Information configuration method and device, terminal device, network device, storage medium, and product
By determining the transmission pattern based on the parameters of the first signal and configuring the transmission resources of the common signal, the problems of high energy consumption and low efficiency in the new air interface technology are solved, and energy-saving and efficient transmission of terminal equipment and network equipment are realized.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- CHINA MOBILE COMM LTD RES INST
- Filing Date
- 2025-09-30
- Publication Date
- 2026-04-30
AI Technical Summary
In new air interface technology, network devices and terminal devices need to periodically send or receive various public signals, resulting in high energy consumption and low transmission efficiency.
By determining the transmission pattern of the first signal by receiving its parameters, including frequency domain position, sequence value, coded bits, reference signal, etc., the transmission resources of the common signal are configured to achieve alignment of transmission status between terminal equipment and network equipment, and reduce invalid transmission and reception.
It improves transmission performance and efficiency, reduces the energy consumption of network and terminal devices, and enables deep sleep during periods of no transmission.
Smart Images

Figure CN2025125819_30042026_PF_FP_ABST
Abstract
Description
Information configuration methods, equipment, terminal equipment, network equipment, storage media and products
[0001] Cross-reference to related applications
[0002] This disclosure claims priority to Chinese Patent Application No. 202411497792.8, filed in China on October 25, 2024, the entire contents of which are incorporated herein by reference. Technical Field
[0003] This disclosure relates to the field of communications, and more particularly to an information configuration method, apparatus, terminal equipment, network equipment, storage medium, and product. Background Technology
[0004] In existing New Radio (NR) technology, network devices need to periodically send or receive data. These data can be collectively referred to as normally open signals. Normally open signals include common signals such as the Synchronization Signal / PBCH Block (SSB), Physical Random Access Channel (PRACH), System Information Block 1 (SIB1, also known as Remaining Minimum System Information (RMSI)), and paging. When network devices send or receive these common signals, the configuration of each common signal is relatively independent and dispersed in the time domain. Under this configuration, both network devices and terminal devices need to frequently send / receive various common signals, resulting in high overall energy consumption of network devices and terminal devices, as well as reduced transmission energy efficiency. Summary of the Invention
[0005] The purpose of this disclosure is to provide an information configuration method, device, terminal device, network device, storage medium, and product. The terminal device learns the transmission status of a common signal based on a first signal, enabling the terminal device and the network device to align on the transmission status of the common signal, thereby ensuring transmission performance and efficiency.
[0006] To achieve the above objectives, this disclosure provides an information configuration method applied to a terminal device, the method comprising:
[0007] Receive a first signal; determine a first transmission pattern of the first signal based on a first parameter of the first signal;
[0008] or;
[0009] Receive a first signal; determine the transmission resource configuration for the second information based on the first parameter of the first signal.
[0010] As an improvement to the above solution, the first parameter includes at least one of the following:
[0011] The frequency domain location of the first signal;
[0012] The sequence value carried by the first signal;
[0013] The encoded bits of the first signal;
[0014] A first reference signal, wherein the first reference signal is included in the first signal;
[0015] First indication information, which is included in the first signal.
[0016] As an improvement to the above scheme, the first transmission pattern includes the time-domain resource location and / or frequency-domain resource location of one or more transmission opportunities within the set of transmission opportunities corresponding to the first signal.
[0017] As an improvement to the above scheme, the first transmission pattern includes the actual transmission timing set among the N transmission timing sets of the first signal; N is an integer greater than or equal to 1.
[0018] As an improvement to the above scheme, the first transmission pattern includes the transmission period of the first signal, and / or the boundary of the transmission period of the first signal.
[0019] As an improvement to the above scheme, the first transmission pattern further includes the value of N, and / or the boundaries of the N first signal transmission cycles.
[0020] As an improvement to the above scheme, the first transmission pattern is predefined; or, the first signal includes second indication information, which indicates the first transmission pattern.
[0021] As an improvement to the above scheme, the first signal includes a first index, which is used to indicate the location of the first signal in the time domain and / or frequency domain resources in the first transmission pattern.
[0022] As an improvement to the above scheme, the first index indicates the set of transmission opportunities of the first signal in the first transmission pattern, and / or the time-domain resources and / or frequency-domain resources of the first signal in the corresponding set of transmission opportunities.
[0023] As an improvement to the above scheme, the transmission period of the first signal is a predefined value; or, the first signal includes third indication information, which indicates the transmission period of the first signal.
[0024] As an improvement to the above scheme, the boundary of the transmission period of the first signal is a predefined value; or, the first signal includes fourth indication information, which indicates the boundary of the transmission period of the first signal.
[0025] As an improvement to the above scheme, N is a predefined value; or, the first signal includes a fifth indication information, which indicates the value of N.
[0026] As an improvement to the above scheme, the boundaries of the N transmission cycles of the first signal are predefined values; or, the first signal includes a sixth indication information, which indicates the boundaries of the N transmission cycles of the first signal.
[0027] As an improvement to the above scheme, the first signal is at least one of the following: synchronization signal and PBCH block SSB, primary synchronization signal PSS, secondary synchronization signal SSS, physical broadcast channel PBCH, and low-power synchronization signal LP-SS.
[0028] As an improvement to the above solution, the method further includes:
[0029] Based on the first parameter, determine the transmission resource configuration for the second information.
[0030] As an improvement to the above solution, the second information includes at least one of the following:
[0031] A first control signal, which is used to schedule system information;
[0032] First system information;
[0033] First uplink signal;
[0034] First paging signal.
[0035] As an improvement to the above scheme, the second information is the first system information; the first system information includes a seventh indication information, which indicates the transmission resource configuration of the first uplink signal and / or the first paging signal.
[0036] As an improvement to the above scheme, the transmission resource configuration includes at least one of the following:
[0037] The start time unit of the second information transmission resource;
[0038] The second transmission pattern of the second information transmission resource.
[0039] As an improvement to the above scheme, the start time unit of the second information transmission resource is separated from the first transmission pattern by a first time interval.
[0040] Wherein, the first time interval is predefined, or the first signal includes an eighth indication information, the eighth indication information indicating the first time interval.
[0041] As an improvement to the above scheme, the second information is the first uplink signal and / or the first paging signal; the start time unit of the transmission resource of the first uplink signal and / or the first paging signal is separated from the first transmission resource by a second time interval; the first transmission resource is the transmission resource of the first control signal and / or the first system information.
[0042] Wherein, the second time interval is predefined, or the first system information includes a ninth indication information, which indicates the second time interval.
[0043] As an improvement to the above scheme, the second information is a first paging signal; the transmission period of the first paging signal includes N transmission opportunities; each of the N transmission opportunities corresponds to one of the M packets; N is less than or equal to M, and N and M are positive integers; the method further includes:
[0044] The start time unit of each of the M packets is determined according to the first transmission pattern and / or the first transmission resource.
