Search space monitoring method and apparatus
The method allows terminals to dynamically switch search spaces for power-saving signal monitoring based on DRX cycle type, addressing inefficient power consumption and detection issues in existing systems by optimizing signal detection in both long and short cycles.
Patent Information
- Application Number
- JP2023211585
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-09-12
- Filing Date
- 2023-12-14
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2040-06-05
AI Technical Summary
Existing communication systems fail to efficiently monitor power-saving signals in both long and short DRX cycles due to fixed search space configurations, leading to unnecessary power consumption and improper signal detection.
A method and apparatus that allow terminals to dynamically switch between monitoring power-saving signals in different search spaces based on the DRX cycle type, ensuring appropriate signal detection while reducing unnecessary monitoring, thereby optimizing power consumption.
Enables efficient power-saving signal monitoring in both long and short DRX cycles, reducing power consumption and ensuring proper signal detection by aligning search space monitoring with the DRX cycle type.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present application relates to the field of communications technology, and more particularly to a search space monitoring method and apparatus. [Background technology]
[0002] Discontinuous reception (DRX) technology has been introduced into communication systems to reduce terminal power consumption. In connected DRX technology, a DRX cycle is configured for terminals in radio resource control (RRC) connected mode. As shown in Figure 1, a DRX cycle includes a DRX opportunity and an on duration. During the on duration, the terminal monitors and receives data on the physical downlink control channel (PDCCH). During the DRX opportunity, the terminal does not receive data on the downlink channel to reduce power consumption. It should be noted that the DRX cycle may be classified into a short DRX cycle and a long DRX cycle.
[0003] Currently, a terminal is required to monitor a PDCCH-based power saving signal at a specific position within the DRX cycle. Furthermore, the power saving signal may be applied to both the long DRX cycle and the short DRX cycle. Thus, for a terminal, the cycle for monitoring the power saving signal in the long DRX cycle is different from the cycle for monitoring the power saving signal in the short DRX cycle.
[0004] In the prior art, the search space monitoring cycle is fixed. Therefore, the search space used to carry the power-saving signal cannot be applied to both the long DRX cycle and the short DRX cycle, and the terminal cannot properly monitor the power-saving signal. The industry has not provided a solution to this technical problem. Summary of the Invention
[0005] The present disclosure provides a search space monitoring method and apparatus, which enable a terminal to successfully monitor a power saving signal in a search space in a situation where the power saving signal can be applied to a long DRX cycle and a short DRX cycle.
[0006] According to a first aspect, a search space monitoring method is provided, comprising: when using a long DRX cycle, a terminal monitors a power saving signal in a first search space and does not monitor the power saving signal in a second search space, where the power saving signal is used to indicate power saving information of the terminal; and when using a short DRX cycle, the terminal monitors a power saving signal in the second search space and does not monitor the power saving signal in the first search space.
[0007] Based on the above technical solution, when a long DRX cycle is used, the terminal monitors power saving signals in the first search space but does not monitor power saving signals in the second search space. When a short DRX cycle is used, the terminal monitors power saving signals in the second search space but does not monitor power saving signals in the first search space. In this way, the terminal can normally monitor power saving signals in the search space in a scenario where power saving signals can be applied to both the long DRX cycle and the short DRX cycle. Furthermore, regardless of whether the DRX cycle is long or short, the terminal only needs to monitor power saving signals in one search space, thereby reducing the amount of search space the terminal needs to monitor and reducing the power consumption of the terminal.
[0008] According to a second aspect, a communication method is provided, including: when a terminal uses a long DRX cycle, a network device transmits a power saving signal in a first search space and does not transmit a power saving signal in a second search space, where the power saving signal is used to indicate power saving information of the terminal; and when the terminal uses a short DRX cycle, the network device transmits a power saving signal in the second search space and does not transmit a power saving signal in the first search space.
