
[0294] c is the serving cell index number where the CSI reportconfig associated with the first reference signal is located;
[0295] s is the CSI-ReportConfigID (corresponding value) associated with the first reference signal;
[0296] M s It is the maximum number of CSI-ReportConfigurations associated with the first reference signal in the higher-level configuration.
[0297] (6) For CSI reporting associated with the second reference signal:
[0298] c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located;
[0299] s is the CSI-ReportConfigID associated with the second reference signal;
[0300] M s It is the maximum number of CSI-ReportConfigurations associated with the second reference signal in the higher-level configuration.
[0301] (7) For CSI reporting associated with the first reference signal and the second reference signal:
[0302] c is the serving cell index number where the CSI reportconfig associated with the first and second reference signals is located;
[0303] s is the CSI-ReportConfigID associated with the first reference signal and the second reference signal;
[0304] M s It is the maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured at higher levels.
[0305] As shown in Figure 9, the terminal is configured with two serving cells, namely serving cell 0 and serving cell 1, each corresponding to a carrier. Serving cell 0 is configured with an AO-SSB, while serving cell 1 is not. For serving cell 1, which lacks an AO-SSB, the OD-SSB in this serving cell becomes more important due to the absence of an AO-SSB, and therefore its reporting priority is higher than that of the OD-SSB in serving cell 0, which is configured with an AO-SSB. The above formula introduces a separate parameter "a" to indicate whether the serving cell is configured with an AO-SSB.
[0306] In this configuration, the 0th reporting configuration of serving cell 0 includes an AO-SSB, which reports periodically, providing the L1-RSRP measured by the AO-SSB. The 2nd reporting configuration of serving cell 0 includes an OD-SSB, which reports semi-continuously, providing the L1-SINR measured by the OD-SSB. Similarly, the 0th reporting configuration of serving cell 1 includes an OD-SSB, also reporting periodically, providing the L1-RSRP measured by the OD-SSB. Taking an example where the first reference signal is an on-demand SSB (OD-SSB) and the second reference signal is a normally open SSB (AO-SSB), the 0th reporting configuration of serving cell 1 has the lowest CSI reporting priority value calculated using the above formula, resulting in the highest reporting priority. This is because serving cell 0 has an AO-SSB, serving cell 1 does not have an OD-SSB, and the 0th reporting configuration of serving cell 1 includes an OD-SSB. In the 2nd reporting configuration of serving cell 0, OD-SSB is configured. According to the formula above, its CSI reporting priority value is the second smallest, and its reporting priority is the second highest. Conversely, in the 0th reporting configuration of serving cell 0, the CSI reporting priority value is the largest, and its reporting priority is the lowest. Therefore, the priority order of these three reporting configurations from highest to lowest is: the priority of the 0th reporting configuration in serving cell 1, the priority of the 2nd reporting configuration in serving cell 0, and the priority of the 0th reporting configuration in serving cell 0.
[0307] Specifically, the overall priority order calculated according to the above formula is shown in the circled numbers in Figure 9. The smaller the number in the circle, the higher the priority. The highest priority is the 0th reporting configuration in the 1st serving cell (the number in the circle is 1), followed by the 2nd reporting configuration in the 0th serving cell (the number in the circle is 2), and the lowest priority is the 0th reporting configuration in the 0th serving cell (the number in the circle is 6).
[0308] As described above, this method introduces two parameters, o and a, into the priority value calculation formula. These parameters represent whether the CSI is associated with the on-demand reference signal and whether the serving cell is configured with an AO-SSB, respectively. This allows for flexible determination of the priority of measurement result reporting based on whether the serving cell is configured with an AO-SSB and whether it contains an on-demand reference signal. This ensures that the terminal can prioritize reporting measurement results associated with the on-demand reference signal to the base station as soon as possible, so as to complete operations such as secondary cell activation as quickly as possible.
[0309] It should be noted that the relevant content of the above embodiments can be referred to each other, and the repeated parts will not be described again.
[0310] Therefore, this disclosure provides a method for calculating the priority value of on-demand reference signal measurement information reporting, including: a terminal measuring a reference signal to obtain a first CSI; the terminal calculating a first priority value associated with the first CSI reporting information based on first information; and the terminal determining whether to report or delete the first CSI reporting information based on the first priority value. The first information may include: the type of reference signal on which the first CSI measurement reporting is based, whether the first CSI measurement reporting is based on on-demand reference signal measurement, and whether the reporting parameters or configuration of the first CSI include at least one of the following information: on-demand reference signal. Using this method, the terminal can calculate and compare the priority values of reporting measurement results for on-demand and non-on-demand reference signals, and determine the reporting priority of the measurement results. This solves the problem of which measurement result the terminal should report when on-demand and non-on-demand reference signals are measured simultaneously, and also reduces the energy consumption of the base station and the terminal.
[0311] This disclosure also provides an information processing device, which is a terminal, as shown in FIG10, including a memory 101, a transceiver 102, and a processor 103.
[0312] Memory 101 is used to store computer programs; transceiver 102 is used to send and receive data under the control of processor 103; processor 103 is used to read the computer programs in memory 101 and perform the following operations:
[0313] Based on the first information, determine the priority value of the Channel State Information (CSI) reporting information; the first information includes at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurements, and the signal type used to obtain the reference signal for the CSI reporting information;
[0314] The processing method for the CSI reported information is determined based on the priority value.