[0045] As an improvement to the above scheme, the start time unit of each of the M groups is separated from the first transmission pattern and / or the first transmission resource by a third time interval; the first transmission resource is the transmission resource of the first control signal and / or the first system information.
[0046] Wherein, the third time interval is predefined, or the first system information includes tenth indication information, the tenth indication information indicating the third time interval.
[0047] As an improvement to the above scheme, the second information is a first paging signal, and the transmission cycle of the first paging signal includes N transmission opportunities.
[0048] Wherein, the time units in which the N transmission opportunities occur are the first N time units of each first paging signal transmission cycle, and N is a positive integer.
[0049] As an improvement to the above solution, the method further includes:
[0050] Receive third information; wherein the third information includes at least one of the following:
[0051] The cell identifier of the target measurement cell;
[0052] Does the target measurement cell support energy-saving mode?
[0053] The first transmission pattern of whether the target measurement cell is the first signal;
[0054] The target is to measure the energy-saving status of the residential area;
[0055] The transmission pattern of the first signal in the target measurement cell.
[0056] To achieve the above objectives, this disclosure also provides an information configuration method applied to a network device, the method comprising:
[0057] Send a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine a first transmission pattern of the first signal;
[0058] or,
[0059] Send a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine the transmission resource configuration of the second information.
[0060] As an improvement to the above scheme, the first transmission pattern includes at least one of the following information:
[0061] Within the set of transmission opportunities corresponding to the first signal, the time-domain resource location and / or frequency-domain resource location of one or more transmission opportunities;
[0062] The set of N transmission opportunities for the first signal is the set of actual transmission opportunities; N is an integer greater than or equal to 1.
[0063] The transmission period of the first signal, and / or the boundary of the transmission period of the first signal.
[0064] The value of N, and / or the boundaries of the N first signal transmission cycles.
[0065] As an improvement to the above scheme, the first signal includes at least one of the following information:
[0066] A first index, wherein the first index indicates the time-domain and / or frequency-domain resources of the first signal in the first transmission pattern;
[0067] The second instruction information indicates the first transmission pattern;
[0068] The third indication information indicates the transmission period of the first signal;
[0069] The fourth indication information indicates the boundary of the transmission period of the first signal.
[0070] As an improvement to the above scheme, the first signal includes:
[0071] The eighth indication information indicates a first time interval, which is the time interval between the start time unit of the second information transmission resource and the first transmission pattern; the second information includes at least one of the following:
[0072] A first control signal, which is used to schedule system information;
[0073] First system information;
[0074] First uplink signal;
[0075] First paging signal.
[0076] As an improvement to the above scheme, the first transmission pattern includes the actual transmission timing set among the N transmission timing sets of the first signal; N is an integer greater than or equal to 1.
[0077] The first signal includes at least one of the following information:
[0078] The fifth indication information indicates the value of N;
[0079] The sixth indication information indicates the boundary of the N transmission cycles of the first signal.
[0080] As an improvement to the above solution, the method further includes:
[0081] Send first system information, which includes at least one of the following:
[0082] The seventh indication information indicates the transmission resource configuration of the first uplink signal and / or the first paging signal;
[0083] The ninth indication information indicates a second time interval; the second time interval is the time interval between the start time unit of the first uplink signal and / or the first paging signal transmission resource and the first transmission resource.
[0084] The tenth indication information indicates a third time interval; the third time interval is the time interval between the start time unit of each of the M packets of the first paging signal and the first transmission pattern and / or the first transmission resource.
[0085] As an improvement to the above solution, the method further includes:
[0086] Send a third message; wherein the third message includes at least one of the following:
[0087] The cell identifier of the target measurement cell;
[0088] Does the target measurement cell support energy-saving mode?
[0089] The first transmission pattern of whether the target measurement cell is the first signal;
[0090] The target is to measure the energy-saving status of the residential area;
[0091] The transmission pattern of the first signal in the target measurement cell.
[0092] To achieve the above objectives, this disclosure also provides a terminal device, including:
[0093] A first signal receiving module is used to receive a first signal;
[0094] The first transmission pattern determination module is used to determine the first transmission pattern of the first signal based on the first parameters of the first signal.
[0095] To achieve the above objectives, this disclosure also provides a network device, including:
[0096] A first signal transmitting module is used to transmit a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine a first transmission pattern of the first signal.
[0097] To achieve the above objectives, this disclosure also provides an information configuration device, including a processor, a memory, and a computer program stored in the memory and configured to be executed by the processor. When the processor executes the computer program, it implements the information configuration method as described in any of the above embodiments.
[0098] To achieve the above objectives, embodiments of this disclosure also provide a computer-readable storage medium, the computer-readable storage medium including a stored computer program, wherein, when the computer program is executed, it controls the device where the computer-readable storage medium is located to perform the information configuration method as described in any of the above embodiments.
[0099] To achieve the above objectives, this disclosure also provides a computer program product, including computer instructions, which, when executed by a processor, implement the information configuration method as described in any of the above embodiments.
[0100] Compared with related technologies, the information configuration method, device, terminal device, network device, storage medium, and product disclosed in this disclosure, based on the characteristics of the first signal itself, instruct the terminal device to obtain the transmission pattern of the first signal, or whether the preceding cell is in an energy-saving state. Simultaneously, the terminal device can also obtain the transmission status of other public signals based on this instruction, enabling the terminal device and network device to align on the transmission status of public signals, ensuring transmission performance and efficiency. Furthermore, it allows the network device and terminal device to enter deep sleep during periods of no transmission, thereby reducing energy consumption and achieving joint energy saving for both network and terminal devices. Attached Figure Description
[0101] Figure 1 is a schematic diagram of typical common signal time-domain resource configuration on the network device side provided by related technologies;
[0102] Figure 2 is a schematic diagram of the transmission of common signals in this disclosure and related technologies;
[0103] Figure 3 is a flowchart of the first information configuration method provided in the embodiments of this disclosure;
[0104] Figure 4 is a schematic diagram of the transmission start position of the first signal provided in an embodiment of this disclosure;
[0105] Figure 5 is a schematic diagram of the first signal provided in the embodiments of this disclosure, which includes a first index.