[0009] Based on the above technical solution, in a scenario in which a power-saving signal can be applied to both a long DRX cycle and a short DRX cycle, the network device determines a search space for transmitting the power-saving signal based on the type of DRX cycle used by the terminal. Therefore, the network device transmits the power-saving signal only within the search space that matches the DRX cycle used by the terminal, so that the terminal can detect the power-saving signal in the corresponding search space and use the power-saving signal to schedule power saving for the terminal. Furthermore, if the network device configures two search spaces (i.e., a first search space and a second search space) for the terminal, the technical solution of the present application allows the network device to transmit the power-saving signal in only one search space in one DRX cycle, so that the terminal monitors the power-saving signal in only one search space, thereby avoiding the conventional technical problem of unnecessary power consumption caused by the terminal having to simultaneously monitor two search spaces.
[0010] According to a third aspect, a search space monitoring method is provided, the method including: when using a long DRX cycle, the terminal monitoring a power saving signal in the search space based on a first set of configuration parameters of the search space, the power saving signal being used to indicate power saving information of the terminal; and when using a short DRX cycle, the terminal monitoring a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0011] Based on the above technical solution, when a long DRX cycle is used, the terminal uses a first set of configuration parameters in the search space to satisfy the terminal's conditions for the cycle in which the power saving signal is monitored in the long DRX cycle. When a short DRX cycle is used, the terminal uses a second set of configuration parameters in the search space to satisfy the terminal's conditions for the cycle in which the power saving signal is monitored in the short DRX cycle. In other words, in a scenario where a power saving signal may be applied to both the long DRX cycle and the short DRX cycle, the terminal can use configuration parameter sets corresponding to the DRX cycles for different DRX cycles, ensuring that the power saving signal can be successfully monitored in the search space.
[0012] According to a fourth aspect, a communication method is provided, comprising: when a terminal uses a long discontinuous reception (DRX) cycle, a network device transmitting a power saving signal in a search space based on a first set of configuration parameters of the search space, the power saving signal being used to indicate power saving information of the terminal; and when the terminal uses a short DRX cycle, the network device transmitting a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0013] Based on the above technical solution, in a situation where a power-saving signal can be applied to a long DRX cycle and a short DRX cycle, the network device determines a set of corresponding configuration parameters of the search space based on the type of DRX cycle used by the terminal, so that the monitoring cycle of the search space can match the type of DRX cycle used by the terminal. In this way, the network device transmits the power-saving signal in the search space. Accordingly, the terminal can normally monitor the power-saving signal in the search space.
[0014] According to a sixth aspect, a search space monitoring method is provided, including: a terminal determining M candidate monitoring occasions in a search space, where M is a positive integer; the terminal determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles, where N is a positive integer less than or equal to M; and the terminal monitoring power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information of the terminal.
[0015] Based on the above technical solution, the terminal determines the target monitoring occasion based on the time-domain position of the on-duration of the DRX cycle. Specifically, if the terminal uses a long DRX cycle, the terminal can determine the target monitoring occasion based on the time-domain position of the on-duration of the long DRX cycle. If the terminal uses a short DRX cycle, the terminal can determine the target monitoring occasion based on the time-domain position of the on-duration of the short DRX cycle. The target monitoring occasion determined by the terminal is compatible with the type of DRX cycle used by the terminal. In this way, regardless of whether the DRX cycle is long or short, the terminal can successfully monitor the power saving signal within the search space at the appropriate monitoring occasion (i.e., the target monitoring occasion).
[0016] In a possible design, the monitoring cycle of the search space is the same in time length as the short DRX cycle, thus reducing the complexity of determining target monitoring occasions by the terminal.
[0017] According to a sixth aspect, a communication method is provided, comprising: a network device determining M candidate monitoring occasions in a search space, where M is a positive integer; the network device determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles, where N is a positive integer less than or equal to M; and the network device transmitting power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information of the terminal.
[0018] Based on the above technical solution, in a situation where a power saving signal can be applied to both the long DRX cycle and the short DRX cycle, if the terminal uses the long DRX cycle, the network device determines the target monitoring occasion based on the time domain position of the on duration of the long DRX cycle. If the terminal uses the short DRX cycle, the network device determines the target monitoring occasion based on the time domain position of the on duration of the short DRX cycle. The target monitoring occasion determined by the network device matches the type of DRX cycle used by the terminal. The network device transmits a power saving signal during the target monitoring occasion, so that the terminal can successfully monitor the power saving signal during the target monitoring occasion.