[0315] The information processing device provided in this embodiment determines the priority value of Channel State Information (CSI) reporting information based on first information. The first information includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations of on-demand reference signals; whether the CSI reporting information is obtained based on on-demand reference signal measurement; and the signal type used to obtain the reference signal for the CSI reporting information. Based on the priority value, the processing method of the CSI reporting information is determined. This device can support explicit processing methods for CSI reporting information, thereby facilitating the implementation of relevant processing schemes for CSI reporting information and improving the accuracy of relevant schemes. In addition, it can also support the implementation of relevant schemes for measurement and reporting when on-demand reference signals are present, thereby ensuring the execution of on-demand reference signal-related schemes, reducing the energy consumption of terminal and network-side devices, and effectively solving the problem that relevant processing schemes for CSI reporting information are difficult to implement in related technologies.
[0316] Specifically, transceiver 102 is used to receive and send data under the control of processor 103.
[0317] In Figure 10, the bus architecture can include any number of interconnected buses and bridges, specifically linking various circuits of one or more processors represented by processor 103 and memory represented by memory 101. The bus architecture can also link various other circuits such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art and therefore will not be described further herein. The bus interface provides an interface. Transceiver 102 can be multiple components, including transmitters and receivers, providing a unit for communicating with various other devices over transmission media, including wireless channels, wired channels, optical fibers, etc. For different user equipment, user interface 104 can also be an interface capable of connecting external or internal devices, including but not limited to keypads, displays, speakers, microphones, joysticks, etc.
[0318] The processor 103 is responsible for managing the bus architecture and general processing, and the memory 101 can store the data used by the processor 103 when performing operations.
[0319] In some embodiments, the processor 103 may be a central processing unit (CPU), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or a complex programmable logic device (CPLD), and the processor may also adopt a multi-core architecture.
[0320] The processor executes any of the methods described in the embodiments of this disclosure by invoking a computer program stored in memory, according to the obtained executable instructions. The processor and memory may also be physically separated.
[0321] The signal type includes at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission.
[0322] In this embodiment of the disclosure, the first type of reference signal includes at least one of: on-demand synchronization signal block SSB, on-demand channel state information reference signal CSI-RS, and on-demand tracking reference signal TRS; and / or, the second type of reference signal includes at least one of: periodic SSB, normally open SSB, periodic CSI-RS, semi-persistent CSI-RS, aperiodic CSI-RS, periodic TRS, semi-persistent TRS, and aperiodic TRS.
[0323] The smaller the priority value of the CSI reporting information, the higher the reporting priority of the CSI reporting information.
[0324] In this embodiment of the disclosure, determining the processing method of the CSI reporting information based on the priority value includes: determining whether to report the CSI reporting information or to delete the CSI reporting information based on the priority value.
[0325] The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: determining the priority value of the CSI reporting information based on the first information using a first formula; wherein the first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0326] Or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0327] or,
[0328] Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; where...
[0329] Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum value of the number of CSI report configurations associated with the reference signal configured by the higher layer; o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number.
[0330] In this embodiment of the present disclosure, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal is the second type of non-on-demand transmission, o takes the value 1; or, (2) when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes both the first and second types, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; or, (3) when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes both the first and second types, o takes the value 2; when the signal type of the reference signal is the second type, o takes the value 3.
[0331] The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: determining the priority value of the CSI reporting information based on the first information using a second formula; wherein the second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0332] Or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0333] or,
[0334] Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a; where...
[0335] Pri iCSI (o,y,k,c,s,a) represents the priority value; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by s; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is configured; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers.
[0336] In this embodiment of the disclosure, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; and / or, (2) when the cell is not configured with AO-SSB, a takes the value 0; when the cell is configured with AO-SSB, a takes the value 1.
[0337] Wherein, (1) when the CSI reporting information is carried by the Physical Uplink Shared Channel (PUSCH) for non-periodic reporting, y = 0; when the CSI reporting information is carried by the PUSCH for semi-persistent reporting, y = 1; when the CSI reporting information is carried by the Physical Uplink Control Channel (PUCCH) for semi-persistent reporting, y = 2; when the CSI reporting information is carried by the PUCCH for periodic reporting, y = 3; and / or, (2) when the first CSI reporting information includes Layer 1 Reference Signal Received Power (L1-RSRP) or Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; when the first CSI reporting information does not include L1-RSRP and L1-SINR, k = 1.
[0338] In this embodiment of the disclosure, the cell is either a serving cell or a measurement cell.
[0339] Wherein, the N cells The value is a higher-level parameter; the higher-level parameter is the maximum number of serving cells, maxNrofServingCells.
[0340] In this embodiment of the disclosure, (1) when the signal type of the reference signal is a first type of on-demand transmission: 1) c is the serving cell index number where the channel state information report configuration (CSI reportconfig) associated with the first reference signal is located; the first reference signal is the reference signal of the first type; 2) s is the value corresponding to the channel state information report configuration identifier (CSI-ReportConfigID) associated with the first reference signal; 3) M s Configure the maximum number of CSI-ReportConfigurations for the channel state information reports associated with the first reference signal configured by the higher layers;
[0341] And / or, (2) in the case that the signal type of the reference signal is a second type of non-on-demand transmission: 1) c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located; the second reference signal is the reference signal of the second type; 2) s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the second reference signal configured for higher layers;
[0342] And / or, (3) when the signal type of the reference signal includes the first type and the second type: 1) c is the serving cell index number where the CSI reportconfig associated with the first reference signal and the second reference signal is located; 2) s is the value corresponding to the CSI-ReportConfigID associated with the first reference signal and the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured for higher layers.