[0106] Figure 6 is a schematic diagram of the transmission period of the first signal provided in an embodiment of this disclosure;
[0107] Figure 7 is a schematic diagram of the transmission of the first signal and the second signal provided in an embodiment of this disclosure;
[0108] Figure 8 is another flowchart of the first information configuration method provided in the embodiments of this disclosure;
[0109] Figure 9 is a schematic diagram of the division of the first time interval provided in an embodiment of this disclosure;
[0110] Figure 10 is a schematic diagram of the division of the second time interval provided in an embodiment of this disclosure;
[0111] Figure 11 is a schematic diagram of the transmission cycle of the first paging signal provided in an embodiment of this disclosure;
[0112] Figure 12 is a schematic diagram of the division of the start time unit of the first paging signal provided in an embodiment of this disclosure;
[0113] Figure 13 is a flowchart of a second information configuration method provided in an embodiment of this disclosure;
[0114] Figure 14 is a structural block diagram of the terminal device provided in an embodiment of this disclosure;
[0115] Figure 15 is a structural block diagram of the network device provided in an embodiment of this disclosure;
[0116] Figure 16 is a structural block diagram of the information configuration device provided in an embodiment of this disclosure. Detailed Implementation
[0117] 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 skilled in the art without creative effort are within the scope of protection of this disclosure.
[0118] Normally open signals in related technologies include common signals such as SSB, PRACH, SIB1, and Paging. To better illustrate the working principle of this disclosure, these four common signals will be briefly introduced.
[0119] 1) SSB
[0120] Terminal equipment uses SSBs for time / frequency / spatial synchronization, Automatic Gain Control (AGC) calibration (typically requiring reception of 2-3 SSBs), and system information reception (also known as SIB1). Specifically, after powering on, the terminal equipment first scans the frequency points that SSBs might transmit (i.e., the frequency domain position of the synchronization signal block) according to the synchronization grid, blindly detecting the SSB beam transmitted by the base station. SSBs include Primary Synchronization Signals (PSS), Secondary Synchronization Signals (SSS), and the Physical Broadcast Channel (PBCH) block. The PSS / SSS carries the physical identifier of the cell and can be used for time-domain, frequency-domain, and spatial-domain synchronization. The PBCH carries the Master Information Block (MIB, also known as the minimum system information (MSI)) to indicate the time-domain resource location of spatial information, timing information, some basic information of the cell, and control information for scheduling SIB1, such as the Physical Downlink Control Channel (PDCCH).
[0121] Based on the preset transmission pattern for the current frequency and the half-frame bits indicated in the MIB, the terminal device can complete timing synchronization. The preset transmission pattern indicates which Orthogonal Frequency Division Multiplexing (OFDM) symbols the SSB will transmit on within a half-frame. The preset transmission pattern for different frequencies is related to the serving frequency band (e.g., operating band) and subcarrier spacing. For example, for frequencies below 3 GHz, a maximum of four SSB indices exist within an SSB transmission opportunity (or SSB burst), starting with the 2nd, 8th, 16th, and 22nd OFDM symbols in the half-frame, respectively. For frequencies above 3 GHz and below 6 GHz, a maximum of eight SSB indices exist within an SSB transmission opportunity, starting with the 2nd, 8th, 16th, 22nd, 30th, 36th, 44th, and 50th OFDM symbols in the half-frame, respectively. Furthermore, during initial terminal access, the SSB transmission period is assumed to be 20 ms.
[0122] 2) SIB1
[0123] SIB1 (also known as RMSI) carries the main configuration information of the cell. In related technologies, SIB1 is generally broadcast periodically. SIB1 is scheduled by downlink control information (DCI) scrambled with System Information Radio Network Temporary Identity (SI-RNTI). The time and frequency domain locations of the Control Resource Set (CORESET) and Common Search Space (CSS) set resources corresponding to this DCI are indicated by MIB. The SSB's MIB includes the PDCCH-ConfigSIB1 field. The high 4 bits of this field indicate the time and frequency resources of the CORESET corresponding to the Type0-PDCCH CSS set. Specifically, the high 4 bits indicate 16 possible values, which can be found in existing protocols through table lookup. Similarly, the last 4 bits of PDCCH-configSIB1 indicate the timing of the time-domain detection corresponding to the Type0-PDCCH CSS set (CSS0), while the lower 4 bits indicate 16 possible values, which can be found in the existing protocol through a lookup table. Furthermore, SIB1 and its scheduling PDCCH are generally transmitted with a period of 20ms.
[0124] 3) PRACH
[0125] PRACH is an uplink common signal whose main functions are to initiate random access and complete uplink timing synchronization between different terminal devices. PRACH configuration is based on SIB1 indication. PRACH includes the fields prach-Configuration Index, msg1-Frequency Start, and msg1-FDM (Frequency Division Multiplexing). Among them, prach-Configuration Index indicates the time domain resource configuration of PRACH, and the specific configuration process can be obtained by querying existing protocols. msg1-FrequencyStart and msg1-FDM indicate the frequency domain starting position of PRACH resources and the number of frequency domain resources occupied, respectively.
[0126] 4) Paging
[0127] In related technologies, the main function of paging is to indicate to the terminal device that a data transmission service has arrived, thereby prompting the terminal device to enter the connected state. Simultaneously, paging information can also be used to notify changes in system information (e.g., SIB1). The relevant paging configuration is also indicated in SIB1, including the fields `default Paging Cycle` and `n And Paging Frame Offset`. `default Paging Cycle` indicates the paging cycle, and `n And Paging Frame Offset` indicates the density and corresponding offset of the radio frames containing the paging opportunity throughout the entire paging cycle. Taking a paging cycle of 128 RFs and an n And Paging Frame Offset configuration value of half T (a density representation, indicating half of the cycle) and 1 as an example, the radio frequency (RF) containing the paging opportunity is located in the 1st, 3rd, 5th..., 125th, and 127th radio frames of each paging cycle. The paging cycle is defined with SFN (System Frame Number) = 0 as the starting point, and the frequency domain position of the paging cycle is related to its associated search space and CORESET.
[0128] Based on the above introduction to each public signal, refer to Figure 1. Figure 1 is a schematic diagram of typical public signal time-domain resource configuration on the network device side provided by related technologies. The configuration of each public signal meets the following requirements: service frequency 4.9GHz; SSB period 20ms, with 8 indices in each period; CORESET0 indication is index 6, CSS0 indication is index 4, period 20ms; PRACH time-domain configuration is index 17, transmitted in the 4th and 9th time slots of 10ms; Paging period is 128 RFs, density is half T. Correspondingly, the process of the terminal device in the initial access is as follows:
[0129] 1. Based on synchronous grid search and detection of SSBs;
[0130] 2. Time / frequency / spatial synchronization is performed based on SSB to complete AGC calibration;
[0131] 3. Detect and schedule the PDCCH of SIB1 based on the indication information in SSB, and receive SIB1;
[0132] 4. Based on the PRACH and Paging configuration information in SIB1, receive the Paging scheduling PDCCH and send the PRACH signal.