[0019] According to a seventh aspect, there is provided a communications device. The communications device may be a terminal, a chip within the terminal, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: when using a long DRX cycle, monitoring a power saving signal in a first search space and skipping monitoring a power saving signal in a second search space, where the power saving signal is used to indicate power saving information of the terminal; and when using a short DRX cycle, monitoring a power saving signal in the second search space and skipping monitoring a power saving signal in the first search space.
[0020] According to an eighth aspect, there is provided a communications device. The communications device may be a network device, a chip within the network device, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: if the terminal uses a long DRX cycle, transmitting a power saving signal in a first search space and skipping transmitting the power saving signal in a second search space, where the power saving signal is used to indicate power saving information of the terminal; and if the terminal uses a short DRX cycle, transmitting a power saving signal in the second search space and skipping transmitting the power saving signal in the first search space.
[0021] According to a ninth aspect, there is provided a communications device. The communications device may be a terminal, a chip within the terminal, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: when using a long DRX cycle, monitoring a power saving signal in a search space based on a first set of configuration parameters of the search space, where the power saving signal is used to indicate power saving information of the terminal; and when using a short DRX cycle, monitoring a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0022] In a possible design, when the instructions are executed by the processor, the communications device further performs the following step: receiving search space configuration information, the search space configuration information being used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0023] In a possible design, when the instructions are executed by a processor, the communications device is further operative to perform the following steps: receiving search space configuration information, the search space configuration information being used to indicate parameters other than the monitoring cycle and monitoring offset value in the first set of configuration parameters and parameters other than the monitoring cycle and monitoring offset value in the second set of configuration parameters; and receiving instruction information, the instruction information being used to indicate the monitoring cycle and monitoring offset value in the first set of configuration parameters and the monitoring cycle and monitoring offset value in the second set of configuration parameters.
[0024] According to a tenth aspect, there is provided a communications device. The communications device may be a network device, a chip within the network device, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: if the terminal uses a long DRX cycle, transmitting a power saving signal in a search space based on a first set of configuration parameters of the search space, where the power saving signal is used to indicate power saving information of the terminal; and if the terminal uses a short DRX cycle, transmitting a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0025] In a possible design, when the instructions are executed by the processor, the communications device further performs the following step: sending search space configuration information to the terminal, where the search space configuration information is used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0026] In a possible design, when the instructions are executed by a processor, the communications device is further operative to perform the following steps: transmitting search space configuration information to the terminal, where the search space configuration information is used to indicate parameters other than the monitoring cycle and monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and monitoring offset value in the second configuration parameter set; and transmitting instruction information to the terminal, where the instruction information is used to indicate the monitoring cycle and monitoring offset value in the first configuration parameter set and the monitoring cycle and monitoring offset value in the second configuration parameter set.
[0027] According to an eleventh aspect, there is provided a communications device. The communications device may be a terminal, a chip within a terminal, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: determining M candidate monitoring occasions in a search space, where M is a positive integer; determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles, where N is a positive integer less than or equal to M; and monitoring power-saving signals for the N target monitoring occasions in the search space, where the power-saving signals are used to indicate power-saving information of the terminal.
[0028] According to a twelfth aspect, there is provided a communications device. The communications device may be a network device, a chip within a network device, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: determining M candidate monitoring occasions in a search space, where M is a positive integer; determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles used by the terminal, where N is a positive integer less than or equal to M; and transmitting power-saving signals for the N target monitoring occasions in the search space, where the power-saving signals are used to indicate power-saving information of the terminal.
[0029] According to a thirteenth aspect, there is provided a communications device. The communications device may be located in, part of, or a terminal. The communications device may include an apparatus, unit, or module configured to perform the method steps of the first aspect or various designs of the first aspect. For example, the communications device may include a first processing unit and a second processing unit. The first processing module is configured to monitor a power saving signal, used to indicate power saving information of the terminal, in a first search space and skip monitoring a power saving signal in a second search space when the terminal uses a long DRX cycle. The second processing module is configured to monitor a power saving signal in the second search space and skip monitoring a power saving signal in the first search space when the terminal uses a short DRX cycle.