[0343] It should be noted that the device provided in this embodiment can implement all the method steps implemented in the above terminal-side method embodiment and can achieve the same technical effect. Therefore, the parts and beneficial effects that are the same as those in the method embodiment will not be described in detail here.
[0344] This disclosure also provides an information processing device, which is a network-side device, as shown in FIG11, including a memory 111, a transceiver 112, and a processor 113.
[0345] Memory 111 is used to store computer programs; transceiver 112 is used to send and receive data under the control of processor 113; processor 113 is used to read the computer program in memory 111 and perform the following operations:
[0346] The transceiver 112 receives CSI reporting information sent by the receiving terminal according to the priority value of the CSI reporting information; wherein the priority value is determined based on first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
[0347] The information processing device provided in this embodiment receives CSI reporting information sent by a terminal according to a priority value of the CSI reporting information. The priority value is determined based on first information, which includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations for on-demand reference signals; whether the CSI reporting information is obtained based on on-demand reference signal measurements; and the signal type used to obtain the reference signal for the CSI reporting information. This device supports solutions for enabling terminals to explicitly process CSI reporting information, thereby facilitating the implementation of relevant processing solutions and improving the accuracy of related solutions. Furthermore, it supports solutions for measurement and reporting when on-demand reference signals are present, ensuring the execution of on-demand reference signal-related solutions, reducing energy consumption of terminals and network-side devices, and effectively solving the problem of difficulty in implementing relevant processing solutions for CSI reporting information in related technologies.
[0348] Specifically, transceiver 112 is used to receive and send data under the control of processor 113.
[0349] In Figure 11, the bus architecture may include any number of interconnected buses and bridges, specifically linking various circuits of one or more processors represented by processor 113 and memory represented by memory 111. The bus architecture may also link various other circuits such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art and therefore will not be described further herein. The bus interface provides an interface. The transceiver 112 may be multiple elements, including a transmitter and a receiver, providing a unit for communicating with various other devices over a transmission medium, including wireless channels, wired channels, optical fibers, etc. Processor 113 is responsible for managing the bus architecture and general processing, and memory 111 may store data used by processor 113 during operation.
[0350] The processor 113 may be a central processing unit (CPU), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or a complex programmable logic device (CPLD). The processor may also adopt a multi-core architecture.
[0351] The signal type includes at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission.
[0352] In this embodiment of the disclosure, the first type of reference signal includes at least one of: on-demand synchronization signal block SSB, on-demand channel state information reference signal CSI-RS, and on-demand tracking reference signal TRS; and / or, the second type of reference signal includes at least one of: periodic SSB, normally open SSB, periodic CSI-RS, semi-persistent CSI-RS, aperiodic CSI-RS, periodic TRS, semi-persistent TRS, and aperiodic TRS.
[0353] The smaller the priority value of the CSI reporting information, the higher the reporting priority of the CSI reporting information.
[0354] In this embodiment of the disclosure, the priority value is determined by the terminal using a first formula and based on first information; wherein, the first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0355] Or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0356] or,
[0357] Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; where...
[0358] Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M sThe maximum value of the number of CSI report configurations associated with the reference signal configured by the higher layer; o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number.
[0359] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal is the second type of non-on-demand transmission, o takes the value 1; or, (2) when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes the first type and the second type, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; or, (3) when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes the first type and the second type, o takes the value 2; when the signal type of the reference signal is the second type, o takes the value 3.
[0360] In this embodiment of the disclosure, the priority value is determined by the terminal based on the first information using a second formula; wherein, the second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0361] Or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0362] Or, Pri iCSI (o,y,k,c,s,a)=2×N cells×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a; where, Pri iCSI (o,y,k,c,s,a) represents the priority value; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by s; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is configured; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers.
[0363] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; and / or, (2) when the cell is not configured with AO-SSB, a takes the value 0; when the cell is configured with AO-SSB, a takes the value 1.
[0364] In this embodiment of the present disclosure, (1) when the CSI reporting information is carried by the Physical Uplink Shared Channel (PUSCH) for non-periodic reporting, y = 0; when the CSI reporting information is carried by the PUSCH for semi-persistent reporting, y = 1; when the CSI reporting information is carried by the Physical Uplink Control Channel (PUCCH) for semi-persistent reporting, y = 2; when the CSI reporting information is carried by the PUCCH for periodic reporting, y = 3; and / or, (2) when the first CSI reporting information includes Layer 1 Reference Signal Received Power (L1-RSRP) or Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; when the first CSI reporting information does not include L1-RSRP and L1-SINR, k = 1.
[0365] The cell in question is either a serving cell or a measurement cell.
[0366] In this embodiment of the disclosure, the N cells The value is a higher-level parameter; the higher-level parameter is the maximum number of serving cells, maxNrofServingCells.
[0367] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission: 1) c is the serving cell index number where the channel state information report configuration (CSI reportconfig) associated with the first reference signal is located; the first reference signal is the reference signal of the first type; 2) s is the value corresponding to the channel state information report configuration identifier (CSI-ReportConfigID) associated with the first reference signal; 3) M s Configure the maximum number of CSI-ReportConfigurations for the channel state information reports associated with the first reference signal configured by the higher layers;
[0368] And / or, (2) in the case that the signal type of the reference signal is a second type of non-on-demand transmission: 1) c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located; the second reference signal is the reference signal of the second type; 2) s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the second reference signal configured for higher layers;
[0369] And / or, (3) when the signal type of the reference signal includes the first type and the second type: 1) c is the serving cell index number where the CSI reportconfig associated with the first reference signal and the second reference signal is located; 2) s is the value corresponding to the CSI-ReportConfigID associated with the first reference signal and the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured for higher layers.