[0133] Therefore, based on the foregoing introduction and typical configurations of public signals, it can be seen that in related technologies, the configurations of various public signals are relatively independent and dispersed in the time domain. Under this configuration, as shown in Figure 2a, network devices and terminal devices need to frequently send / receive various public signals, resulting in high overall energy consumption. To solve this technical problem, this disclosure provides an information configuration method that aggregates and sends various frequently occurring public signals. The improved public signal transmission is illustrated in Figure 2b. Based on this, network devices and terminal devices can enter deep sleep during periods without transmission, further reducing energy consumption.
[0134] Referring to Figure 3, which is a flowchart of a first information configuration method provided in this embodiment, the first information configuration method is implemented by a terminal device and includes:
[0135] S11, Receive the first signal;
[0136] S12. Determine the first transmission pattern of the first signal based on the first parameters of the first signal.
[0137] It is worth noting that the first signal is at least one of the following: Synchronization Signal Block (SSB), Primary Synchronization Signal (PSS), Secondary Synchronization Signal (SSS), Physical Broadcast Channel (PBCH), and Low-Power Synchronization Signal (LP-SS). The first parameter is used to determine the first transmission pattern; it can be understood as indicating an energy-saving state, which corresponds to the first transmission pattern. The first transmission pattern is a transmission pattern for the synchronization signal, and the first signal belongs to that synchronization signal.
[0138] In a first embodiment, the first parameter indicates that the first signal includes a first field, which indicates a first transmission pattern of the first signal; in other words, the first parameter is the first field. For example, the first parameter is a field in SSB / MIB, such as the PDCCH-ConfigSIB1 field mentioned above.
[0139] In the second embodiment, the first parameter is implicitly indicated, and in this case, the first parameter includes at least one of the following:
[0140] ① The frequency domain position of the first signal; for example, the first frequency point / set of first frequency points corresponding to the first signal; that is, when the terminal device detects or receives the first signal on the first frequency point / set of first frequency points, the first transmission pattern of the first signal is determined; for example, if the first signal is an SSB, then the frequency domain position is the frequency domain position of the SSB / a set of frequency points corresponding to the SSB, such as the first synchronization grid or the first signal grid.
[0141] ② The sequence carried by the first signal; for example, the first signal includes a first sequence, and the first pattern of the first signal is determined according to the sequence value / circular shift value of the first sequence (if it is a first value); for example, the first sequence is PSS and / or SSS; when the sequence value / circular shift value of PSS and / or SSS takes the first value, the first transmission pattern of the first signal is determined.
[0142] ③ The encoded bits of the first signal; for example, the first signal includes a first encoded bit, and the first transmission pattern of the first signal is determined according to the value of the first encoded bit (e.g., a second value); for example, if the first encoded bit is the payload bit of the PBCH of the SSB, then the terminal can determine the transmission pattern of the first signal by decoding the PBCH payload bit.
[0143] ④ A first reference signal, which is included in the first signal; for example, the first signal includes the first reference signal, and a first pattern of the first signal is determined based on the transmission resource location and / or the sequence value of the first reference signal; that is, the transmission pattern of the first signal is determined based on the time-domain and / or frequency-domain resource location of the transmission resource of the first reference signal, or based on the sequence value (e.g., a third value) of the first reference signal; for example, the reference signal is the demodulation reference signal (DM-RS) of PBCH, and the time-domain and / or frequency-domain resource location is the resource element (RE) location of PBCH DM-RS. In NR, a subcarrier in frequency and an OFDM symbol in time domain are called an RE location. Another example is that the reference signal is PBCH DM-RS, and the sequence value is the sequence value of PBCH DM-RS. The terminal can determine the transmission pattern of the first signal based on the RE location and / or the sequence value.
[0144] In this embodiment of the disclosure, the first transmission pattern has two possible indication meanings: the first is to indicate the start transmission time unit of the first signal in a transmission cycle, and the second is to indicate the usage of the transmission cycle of the first signal.
[0145] In a first embodiment, the first transmission pattern includes time-domain resource locations and / or frequency-domain resource locations of one or more transmission opportunities within the transmission opportunity set corresponding to the first signal.
[0146] For example, a transmission cycle may include a set of transmission opportunities, or it may include one or more transmission opportunities. The time unit of the transmission cycle may be an OFDM symbol, or it may be a time slot, subframe, frame, ms, s, etc. Referring to Figure 4, Figure 4 is a schematic diagram of the transmission start position of the first signal provided in an embodiment of this disclosure. The timeline in Figure 4 represents a time axis, in which there are multiple transmission cycles of the first signal. The first transmission pattern indicates the starting transmission time unit of one or more first signal transmission opportunities within a transmission cycle, as shown by the arrow in Figure 4, which is the starting transmission time unit of the first signal. This starting time unit may be an OFDM symbol, or it may be a time slot, radio frame, ms, s, etc.
[0147] In one possible implementation, the first transmission pattern is predefined; or, the first signal includes second indication information that indicates the first transmission pattern.
[0148] For example, the timing and location of the transmission of the first signal are predefined. For instance, the first signal may begin transmission on the 2nd, 8th, 16th, 22nd, 30th, 36th, 44th, or 50th OFDM symbol in a transmission cycle. Another example is that the transmission resources for each first signal include 4 OFDM symbols.
[0149] In one possible implementation, the first signal includes a first index, which indicates the location of the first signal in the time domain and / or frequency domain resources of the first transmission pattern.
[0150] For example, one or more first signals within a transmission cycle belong to one or more sets of first signals, and the first index indicates the index value of the set of first signals to which the first signal belongs. A set of first signals includes one or more first signals. Referring to Figure 5, which is a schematic diagram of a first signal including a first index according to an embodiment of this disclosure, assuming the first index is {1,0}, where “1” indicates that the first signal belongs to the second (counting from 0, 1, 2...) first signal set within N sets of first signals, and “0” indicates that the first signal is transmitted at the time of the transmission of the first first signal in the second set of first signals.
[0151] For example, the first index indicates the index value of the first signal set where the first signal is located. If the index value is 9, and a first signal set contains 8 transmission opportunities for the first signal, then the following conditions are met: 9 divided by 8 (the number of transmission opportunities) = 1. The quotient is 1, indicating that the first signal belongs to the second (counting from 0, 1, 2...) first signal set; and it also satisfies: 9 mod 8 = 1. The remainder is 1, indicating that the first signal is transmitted on the second transmission opportunity in the second first signal set.
[0152] Furthermore, the first index also indicates the set of transmission opportunities for the first signal in the first transmission pattern, and / or the time-domain resources and / or frequency-domain resources of the first signal in the corresponding set of transmission opportunities.
[0153] In one possible implementation, the first transmission pattern includes the transmission period of the first signal, and / or the boundary of the transmission period of the first signal.
[0154] In one possible implementation, the transmission period of the first signal is a predefined value; or, the first signal includes third indication information, which indicates the transmission period of the first signal.