[0030] According to a fourteenth aspect, a communication device is provided. The communication device may be disposed in, be part of, or be the network device. The communication device may include an apparatus, unit, or module configured to perform the method steps of the second aspect or various designs of the second aspect. For example, the communication device may include a first communication module and a second communication module. The first communication module is configured to transmit a power saving signal in a first search space and skip transmitting the power saving signal in a second search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second communication module is configured to transmit a power saving signal in the second search space and skip transmitting the power saving signal in the first search space when the terminal uses a short DRX cycle.
[0031] According to a fifteenth aspect, a communications device is provided. The communications device may be located in, part of, or a terminal. The communications device may include an apparatus, unit, or module configured to perform the method steps of the third aspect or various designs of the third aspect. For example, the communications device may include a first processing unit and a second processing unit. The first processing module is configured to monitor a power saving signal in a search space based on a first set of configuration parameters of the search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second processing module is configured to monitor a power saving signal in the search space based on a second set of configuration parameters of the search space when the terminal uses a short DRX cycle.
[0032] In one possible design, the communication device further includes a communication module configured to receive search space configuration information, the search space configuration information used to indicate the first set of configuration parameters and the second set of configuration parameters.
[0033] In one possible design, the communications device further includes a communications module configured to receive search space configuration information and receive instruction information. The search space configuration information is used to indicate parameters other than the monitoring cycle and the monitoring offset value in the first set of configuration parameters and parameters other than the monitoring cycle and the monitoring offset value in the second set of configuration parameters. The instruction information is used to indicate the monitoring cycle and the monitoring offset value in the first set of configuration parameters and the monitoring cycle and the monitoring offset value in the second set of configuration parameters.
[0034] According to a sixteenth aspect, a communications device is provided. The communications device may be disposed in, be part of, or be the network device. The communications device may include an apparatus, unit, or module configured to perform the method steps of the fourth aspect or various designs of the fourth aspect. For example, the communications device may include a first communications module and a second communications module. The first communications module is configured to transmit a power saving signal in a search space based on a first set of configuration parameters of the search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second communications module is configured to transmit a power saving signal in the search space based on a second set of configuration parameters of the search space when the terminal uses a short DRX cycle.
[0035] In a possible design, the first communication module / second communication module is further configured to transmit search space configuration information to the terminal, and the search space configuration information is used to indicate the first configuration parameter set and the second configuration parameter set.
[0036] In a possible design, the first communication module / second communication module is further configured to transmit search space configuration information to the terminal and transmit instruction information to the terminal. The search space configuration information is used to indicate parameters other than the monitoring cycle and monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and monitoring offset value in the second configuration parameter set. The instruction information is used to indicate the monitoring cycle and monitoring offset value in the first configuration parameter set and the monitoring cycle and monitoring offset value in the second configuration parameter set.
[0037] According to a seventeenth aspect, a communications device is provided. The communications device may be located in a terminal, may be part of a terminal, or may be a terminal. The communications device may include an apparatus, unit, or module configured to perform the method steps of the fifth aspect or various designs of the fifth aspect. For example, the communications device may include a first processing unit and a second processing unit. The first processing module is configured to determine M candidate monitoring occasions in a search space; and from the M candidate monitoring occasions, determine N target monitoring occasions based on time-domain positions of on-durations of DRX cycles, where M is a positive integer and N is a positive integer less than or equal to M. The second processing module is configured to monitor power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information for the terminal.
[0038] According to an eighteenth aspect, a communications device is provided. The communications device may be located in, be part of, or be the network device. The communications device may include an apparatus, unit, or module configured to perform the method steps of the sixth aspect or various designs of the sixth aspect. For example, the communications device may include a processing module and a communications module. The processing module is configured to: determine M candidate monitoring occasions in a search space; and determine N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles used by the terminal, where M is a positive integer and N is a positive integer less than or equal to M. The communications module is configured to transmit power saving signals for the N target monitoring occasions in the search space, the power saving signals being used to indicate power saving information of the terminal.
[0039] According to a nineteenth aspect, there is provided a computer-readable storage medium having instructions stored thereon that, when executed on a computer, cause the computer to operate to perform a method in any of the designs of the first to sixth aspects.
[0040] According to a twentieth aspect, there is provided a computer program product comprising instructions which, when executed on a computer, cause the computer to perform a method in any of the designs of the first to sixth aspects.