[0370] It should be noted that the device provided in this embodiment can implement all the method steps implemented in the above network-side device-side method embodiment and can achieve the same technical effect. Therefore, the parts and beneficial effects that are the same as those in the method embodiment will not be described in detail here.
[0371] This disclosure also provides an information processing device applied to a terminal, as shown in FIG12, including:
[0372] The first determining unit 121 is used to determine the priority value of the Channel State Information (CSI) reporting information based on the first information; the first information includes at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configuration of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
[0373] The second determining unit 122 is used to determine the processing method of the CSI reporting information based on the priority value.
[0374] The information processing device provided in this embodiment determines the priority value of Channel State Information (CSI) reporting information based on first information. The first information includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations of on-demand reference signals; whether the CSI reporting information is obtained based on on-demand reference signal measurement; and the signal type used to obtain the reference signal for the CSI reporting information. Based on the priority value, the processing method of the CSI reporting information is determined. This device can support explicit processing methods for CSI reporting information, thereby facilitating the implementation of relevant processing schemes for CSI reporting information and improving the accuracy of relevant schemes. In addition, it can also support the implementation of relevant schemes for measurement and reporting when on-demand reference signals are present, thereby ensuring the execution of on-demand reference signal-related schemes, reducing the energy consumption of terminal and network-side equipment, and effectively solving the problem that relevant processing schemes for CSI reporting information are difficult to implement in related technologies.
[0375] The signal type includes at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission.
[0376] In this embodiment of the disclosure, the first type of reference signal includes at least one of: on-demand synchronization signal block SSB, on-demand channel state information reference signal CSI-RS, and on-demand tracking reference signal TRS; and / or, the second type of reference signal includes at least one of: periodic SSB, normally open SSB, periodic CSI-RS, semi-persistent CSI-RS, aperiodic CSI-RS, periodic TRS, semi-persistent TRS, and aperiodic TRS.
[0377] The smaller the priority value of the CSI reporting information, the higher the reporting priority of the CSI reporting information.
[0378] In this embodiment of the disclosure, determining the processing method of the CSI reporting information based on the priority value includes: determining whether to report the CSI reporting information or to delete the CSI reporting information based on the priority value.
[0379] The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: determining the priority value of the CSI reporting information based on the first information using a first formula; wherein the first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s;
[0380] Or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0381] or,
[0382] Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; where...
[0383] Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum value of the number of CSI report configurations associated with the reference signal configured by the higher layer; o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number.
[0384] In this embodiment of the present disclosure, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal is the second type of non-on-demand transmission, o takes the value 1; or, (2) when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes both the first and second types, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; or, (3) when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes both the first and second types, o takes the value 2; when the signal type of the reference signal is the second type, o takes the value 3.
[0385] The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: determining the priority value of the CSI reporting information based on the first information using a second formula; wherein the second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0386] Or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0387] or,
[0388] Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a; where...
[0389] Pri iCSI (o,y,k,c,s,a) represents the priority value; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by s; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is configured; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers.
[0390] In this embodiment of the disclosure, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; and / or, (2) when the cell is not configured with AO-SSB, a takes the value 0; when the cell is configured with AO-SSB, a takes the value 1.
[0391] Wherein, (1) when the CSI reporting information is carried by the Physical Uplink Shared Channel (PUSCH) for non-periodic reporting, y = 0; when the CSI reporting information is carried by the PUSCH for semi-persistent reporting, y = 1; when the CSI reporting information is carried by the Physical Uplink Control Channel (PUCCH) for semi-persistent reporting, y = 2; when the CSI reporting information is carried by the PUCCH for periodic reporting, y = 3; and / or, (2) when the first CSI reporting information includes Layer 1 Reference Signal Received Power (L1-RSRP) or Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; when the first CSI reporting information does not include L1-RSRP and L1-SINR, k = 1.
[0392] In this embodiment of the disclosure, the cell is either a serving cell or a measurement cell.
[0393] Wherein, the N cells The value is a higher-level parameter; the higher-level parameter is the maximum number of serving cells, maxNrofServingCells.
[0394] In this embodiment of the disclosure, (1) when the signal type of the reference signal is a first type of on-demand transmission: 1) c is the serving cell index number where the channel state information report configuration (CSI reportconfig) associated with the first reference signal is located; the first reference signal is the reference signal of the first type; 2) s is the value corresponding to the channel state information report configuration identifier (CSI-ReportConfigID) associated with the first reference signal; 3) M s Configure the maximum number of CSI-ReportConfigurations for the channel state information reports associated with the first reference signal configured by the higher layers;
[0395] And / or, (2) in the case that the signal type of the reference signal is a second type of non-on-demand transmission: 1) c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located; the second reference signal is the reference signal of the second type; 2) s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the second reference signal configured for higher layers;
[0396] And / or, (3) when the signal type of the reference signal includes the first type and the second type: 1) c is the serving cell index number where the CSI reportconfig associated with the first reference signal and the second reference signal is located; 2) s is the value corresponding to the CSI-ReportConfigID associated with the first reference signal and the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured for higher layers.
[0397] It should be noted that the apparatus provided in this embodiment can implement all the method steps implemented in the above terminal-side method embodiment and achieve the same technical effect. Therefore, the parts and beneficial effects that are the same as those in the method embodiment will not be described in detail here.