[0155] In one possible implementation, the boundary of the transmission period of the first signal is a predefined value. For example, "boundary" represents the start and / or end of each period, such as the start or end time / time unit of each transmission period. For example, the transmission period is bounded by the system frame number SFN mod m = 0, where m is the period length and mod is the modulo function. This formula means that if a certain radio frame satisfies SFN mod m = 0, then this moment (the moment when SFN satisfies the above formula) is the start of the transmission period of the first signal; or, the first signal includes fourth indication information, which indicates the boundary of the transmission period of the first signal.
[0156] In the second embodiment, the first transmission pattern includes the actual transmission timing set among the N transmission timing sets of the first signal; N is an integer greater than or equal to 1.
[0157] For example, a transmission cycle may include one set of transmission opportunities, or it may include N sets of transmission opportunities. Referring to Figure 6, Figure 6 is a schematic diagram of the transmission cycle of the first signal provided in an embodiment of this disclosure. The solid boxes in Figure 6 represent the transmission cycles in which the first signal is actually transmitted, and the dashed boxes represent the transmission cycles in which the first signal is not actually transmitted. In other words, the first transmission pattern corresponds to the first 3 transmission cycles of every 6 transmission cycles of the first signal, in which transmission is actually carried out, and / or, transmission is not carried out in the last 3 transmission cycles.
[0158] In one possible implementation, the first transmission pattern further includes the value of N, and / or the boundaries of the N first signal transmission cycles.
[0159] In one possible implementation, the first transmission pattern is predefined, or the first signal includes second indication information that indicates the first transmission pattern. For example, the second indication information is a bitmap, where each bit indicates whether a transmission actually occurs in each of several transmission cycles. For Figure 6, there are a total of 6 transmission cycles, which can indicate "111000", where "1" represents actual transmission and "0" represents no actual transmission.
[0160] In one possible implementation, similar to the first implementation, the first signal includes a first index, which indicates the position of the first signal in the time-domain and / or frequency-domain resources of the first signal in the first transmission pattern. The first index indicates the transmission opportunity set of the first signal in the first transmission pattern, and / or the time-domain and / or frequency-domain resources of the first signal in the corresponding transmission opportunity set. The indication method of the first index is the same as described above and will not be repeated here.
[0161] In one possible implementation, the transmission period of the first signal is predefined, for example, 20ms; or, the first signal includes third indication information, which indicates the transmission period of the first signal.
[0162] In one possible implementation, the boundary of the transmission period of the first signal is a predefined value. For example, "boundary" represents the start and end of each period, such as the start or end time / time unit of each transmission period. For example, the transmission period is bounded by the system frame number SFN mod m = 0, where m is the length of the transmission period and mod is the modulo function. This formula means that if a certain radio frame satisfies SFN mod m = 0, then this moment (the moment when SFN satisfies the above formula) is the start of the transmission period of the first signal. Alternatively, the first signal includes fourth indication information, which indicates the boundary of the transmission period of the first signal.
[0163] In one possible implementation, N is a predefined value. For example, N = 8; or, the first signal includes a fifth indication information that indicates the value of N.
[0164] In one possible implementation, the boundaries of the N transmission cycles of the first signal are predefined values. For example, a "boundary" represents the start and end point of each cycle, such as the start or end time / time unit of each transmission cycle. For instance, the transmission cycle is bounded by the system frame number SFN mod m = 0, where m is the length of the N transmission cycles and mod is a modulo function. This expression means that if a radio frame satisfies SFN mod m = 0, then this moment is the start of the N transmission cycles of the first signal. Alternatively, the first signal includes sixth indication information, which indicates the boundaries of the N transmission cycles of the first signal.
[0165] In one possible implementation, the transmission period of the first signal and the large period corresponding to multiple transmission periods can be predefined values. Taking Figure 6 as an example, there are a total of 6 transmission periods, and there are 8 transmission opportunities for the first signal in one transmission period. Therefore, these 6 transmission periods can be used as a large period.
[0166] In one possible implementation, the first transmission pattern includes multiple transmission opportunities; some of the transmission opportunities correspond to the same time-domain resources, but different frequency-domain resources.
[0167] For example, the first transmission pattern may include multiple transmission opportunities. These multiple transmission opportunities have the same time-domain location but different frequency-domain locations. It is understood that transmission opportunities with the same time-domain location but different frequency-domain locations may correspond to the same index, or the same spatial information, or the same spatial transmission filter, or the same quasi-colocation (QCL) feature, or belong to the same QCL configuration combination. As shown in Figure 7, which is a schematic diagram of the transmission of the first and second signals provided in an embodiment of this disclosure, it can be seen that the first and second signals correspond to different transmission opportunities, and these transmission opportunities share the same QCL features / spatial information / index / spatial transmission filter / belong to the same QCL configuration combination.
[0168] In this embodiment of the disclosure, based on the transmission pattern of the first signal itself indicating its energy-saving state, the terminal device (especially when it has just been powered on / made initial access) is enabled to know the transmission pattern of the SSB (which is the transmission pattern in the energy-saving state), and when the SSB is detected, the terminal device can know the transmission status of the subsequent SSB, thereby enabling the network side to send the first signal with a longer transmission period, so as to achieve joint energy saving of the network device and the terminal device.
[0169] Further, referring to Figure 8, which is another flowchart of the first information configuration method provided in this embodiment, after performing step S12, the method further includes:
[0170] S13. Determine the transmission resource configuration of the second information based on the first parameter.
[0171] For example, the second information includes at least one of the following:
[0172] A first control signal, used to schedule system information; for example, a first control signal PDCCH for scheduling SIB1 or a downlink control indication DCI;
[0173] First system information; for example, the first system information is SIB1;
[0174] The first uplink signal; for example, the first uplink signal is PRACH;
[0175] The first paging signal; for example, the first paging signal is Paging, or it is the PDCCH or DCI for scheduling paging information.
[0176] In one possible implementation, the second information is the first system information; the first system information includes seventh indication information, which indicates the transmission resource configuration of the first uplink signal and / or the first paging signal.
[0177] For example, the first system information may contain multiple sets of resource configurations for the second information. Based on the first parameter, a certain set of resource configurations (e.g., energy-saving resource configuration) is determined to be used as the resource configuration for the second information.
[0178] In one possible implementation, the transmission resource configuration includes at least one of the following:
[0179] The start time unit of the second information transmission resource;
[0180] The second transmission pattern of the second information transmission resource.
[0181] It is worth noting that there are three ways to determine the start time unit of the second information based on the first instruction information.
[0182] In a first embodiment, the start time unit of the second information transmission resource is spaced apart from the first transmission pattern by a first time interval; wherein the first time interval is predefined, for example, 10ms; or, the first signal includes an eighth indication information, the eighth indication information indicating the first time interval.