[0041] According to a twenty-first aspect, there is provided a chip. The chip includes a processor configured to execute instructions to perform the method of any of the designs of the first to sixth aspects. The instructions may be from a memory within the chip or from a memory off-chip. Optionally, the chip further includes input / output circuitry.
[0042] For the technical effects provided by any of the designs of the seventh to sixteenth aspects, please refer to the technical effects provided by the corresponding methods described above, and the details will not be described again here.
[0043] According to a twenty-second aspect, there is provided a communication system including a network device and a terminal, wherein the terminal is configured to perform the search space monitoring method of any design of the first, third or fifth aspect, and the network device is configured to perform the communication method of any design of the second, fourth or sixth aspect. [Brief explanation of the drawings]
[0044] [Figure 1] FIG. 1 is a schematic diagram of a DRX cycle.
[0045] [Figure 2] Schematic diagram of the search space monitoring occasions and DRX cycle.
[0046] [Figure 3] 1 is a schematic diagram of the architecture of a communication system according to an embodiment of the present application;
[0047] [Figure 4] 1 is a schematic configuration diagram of a communication device according to an embodiment of the present application.
[0048] [Figure 5] 1 is a flowchart of a search space monitoring method according to an embodiment of the present application;
[0049] [Figure 6] FIG. 1 is a schematic diagram of a search space monitoring occasion and DRX cycle according to an embodiment of the present application.
[0050] [Figure 7] 1 is a schematic diagram of a communication scenario between a mobile phone and a base station according to an embodiment of the present application;
[0051] [Figure 8] 1 is a schematic diagram of a communication scenario between a mobile phone and a base station according to an embodiment of the present application;
[0052] [Figure 9] 1 is a flowchart of another search space monitoring method according to an embodiment of the present application;
[0053] [Figure 10] FIG. 10 is another schematic diagram of a search space monitoring occasion and DRX cycle according to an embodiment of the present application.
[0054] [Figure 11] 1 is a flowchart of another search space monitoring method according to an embodiment of the present application;
[0055] [Figure 12] FIG. 10 is another schematic diagram of a search space monitoring occasion and DRX cycle according to an embodiment of the present application.
[0056] [Figure 13] FIG. 10 is another schematic diagram of a search space monitoring occasion and DRX cycle according to an embodiment of the present application.
[0057] [Figure 14] FIG. 10 is another schematic diagram of a search space monitoring occasion and DRX cycle according to an embodiment of the present application.
[0058] [Figure 15] FIG. 10 is another schematic diagram of a search space monitoring occasion and DRX cycle according to an embodiment of the present application.
[0059] [Figure 16] 1 is a schematic diagram of the structure of a communication device according to an embodiment of the present application;
[0060] [Figure 17] 1 is a schematic diagram of the structure of a communication device according to an embodiment of the present application;
[0061] [Figure 18] 1 is a schematic diagram of a chip structure according to an embodiment of the present application; DETAILED DESCRIPTION OF THE INVENTION
[0062] In this specification, unless otherwise specified, " / " means "or." For example, A / B may represent A or B. In this specification, "and / or" describes an association relationship to describe related objects, and indicates that three relationships are possible. For example, A and / or B may represent the following three cases: only A is present, both A and B are present, and only B is present. Also, "at least one" means one or more, and "plurality" means two or more. Terms such as "first" and "second" do not limit the quantity or execution order, and terms such as "first" and "second" do not indicate a definite difference.
[0063] It should be noted that terms such as "example" or "for example" are used herein to indicate providing an example, illustration, or illustration. Any embodiment or design described herein as an "example" or "for example" should not be construed as preferred or having greater advantages over other embodiments or designs. Rather, the use of terms such as "example" or "for example" is intended to present the relevant concepts in a particular manner.
[0064] To facilitate understanding of the technical solution of the present application, the terms used in the present application are first briefly explained.
[0065] 1. PDCCH
[0066] The PDCCH is used to carry scheduling information and other control information, such as downlink control information (DCI). The PDCCH includes control channel elements (CCEs).
[0067] 2. DCI
[0068] DCI can include information such as resource block (RB) allocation information and modulation and coding scheme (MCS). Different DCIs carry different information and have different functions. To classify DCI, multiple DCI formats are defined in the protocol.