[0398] This disclosure also provides an information processing apparatus, applied to a network-side device, as shown in FIG13, including:
[0399] The first receiving unit 131 is configured to receive CSI reporting information sent by the terminal according to the priority value of the CSI reporting information; wherein the priority value is determined according to first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information includes parameters or configuration of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
[0400] The information processing device provided in this embodiment receives CSI reporting information sent by a terminal according to a priority value of the CSI reporting information. The priority value is determined based on first information, which includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations for on-demand reference signals; whether the CSI reporting information is obtained based on on-demand reference signal measurements; and the signal type used to obtain the reference signal for the CSI reporting information. This device supports solutions for enabling terminals to explicitly process CSI reporting information, thereby facilitating the implementation of relevant processing solutions and improving the accuracy of related solutions. Furthermore, it supports solutions for measurement and reporting when on-demand reference signals are present, ensuring the execution of on-demand reference signal-related solutions, reducing energy consumption of terminals and network-side devices, and effectively solving the problem of difficulty in implementing relevant processing solutions for CSI reporting information in related technologies.
[0401] The signal type includes at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission.
[0402] In this embodiment of the disclosure, the first type of reference signal includes at least one of: on-demand synchronization signal block SSB, on-demand channel state information reference signal CSI-RS, and on-demand tracking reference signal TRS; and / or, the second type of reference signal includes at least one of: periodic SSB, normally open SSB, periodic CSI-RS, semi-persistent CSI-RS, aperiodic CSI-RS, periodic TRS, semi-persistent TRS, and aperiodic TRS.
[0403] The smaller the priority value of the CSI reporting information, the higher the reporting priority of the CSI reporting information.
[0404] In this embodiment of the disclosure, the priority value is determined by the terminal using a first formula and based on first information; wherein, the first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×Ms ×y+N cells ×M s ×k+M s ×c+s;
[0405] Or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o;
[0406] or,
[0407] Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; where...
[0408] Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum value of the number of CSI report configurations associated with the reference signal configured by the higher layer; o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number.
[0409] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal is the second type of non-on-demand transmission, o takes the value 1; or, (2) when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes the first type and the second type, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; or, (3) when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes the first type and the second type, o takes the value 2; when the signal type of the reference signal is the second type, o takes the value 3.
[0410] In this embodiment of the disclosure, the priority value is determined by the terminal based on the first information using a second formula; wherein, the second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a;
[0411] Or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a;
[0412] or,
[0413] Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a; where...
[0414] Pri iCSI(o,y,k,c,s,a) represents the priority value; Ncells represents the maximum number of cells configured by the network-side equipment; Ms represents the maximum number of CSI report configurations associated with the reference signal configured by the higher layers; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is configured; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers.
[0415] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2; and / or, (2) when the cell is not configured with AO-SSB, a takes the value 0; when the cell is configured with AO-SSB, a takes the value 1.
[0416] In this embodiment of the present disclosure, (1) when the CSI reporting information is carried by the Physical Uplink Shared Channel (PUSCH) for non-periodic reporting, y = 0; when the CSI reporting information is carried by the PUSCH for semi-persistent reporting, y = 1; when the CSI reporting information is carried by the Physical Uplink Control Channel (PUCCH) for semi-persistent reporting, y = 2; when the CSI reporting information is carried by the PUCCH for periodic reporting, y = 3; and / or, (2) when the first CSI reporting information includes Layer 1 Reference Signal Received Power (L1-RSRP) or Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; when the first CSI reporting information does not include L1-RSRP and L1-SINR, k = 1.
[0417] The cell in question is either a serving cell or a measurement cell.
[0418] In this embodiment of the disclosure, the N cells The value is a higher-level parameter; the higher-level parameter is the maximum number of serving cells, maxNrofServingCells.
[0419] Wherein, (1) when the signal type of the reference signal is the first type of on-demand transmission: 1) c is the serving cell index number where the channel state information report configuration (CSI reportconfig) associated with the first reference signal is located; the first reference signal is the reference signal of the first type; 2) s is the value corresponding to the channel state information report configuration identifier (CSI-ReportConfigID) associated with the first reference signal; 3) M s Configure the maximum number of CSI-ReportConfigurations for the channel state information reports associated with the first reference signal configured by the higher layers;
[0420] And / or, (2) in the case that the signal type of the reference signal is a second type of non-on-demand transmission: 1) c is the serving cell index number where the CSI reportconfig associated with the second reference signal is located; the second reference signal is the reference signal of the second type; 2) s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the second reference signal configured for higher layers;
[0421] And / or, (3) when the signal type of the reference signal includes the first type and the second type: 1) c is the serving cell index number where the CSI reportconfig associated with the first reference signal and the second reference signal is located; 2) s is the value corresponding to the CSI-ReportConfigID associated with the first reference signal and the second reference signal; 3) M s The maximum number of CSI-ReportConfigurations associated with the first and second reference signals configured for higher layers.
[0422] It should be noted that the apparatus provided in this embodiment can implement all the method steps implemented in the above network-side device-side method embodiment and can achieve the same technical effect. Therefore, the parts and beneficial effects that are the same as those in the method embodiment will not be described in detail here.
[0423] It should be noted that the division of units in the embodiments of this disclosure is illustrative and only represents one logical functional division. In actual implementation, other division methods may be used. Furthermore, the functional units in the various embodiments of this disclosure can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated units described above can be implemented in hardware or as software functional units.