[0183] For example, the starting time unit (or the ending time unit) of the first transmission pattern is used as an example for illustration. As shown in FIG9, FIG9 is a schematic diagram of the division of the first time interval provided in the embodiment of the present disclosure. The starting time unit of the second information is separated from the starting time unit of the first transmission pattern by a first time interval.
[0184] In a second embodiment, the second information is the first uplink signal and / or the first paging signal; the start time unit of the transmission resource of the first uplink signal and / or the first paging signal is separated from the first transmission resource by a second time interval, and the first transmission resource is the transmission resource of the first control signal and / or the first system information; wherein, the second time interval is predefined, for example, 10ms; or, the first system information includes a ninth indication information, which indicates the second time interval.
[0185] For example, as shown in FIG10, FIG10 is a schematic diagram of the division of the second time interval provided in an embodiment of the present disclosure, wherein the start time unit of the first uplink signal and / or the first paging signal transmission resource is separated from the start time unit of the first control signal / first system information by the second time interval.
[0186] In a third embodiment, the second information is a first paging signal; the transmission period of the first paging signal includes N transmission opportunities; each of the N transmission opportunities corresponds to one of M packets; N is less than or equal to M, and N and M are positive integers; the method further includes:
[0187] The start time unit of each of the M packets is determined according to the first transmission pattern and / or the first transmission resource.
[0188] Furthermore, the start time unit of each of the M groups is separated from the first transmission pattern and / or the first transmission resource by a third time interval; the first transmission resource is the transmission resource of the first control signal and / or the first system information; the third time interval is predefined, for example, 10ms; or, the first system information includes tenth indication information, which indicates the third time interval.
[0189] For example, as shown in Figure 11, which is a schematic diagram of the transmission cycle of the first paging signal provided in an embodiment of this disclosure, there are a total of 8 first paging signals, divided into 4 groups of transmission resources, each group containing 2 transmission resources; wherein, the starting transmission unit of each group of transmission resources is separated from the starting time unit of the transmission cycle of the first control information or the first system information by a third time interval; in one possible manner, the transmission timing of each group in the M groups is in a continuous time unit. For example, it is a continuous wireless frame.
[0190] It should be noted that the above descriptions are all based on the definition of the start time unit of the first transmission pattern. Of course, the time interval may also be based on the definition of the start time unit of the first signal transmission period, or the end time unit of the first transmission pattern, or the time unit in which the last first signal actually transmitted within the first transmission pattern is located.
[0191] In one possible implementation, a second transmission pattern for the second information is determined based on the first instruction information.
[0192] For example, the second transmission pattern includes multiple transmission opportunities; some of the transmission opportunities correspond to the same time-domain resources but different frequency-domain resources. It is understood that second information transmission opportunities with the same time-domain location but different frequency-domain locations may correspond to the same first signal index, or the same spatial information, or the same spatial transmission filter, or the same QCL feature, or belong to the same QCL configuration combination.
[0193] For example, as shown in Figure 12, which is a schematic diagram of the division of the start time unit of the first paging signal provided in an embodiment of this disclosure; the second information is the first paging signal, and the transmission period of the first paging signal includes N transmission opportunities; wherein, the time unit in which the N transmission opportunities are located is the first N time units of each first paging signal transmission period, and N is a positive integer. The start time unit of the paging signal is defined based on the start time unit of the first signal.
[0194] For example, the time unit index of the time unit is obtained based on the terminal identifier and N time units. For instance, the time unit index = (UE identifier or UE identifier + offset) mod N time units; where M is the transmission period length, the UE identifier is the identifier of the terminal device, and the offset value is a pre-configured value of the network device. The time unit can be a radio frame, subframe, time slot, OFDM symbol, ms, s, etc., and this disclosure does not specifically limit it.
[0195] In this embodiment of the disclosure, the transmission pattern of other common signals in the energy-saving state is indicated by the first signal, thereby realizing the joint energy saving of network devices and terminal devices; in addition, when transmitting other common signals, the terminal devices can complete synchronization and AGC calibration in advance based on the first signal, thereby partially reducing transmission latency and improving transmission efficiency.
[0196] Furthermore, the method also includes:
[0197] Receive third information; the third information includes at least one of the following:
[0198] The cell identifier of the target measurement cell;
[0199] Does the target measurement cell support energy-saving mode?
[0200] The first transmission pattern of whether the target measurement cell is the first signal;
[0201] The target is to measure the energy-saving status of the residential area;
[0202] The transmission pattern of the first signal in the target measurement cell.
[0203] It is understandable that there can be one or more target measurement cells. That is, the third information includes the cell identifier of one or more target measurement cells, whether energy-saving status is supported, and one or more of the energy-saving statuses.
[0204] In one possible implementation, the third information is the first system information, or the first system information includes the third information.
[0205] In this embodiment of the disclosure, by receiving third information, the terminal device can learn about the energy-saving status of neighboring cells based on system information, thereby measuring the first signal more accurately.
[0206] This disclosure also provides an information configuration method, including:
[0207] Receive the first signal;
[0208] Based on the first parameter of the first signal, determine the transmission resource configuration of the second information.
[0209] In one possible implementation, the second information includes at least one of the following:
[0210] A first control signal, which is used to schedule system information;
[0211] First system information;
[0212] First uplink signal;
[0213] First paging signal.
[0214] In one possible implementation, the second information is first system information; the first system information includes seventh indication information, which indicates the transmission resource configuration of the first uplink signal and / or the first paging signal.
[0215] In one possible implementation, the transmission resource configuration includes at least one of the following:
[0216] The start time unit of the second information transmission resource;
[0217] The second transmission pattern of the second information transmission resource.
[0218] In one possible implementation, the start time unit of the second information transmission resource is separated from the first transmission pattern by a first time interval.
[0219] Wherein, the first time interval is predefined, or the first signal includes an eighth indication information, the eighth indication information indicating the first time interval.
[0220] In one possible implementation, the second information is the first uplink signal and / or the first paging signal; the start time unit of the transmission resource of the first uplink signal and / or the first paging signal is separated from the first transmission resource by a second time interval; the first transmission resource is the transmission resource of the first control signal and / or the first system information.
[0221] Wherein, the second time interval is predefined, or the first system information includes a ninth indication information, which indicates the second time interval.
[0222] In one possible implementation, the second information is a first paging signal; the transmission period of the first paging signal includes N transmission opportunities; each of the N transmission opportunities corresponds to one of M packets; N is less than or equal to M, and N and M are positive integers; the method further includes:
[0223] The start time unit of each of the M packets is determined according to the first transmission pattern and / or the first transmission resource.