[0424] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a processor-readable storage medium. Based on this understanding, the technical solution of this disclosure, in essence, or the part that contributes to related technologies, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) or processor to execute all or part of the steps of the methods described in the various embodiments of this disclosure. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0425] This disclosure also provides a non-transitory readable storage medium storing a program for causing a processor to execute the aforementioned terminal-side or network-side device-side information processing method.
[0426] The non-transiently readable storage medium can be any available medium or data storage device that the processor can access, including but not limited to magnetic memory (e.g., floppy disk, hard disk, magnetic tape, magneto-optical disk (MO)), optical memory (e.g., compact disc (CD), digital video disc (DVD), Blu-ray disc (BD), high-definition versatile disc (HVD)), and semiconductor memory (e.g., ROM, erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), non-volatile memory (NAND (Non-volatile Memory Device) FLASH), solid state hard disk (SSD)).
[0427] The aforementioned implementation embodiments of the information processing methods on the terminal side or network side are all applicable to the embodiments of the non-transiently readable storage medium and can achieve the same technical effect.
[0428] Those skilled in the art will understand that embodiments of this disclosure can be provided as methods, systems, or computer program products. Therefore, this disclosure can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this disclosure can take the form of a computer program product embodied on one or more computer-usable storage media (including, but not limited to, disk storage and optical storage) containing computer-usable program code.
[0429] This disclosure is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of this disclosure. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer-executable instructions. These computer-executable instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, create means for implementing the functions specified in one or more flowchart illustrations and / or one or more block diagrams.
[0430] These processor-executable instructions may also be stored in a processor-readable memory that can instruct a computer or other programmable data processing device to operate in a particular manner, such that the instructions stored in the processor-readable memory produce an article of manufacture including instruction means that implement the functions specified in one or more flowcharts and / or one or more block diagrams.
[0431] These processor-executable instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer-implemented process, such that the instructions, which execute on the computer or other programmable apparatus, provide steps for implementing the functions specified in one or more flowcharts and / or one or more block diagrams.
[0432] Furthermore, it should be noted that in the apparatus and method of this disclosure, it is obvious that the components or steps can be decomposed and / or recombined. These decompositions and / or recombinations should be considered equivalent solutions of this disclosure. Moreover, the steps performing the above series of processes can naturally be executed in the order described, but are not necessarily required to be executed in chronological order; some steps can be executed in parallel or independently of each other. Those skilled in the art will understand that all or any step or component of the method and apparatus of this disclosure can be implemented in any computing device (including processors, storage media, etc.) or network of computing devices, in hardware, firmware, software, or a combination thereof, which can be achieved by those skilled in the art using their basic programming skills after reading the description of this disclosure.
[0433] It should be noted that the above division of modules is merely a logical functional division. In actual implementation, they can be fully or partially integrated into a single physical entity, or they can be physically separated. Furthermore, these modules can be implemented entirely in software via processing element calls; they can be fully implemented in hardware; or some modules can be implemented by processing element calls to software, while others are implemented in hardware. For example, a module can be a separate processing element, or it can be integrated into a chip in the aforementioned device. Alternatively, it can be stored as program code in the memory of the aforementioned device, and its function can be called and executed by a processing element of the device. The implementation of other modules is similar. Moreover, these modules can be fully or partially integrated together, or they can be implemented independently. The processing element mentioned here can be an integrated circuit with signal processing capabilities. In the implementation process, each step of the above method or each of the above modules can be completed through integrated logic circuits in the hardware of the processor element or through software instructions.
[0434] For example, each module, unit, subunit, or submodule can be one or more integrated circuits configured to implement the above methods, such as one or more application-specific integrated circuits (ASICs), one or more digital signal processors (DSPs), or one or more field-programmable gate arrays (FPGAs). As another example, when a module is implemented using processing element scheduler code, the processing element can be a general-purpose processor, such as a central processing unit (CPU) or other processor capable of calling program code. Furthermore, these modules can be integrated together to implement a system-on-a-chip (SOC).
[0435] The terms “first,” “second,” etc., used in this disclosure and in the claims are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of this disclosure described herein may be implemented in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus. Additionally, the use of “and / or” in the specification and claims indicates at least one of the connected objects, such as A and / or B and / or C, indicating seven possibilities: A alone, B alone, C alone, and both A and B, both B and C, both A and C, and A, B, and C. Similarly, the use of “at least one of A and B” in this specification and claims should be understood as “A alone, B alone, or both A and B.”
[0436] Obviously, those skilled in the art can make various modifications and variations to this disclosure without departing from its spirit and scope. Therefore, if such modifications and variations fall within the scope of the claims of this disclosure and their equivalents, this disclosure is also intended to include such modifications and variations.
Claims
1. An information processing method applied to a terminal, the information processing method comprising: Based on the first piece of information, determine the priority value of the Channel State Information (CSI) reporting information; The first information includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations for on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurements, and the signal type used to obtain the reference signal for the CSI reporting information; The processing method for the CSI reported information is determined based on the priority value.
2. The information processing method according to claim 1, wherein The signal types include at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission.
3. The information processing method according to claim 2, wherein The first type of reference signal includes at least one of: on-demand synchronization signal block SSB, on-demand channel state information reference signal CSI-RS, and on-demand tracking reference signal TRS; And / or, the reference signal of the second type includes at least one of: periodic SSB, normally open SSB, periodic CSI-RS, semi-continuous CSI-RS, aperiodic CSI-RS, periodic TRS, semi-continuous TRS, and aperiodic TRS.
4. The information processing method according to claim 1, wherein The smaller the priority value of the CSI reporting information, the higher the reporting priority of the CSI reporting information.
5. The information processing method according to claim 1 or 4, wherein The step of determining the processing method for the CSI reported information based on the priority value includes: Based on the priority value, determine whether to report the CSI report information or delete the CSI report information.
6. The information processing method according to claim 1, wherein The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: Based on the first formula and the first information, the priority value of the CSI reported information is determined. The first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s; or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o; or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; Among them, Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum value of the number of CSI report configurations associated with the reference signal configured by the higher layer; o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number.
7. The information processing method according to claim 6, wherein When the reference signal is of the first type of on-demand transmission, o takes the value 0; when the reference signal is of the second type of non-on-demand transmission, o takes the value 1. Alternatively, when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes both the first and second types, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2. Alternatively, when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes both the first and second types, o takes the value 2; and when the signal type of the reference signal is the second type, o takes the value 3.
8. The information processing method according to claim 1, wherein The step of determining the priority value of the Channel State Information (CSI) reporting information based on the first information includes: The priority value of the CSI reported information is determined using the second formula based on the first information. The second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a; or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a; or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a; Among them, Pri iCSI (o,y,k,c,s,a) represents the priority value; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by s; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is configured; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers.
9. The information processing method according to claim 8, wherein When the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2. And / or, if the cell is not configured with AO-SSB, a takes the value 0; if the cell is configured with AO-SSB, a takes the value 1.
10. The information processing method according to claim 6 or 8, wherein, When the CSI reporting information is carried aperiodically via the Physical Uplink Shared Channel (PUSCH), y = 0; when the CSI reporting information is carried semi-persistently via the PUSCH, y = 1; when the CSI reporting information is carried semi-persistently via the Physical Uplink Control Channel (PUCCH), y = 2; and when the CSI reporting information is carried periodically via the PUCCH, y = 3. And / or, if the first CSI reported information includes the Layer 1 Reference Signal Received Power (L1-RSRP) or the Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; if the first CSI reported information does not include L1-RSRP and L1-SINR, k = 1.
11. The information processing method according to claim 6 or 8, wherein The cell referred to is either a serving cell or a measurement cell.
12. The information processing method according to claim 6 or 8, wherein The N cells The value is a higher-level parameter; the higher-level parameter is the maximum number of serving cells, maxNrofServingCells.
13. The information processing method according to claim 6 or 8, wherein, In the case where the reference signal is of the first type, transmitted on demand: c is the serving cell index number where the Channel State Information Reporting (CSI) configuration associated with the first reference signal is located; the first reference signal is the reference signal of the first type; The value of s is the value corresponding to the Channel State Information Reporting Configuration Identifier (CSI-ReportConfigID) associated with the first reference signal; The M s Configure the maximum number of CSI-ReportConfigurations for the channel state information reports associated with the first reference signal configured by the higher layers; And / or, In the case where the reference signal is of the second type, which is not transmitted on demand: c is the serving cell index number of the CSI reportconfig associated with the second reference signal; the second reference signal is the reference signal of the second type. The s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; The M s The maximum number of CSI-ReportConfigurations associated with the second reference signal configured for higher layers; And / or, When the signal type of the reference signal includes the first type and the second type: c is the serving cell index number of the CSI reportconfig associated with the first reference signal and the second reference signal; The value of s is the CSI-ReportConfigID associated with the first reference signal and the second reference signal; The M s a maximum number of CSI-ReportConfigurations configured for the higher layer associated with the first and second reference signals.
14. An information processing method applied to a network-side device, the information processing method comprising: The receiving terminal sends CSI reporting information based on the priority value of the CSI reporting information; wherein the priority value is determined based on first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
15. The information processing method according to claim 14, wherein The signal types include at least one of the following: a first type of on-demand transmission and a second type of non-on-demand transmission.
16. The information processing method according to claim 15, wherein The first type of reference signal includes at least one of: on-demand synchronization signal block SSB, on-demand channel state information reference signal CSI-RS, and on-demand tracking reference signal TRS; And / or, the reference signal of the second type includes at least one of: periodic SSB, normally open SSB, periodic CSI-RS, semi-continuous CSI-RS, aperiodic CSI-RS, periodic TRS, semi-continuous TRS, and aperiodic TRS.
17. The information processing method according to claim 14, wherein The smaller the priority value of the CSI reporting information, the higher the reporting priority of the CSI reporting information.
18. The information processing method according to claim 14, wherein The priority value is determined by the terminal using a first formula and based on first information; The first formula is: Pri iCSI (o,y,k,c,s)=P×N cells ×M s ×o+2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s; or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o; or, Pri iCSI (o,y,k,c,s)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X×o; Among them, Pri iCSI (o,y,k,c,s) represents the priority value; P represents the adjustment factor, and P is a positive integer; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum value of the number of CSI report configurations associated with the reference signal configured by the higher layer; o represents the value corresponding to the first information; c represents the index number of the cell where the CSI report configuration associated with the reference signal is located; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; y and k represent adjustment parameters; X represents a coefficient, and X is a positive number.
19. The information processing method according to claim 18, wherein When the reference signal is of the first type of on-demand transmission, o takes the value 0; when the reference signal is of the second type of non-on-demand transmission, o takes the value 1. Alternatively, when the signal type of the reference signal is the first type, o takes the value 0; when the signal type of the reference signal includes both the first and second types, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2. Alternatively, when the signal type of the reference signal is the first type and the cell is not configured with a normally open synchronization signal block (AO-SSB), o takes the value 0; when the signal type of the reference signal is the first type and the cell is configured with an AO-SSB, o takes the value 1; when the signal type of the reference signal includes both the first and second types, o takes the value 2; and when the signal type of the reference signal is the second type, o takes the value 3.