[0224] In one possible implementation, the start time unit of each of the M groups is separated from the first transmission pattern and / or the first transmission resource by a third time interval; the first transmission resource is the transmission resource for the first control signal and / or the first system information.
[0225] Wherein, the third time interval is predefined, or the first system information includes tenth indication information, the tenth indication information indicating the third time interval.
[0226] In one possible implementation, the second information is a first paging signal, and the transmission cycle of the first paging signal includes N transmission opportunities;
[0227] Wherein, the time units in which the N transmission opportunities occur are the first N time units of each first paging signal transmission cycle, and N is a positive integer.
[0228] In one possible implementation, the method further includes:
[0229] Receive third information; wherein the third information includes at least one of the following:
[0230] The cell identifier of the target measurement cell;
[0231] Does the target measurement cell support energy-saving mode?
[0232] The first transmission pattern of whether the target measurement cell is the first signal;
[0233] The target is to measure the energy-saving status of the residential area;
[0234] The transmission pattern of the first signal in the target measurement cell.
[0235] It is worth noting that the working process of the information configuration method described in this embodiment can refer to the working process of the first information configuration method described in the above embodiment, and will not be repeated here.
[0236] Referring to Figure 13, which is a flowchart of a second information configuration method provided in an embodiment of this disclosure, the second information configuration method is applied to a network device, and the method includes:
[0237] S21. Send a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine a first transmission pattern of the first signal, or the first parameter being used to determine the transmission resource configuration of the second information.
[0238] In one possible implementation, the first transmission pattern includes at least one of the following information:
[0239] Within the set of transmission opportunities corresponding to the first signal, the time-domain resource location and / or frequency-domain resource location of one or more transmission opportunities;
[0240] The set of N transmission opportunities for the first signal is the set of actual transmission opportunities; N is an integer greater than or equal to 1.
[0241] The transmission period of the first signal, and / or the boundary of the transmission period of the first signal.
[0242] The value of N, and / or the boundaries of the N first signal transmission cycles.
[0243] In one possible implementation, the first signal includes at least one of the following information:
[0244] A first index, wherein the first index indicates the time-domain and / or frequency-domain resources of the first signal in the first transmission pattern;
[0245] The second instruction information indicates the first transmission pattern;
[0246] The third indication information indicates the transmission period of the first signal;
[0247] The fourth indication information indicates the boundary of the transmission period of the first signal.
[0248] In one possible implementation, the first signal includes:
[0249] The eighth indication information indicates a first time interval, which is the time interval between the start time unit of the second information transmission resource and the first transmission pattern; the second information includes at least one of the following:
[0250] A first control signal, which is used to schedule system information;
[0251] First system information;
[0252] First uplink signal;
[0253] First paging signal.
[0254] In one possible implementation, the first transmission pattern includes the actual transmission timing set from N transmission timing sets of the first signal; N is an integer greater than or equal to 1; the first signal includes at least one of the following information:
[0255] The fifth indication information indicates the value of N;
[0256] The sixth indication information indicates the boundary of the N transmission cycles of the first signal.
[0257] In one possible implementation, the method further includes:
[0258] Send a second message; the second message includes at least one of the following:
[0259] A first control signal, which is used to schedule system information;
[0260] First system information;
[0261] First uplink signal;
[0262] First paging signal.
[0263] In one possible implementation, the method further includes:
[0264] Send first system information, which includes at least one of the following:
[0265] The seventh indication information indicates the transmission resource configuration of the second information.
[0266] The ninth indication information indicates a second time interval; the second time interval is the time interval between the start time unit of the first uplink signal and / or the first paging signal transmission resource and the first transmission resource.
[0267] The tenth indication information indicates a third time interval; the third time interval is the time interval between the start time unit of each of the M packets of the first paging signal and the first transmission pattern and / or the first transmission resource.
[0268] In one possible implementation, the method further includes:
[0269] Send a third message; wherein the third message includes at least one of the following:
[0270] The cell identifier of the target measurement cell;
[0271] Does the target measurement cell support energy-saving mode?
[0272] The first transmission pattern of whether the target measurement cell is the first signal;
[0273] The target is to measure the energy-saving status of the residential area;
[0274] The transmission pattern of the first signal in the target measurement cell.
[0275] It is worth noting that the working process of the second information configuration method described in this embodiment can refer to the working process of the first information configuration method described in the above embodiment, and will not be repeated here.
[0276] This disclosure also provides a terminal device, including:
[0277] A first signal receiving module is used to receive a first signal;
[0278] The first transmission resource configuration determination module is used to determine the transmission resource configuration of the second information based on the first parameter of the first signal.
[0279] Referring to Figure 14, which is a structural block diagram of a terminal device 100 provided in an embodiment of this disclosure, the terminal device 100 includes:
[0280] First signal receiving module 11, used to receive first signal;
[0281] The first transmission pattern determination module 12 is used to determine the first transmission pattern of the first signal based on the first parameters of the first signal;
[0282] The second information resource configuration determination module 13 is used to determine the resource configuration of the second information based on the first parameter;
[0283] The third information receiving module 14 is used to receive third information.
[0284] It is worth noting that the working process of each module in the terminal device 100 described in this embodiment can refer to the working process of the first information configuration method described in the above embodiment, and will not be repeated here.
[0285] This disclosure also provides a network device, including:
[0286] A first signal transmitting module is used to transmit a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine the transmission resource configuration of the second information.
[0287] Referring to Figure 15, which is a structural block diagram of a network device 200 provided in an embodiment of this disclosure, the network device 200 includes:
[0288] First signal transmitting module 21 is used to transmit a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine a first transmission pattern of the first signal;
[0289] The second message is sent to block 22, which is used to send the second message;
[0290] The third information sending module 23 is used to send third information.
[0291] It is worth noting that the working process of each module in the network device 200 described in this embodiment can refer to the working process of the second information configuration method described in the above embodiment, and will not be repeated here.
[0292] Referring to Figure 16, which is a structural block diagram of an information configuration device 300 provided in an embodiment of this disclosure, the information configuration device 300 includes a processor 31, a memory 32, and a computer program stored in the memory 32 and executable on the processor 31. When the processor 31 executes the computer program, it implements the steps in the various information configuration method embodiments described above.
[0293] For example, the computer program may be divided into one or more modules / units, which are stored in the memory 32 and executed by the processor 31 to complete the present disclosure. The one or more modules / units may be a series of computer program instruction segments capable of performing a specific function, which describe the execution process of the computer program in the information configuration device 300.
[0294] The information configuration device 300 may include, but is not limited to, a processor 31 and a memory 32. Those skilled in the art will understand that the schematic diagram is merely an example of the information configuration device 300 and does not constitute a limitation on the information configuration device 300. It may include more or fewer components than illustrated, or combine certain components, or different components. For example, the information configuration device 300 may also include input / output devices, network access devices, buses, etc.