20. The information processing method according to claim 14, wherein, The priority value is determined by the terminal using a second formula based on the first information; The second formula is: Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×N cells ×M s ×o+Q×N cells ×M s ×a; or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+P×M s ×o+Q×M s ×a; or, Pri iCSI (o,y,k,c,s,a)=2×N cells ×M s ×y+N cells ×M s ×k+M s ×c+s+X1×o+X2×a; Among them, Pri iCSI (o,y,k,c,s,a) represents the priority value; N cells Indicates the maximum number of cells that can be configured on the network-side equipment; M s The maximum number of CSI report configurations associated with the reference signal configured by the higher layer is represented by s; s represents the value corresponding to the CSI report configuration identifier associated with the reference signal; c represents the index number of the cell where the CSI report configuration associated with the reference signal is configured; P and Q represent adjustment factors, and both P and Q are positive integers; o represents the value corresponding to the first information; a represents whether the cell has configured the parameter value corresponding to AO-SSB; y and k represent adjustment parameters; X1 and X2 represent coefficients, and both X1 and X2 are positive numbers.
21. The information processing method according to claim 20, wherein When the signal type of the reference signal is the first type of on-demand transmission, o takes the value 0; when the signal type of the reference signal includes the first type and the second type of non-on-demand transmission, o takes the value 1; when the signal type of the reference signal is the second type, o takes the value 2. And / or, if the cell is not configured with AO-SSB, a takes the value 0; if the cell is configured with AO-SSB, a takes the value 1.
22. The information processing method according to claim 18 or 20, wherein, When the CSI reporting information is carried aperiodically via the Physical Uplink Shared Channel (PUSCH), y = 0; when the CSI reporting information is carried semi-persistently via the PUSCH, y = 1; when the CSI reporting information is carried semi-persistently via the Physical Uplink Control Channel (PUCCH), y = 2; and when the CSI reporting information is carried periodically via the PUCCH, y = 3. And / or, if the first CSI reported information includes the Layer 1 Reference Signal Received Power (L1-RSRP) or the Layer 1 Signal-to-Noise Ratio (L1-SINR), k = 0; if the first CSI reported information does not include L1-RSRP and L1-SINR, k = 1.
23. The information processing method according to claim 18 or 20, wherein The cell referred to is either a serving cell or a measurement cell.
24. The information processing method according to claim 18 or 20, wherein The N cells is a value of a higher layer parameter; the higher layer parameter is a maximum number of serving cells maxNrofServingCells.
25. The information processing method according to claim 18 or 20, wherein, In the case where the reference signal is of the first type, transmitted on demand: c is the serving cell index number where the Channel State Information Reporting (CSI) configuration associated with the first reference signal is located; the first reference signal is the reference signal of the first type; The value of s is the value corresponding to the Channel State Information Reporting Configuration Identifier (CSI-ReportConfigID) associated with the first reference signal; The M s configuring a maximum number of channel state information reports associated with the first reference signal for the higher layer; And / or, In the case where the reference signal is of the second type, which is not transmitted on demand: c is the serving cell index number of the CSI reportconfig associated with the second reference signal; the second reference signal is the reference signal of the second type. The s is the value corresponding to the CSI-ReportConfigID associated with the second reference signal; The M s maximum number of CSI-ReportConfigurations associated with the second reference signal configured for the higher layer; And / or, When the signal type of the reference signal includes the first type and the second type: c is the serving cell index number of the CSI reportconfig associated with the first reference signal and the second reference signal; The value of s is the CSI-ReportConfigID associated with the first reference signal and the second reference signal; The M s a maximum number of CSI-ReportConfigurations configured for higher layers associated with the first and second reference signals.
26. An information processing device, wherein the information processing device is a terminal, and the information processing device includes a memory, a transceiver, and a processor: a memory for storing the computer program; Transceiver, used to send and receive data under the control of the processor; A processor for reading a computer program from the memory and executing the information processing method according to any one of claims 1 to 13.
27. An information processing device, wherein the information processing device is a network-side device, the information processing device comprising a memory, a transceiver, and a processor: a memory for storing the computer program; Transceiver, used to send and receive data under the control of the processor; A processor for reading a computer program from the memory and executing the information processing method according to any one of claims 14 to 25.
28. An information processing apparatus applied to a terminal, the information processing apparatus comprising: The first determining unit is used to determine the priority value of the Channel State Information (CSI) reporting information based on the first information. The first information includes at least one of the following: whether the reporting parameters or configuration of the CSI reporting information include parameters or configurations for on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurements, and the signal type used to obtain the reference signal for the CSI reporting information; The second determining unit is used to determine the processing method of the CSI reported information based on the priority value.
29. An information processing apparatus, applied to a network-side device, the information processing apparatus comprising: The first receiving unit is configured to receive CSI reporting information sent by the terminal according to the priority value of the CSI reporting information; wherein the priority value is determined based on first information, the first information including at least one of the following: whether the reporting parameters or reporting configuration of the CSI reporting information include parameters or configurations of on-demand reference signals, whether the CSI reporting information is obtained based on on-demand reference signal measurement, and the signal type used to obtain the reference signal of the CSI reporting information.
30. A non-transitory readable storage medium storing a program for causing a processor to execute the information processing method according to any one of claims 1 to 25.