[0295] The processor 31 can be a Central Processing Unit (CPU), or other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor. The processor 31 is the control center of the information configuration device 300, connecting all parts of the information configuration device 300 via various interfaces and lines.
[0296] The memory 32 can be used to store the computer programs and / or modules. The processor 31 implements various functions of the information configuration device 300 by running or executing the computer programs and / or modules stored in the memory 32 and calling the data stored in the memory 32. The memory 32 may mainly include a program storage area and a data storage area. The program storage area may store the operating system, at least one application program required for a function (such as sound playback function, image playback function, etc.), etc.; the data storage area may store data created according to the use of the mobile phone (such as audio data, phonebook, etc.). In addition, the memory 32 may include high-speed random access memory, and may also include non-volatile memory, such as hard disk, memory, plug-in hard disk, smart media card (SMC), secure digital (SD) card, flash card, at least one disk storage device, flash memory device, or other volatile solid-state storage device.
[0297] If the modules / units integrated in the information configuration device 300 are implemented as software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, all or part of the processes in the methods of the above embodiments can also be implemented by a computer program instructing related hardware. The computer program can be stored in a computer-readable storage medium, and when executed by the processor 31, it can implement the steps of the various method embodiments described above. The computer program includes computer program code, which can be in the form of source code, object code, executable files, or certain intermediate forms. The computer-readable medium can include: any entity or device capable of carrying the computer program code, recording media, USB flash drives, portable hard drives, magnetic disks, optical disks, computer memory, read-only memory (ROM), random access memory (RAM), electrical carrier signals, telecommunication signals, and software distribution media, etc.
[0298] This disclosure also provides a computer program product, including computer instructions, which, when executed by a processor, implement the information configuration method as described in the above embodiments.
[0299] The above description represents the preferred embodiments of this disclosure. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this disclosure, and these improvements and modifications are also considered to be within the scope of protection of this disclosure.
Claims
1. An information configuration method applied to a terminal device, the method comprising: Receive the first signal; Based on the first parameter of the first signal, determine the transmission resource configuration of the second information.
2. The information configuration method as described in claim 1, wherein, The second information includes at least one of the following: A first control signal, which is used to schedule system information; First system information; First uplink signal; First paging signal.
3. The information configuration method as described in claim 2, wherein, The second information is the first system information; the first system information includes a seventh indication information, which indicates the transmission resource configuration of the first uplink signal and / or the first paging signal.
4. The information configuration method as described in claim 1 or 3, wherein, The transmission resource configuration includes at least one of the following: The start time unit of the second information transmission resource; The second transmission pattern of the second information transmission resource.
5. The information configuration method as described in claim 2, wherein, The start time unit of the second information transmission resource is separated from the first transmission pattern by a first time interval; Wherein, the first time interval is predefined, or the first signal includes an eighth indication information, the eighth indication information indicating the first time interval.
6. The information configuration method as described in claim 5, wherein the second information is the first uplink signal and / or the first paging signal; the start time unit of the transmission resource of the first uplink signal and / or the first paging signal is separated from the first transmission resource by a second time interval; the first transmission resource is the transmission resource of the first control signal and / or the first system information. in, The second time interval is predefined, or the first system information includes a ninth indication information, which indicates the second time interval.
7. The information configuration method as described in claim 4, wherein, The second information is a first paging signal; the transmission cycle of the first paging signal includes N transmission opportunities; each of the N transmission opportunities corresponds to one of the M packets; N is less than or equal to M, and N and M are positive integers; the method further includes: The start time unit of each of the M packets is determined according to the first transmission pattern and / or the first transmission resource.
8. The information configuration method as described in claim 7, wherein, The start time unit of each of the M groups is separated from the first transmission pattern and / or the first transmission resource by a third time interval; the first transmission resource is the transmission resource for the first control signal and / or the first system information. Wherein, the third time interval is predefined, or the first system information includes tenth indication information, the tenth indication information indicating the third time interval.
9. The information configuration method as described in claim 4, wherein, The second information is the first paging signal, and the transmission cycle of the first paging signal includes N transmission opportunities; Wherein, the time units in which the N transmission opportunities occur are the first N time units of each first paging signal transmission cycle, and N is a positive integer.
10. The information configuration method as described in claim 1, further comprising: Receive third information; wherein the third information includes at least one of the following: The cell identifier of the target measurement cell; Does the target measurement cell support energy-saving mode? The first transmission pattern of whether the target measurement cell is the first signal; The target is to measure the energy-saving status of the residential area; The transmission pattern of the first signal in the target measurement cell.
11. An information configuration method applied to a network device, the method comprising: Send a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine the transmission resource configuration of the second information.
12. The information configuration method as described in claim 11, wherein, The first signal includes: The eighth indication information indicates a first time interval, which is the time interval between the start time unit of the second information transmission resource and the first transmission pattern; the second information includes at least one of the following: A first control signal, which is used to schedule system information; First system information; First uplink signal; First paging signal.
13. The information configuration method as described in claim 11, further comprising: Send first system information, which includes at least one of the following: The seventh indication information indicates the transmission resource configuration of the first uplink signal and / or the first paging signal; The ninth indication information indicates a second time interval; the second time interval is the time interval between the start time unit of the first uplink signal and / or the first paging signal transmission resource and the first transmission resource. The tenth indication information indicates a third time interval; the third time interval is the time interval between the start time unit of each of the M packets of the first paging signal and the first transmission pattern and / or the first transmission resource.
14. The information configuration method as described in claim 11, further comprising: Send a third message; wherein the third message includes at least one of the following: The cell identifier of the target measurement cell; Does the target measurement cell support energy-saving mode? The first transmission pattern of whether the target measurement cell is the first signal; The target is to measure the energy-saving status of the residential area; The transmission pattern of the first signal in the target measurement cell.
15. A terminal device, comprising: A first signal receiving module is used to receive a first signal; The first transmission resource configuration determination module is used to determine the transmission resource configuration of the second information based on the first parameter of the first signal.
16. A network device, comprising: A first signal transmitting module is used to transmit a first signal; wherein the first signal includes a first parameter, the first parameter being used to determine the transmission resource configuration of the second information.
17. An information configuration device, comprising a processor, a memory, and a computer program stored in the memory and configured to be executed by the processor, wherein the processor executes the computer program to implement the information configuration method as claimed in any one of claims 1 to 14.
18. A computer-readable storage medium comprising a stored computer program, wherein, When the computer program is executed, it controls the device containing the computer-readable storage medium to perform the information configuration method as described in any one of claims 1 to 14.
19. A computer program product comprising computer instructions that, when executed by a processor, implement the information configuration method as described in any one of claims 1 to 14.
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