[0069] For example, current communication standards define the following DCI formats: DCI format 0-0: Used to schedule terminal uplink data; DCI format 1-0: Used to schedule downlink data for terminals; DCI format 2-0: Used to indicate slot format; DCI format 2-1: Used to indicate an interrupted transmission.
[0070] The above DCI formats are merely examples and will not be described one by one here.
[0071] 3. Power saving signal
[0072] The power saving signal is used to represent power saving information. The power saving signal can be used to achieve power saving.
[0073] Optionally, the power saving signal precedes the on duration of the DRX cycle and is used to indicate that the terminal is in a sleep state or a normal working state during the on duration of the DRX cycle associated with the power saving signal. Optionally, bit information may be used in the power saving signal to indicate that the terminal is in a sleep state or a normal working state during the on duration of the DRX cycle associated with the power saving signal. For example, a 1 bit may be used in the power saving signal for an indicator. When the bit is '0', it indicates that the terminal is in a sleep state; otherwise, when the bit is '1', it indicates that the terminal is in a normal working state. Furthermore, the power saving signal may be used to indicate other functions, such as instructing the terminal to skip PDCCH monitoring, instructing the terminal to switch between bandwidth parts (BWP), triggering activation or deactivation of a secondary cell, or triggering channel condition measurement.
[0074] Optionally, the power saving signal may be implemented based on the PDCCH or DCI. It should be noted that when the power saving signal is implemented based on the DCI, the power saving signal may be expressed by using a specific DCI format. For example, in the embodiment of the present application, the power saving signal may be expressed by using DCI format M. The power saving signal implemented based on the PDCCH has the advantages of high reliability and low probability of dropout or error detection.
[0075] The power-saving signal is explained below using an example related to a practical application scenario. For example, a user is using a mobile phone to watch online video. When the mobile phone needs to buffer video data, it monitors the scheduling information transmitted by the base station, determines the time-frequency resource location where the video data will be received based on the scheduling information transmitted by the base station, and retrieves the video data at the corresponding time-frequency resource location. When the mobile phone completes buffering the video data, it no longer needs to monitor the scheduling information transmitted by the base station. In this application, when the base station determines that there is no data that needs to be transmitted to the mobile phone, i.e., when the mobile phone completes buffering the video data and no longer needs to monitor the scheduling information, the base station transmits a power-saving signal to the mobile phone to instruct the mobile phone not to monitor the scheduling information for the duration of the next DRX cycle, thereby reducing the power consumption of the mobile phone. Conversely, when the base station determines that there is data that needs to be transmitted to the target user, the base station can use the power-saving signal to instruct the mobile phone to monitor the scheduling information for the duration of the corresponding DRX cycle.
[0076] 4. Search space
[0077] The search space is a set of candidate PDCCHs. The search space may include a common search space and a UE-specific search space. The common search space is used to transmit related control information such as paging messages and system information. The UE-specific search space is used for control information related to a downlink shared channel (DL-SCH), an uplink shared channel (UL-SCH), etc. Of course, the common search space may be used to transmit control information belonging to a specific UE. This is not a limitation in the embodiments of the present application.
[0078]
number
[0079] Here, searchSpacesToAddModList indicates the list of newly added search spaces. SEQUENCE is used to indicate that the variable searchSpacesToAddModList is of array type (also referred to as list type). SIZE(1..10) means that the array (or list) contains 1 to 10 elements. OF SearchSpace means that each element in the array (or list) is a variable of type SearchSpace.
[0080] Here, searchSpacesToReleaseList indicates the list of search spaces to be deleted. SEQUENCE is used to indicate that the variable searchSpacesToReleaseList is of array type (also referred to as list type). SIZE(1..10) means that the array (or list) contains 1 to 10 elements. OF SearchSpaceId means that each element in the array (or list) is a variable of type SearchSpaceId.
[0081] OPTIONAL is used to indicate that the parameter is optional and not mandatory.
[0082] Need N is used to indicate that if a parameter (e.g., searchSpacesToAddModList or searchSpacesToReleaseList) is not present in a Reconfiguration message, any previously configured value for that parameter is deleted, which means that the parameter is not set.
[0083] For a specific description of the aforementioned signaling, please refer to the prior art, and the details will not be described here.
[0084] 5. Search Space Configuration Parameters
[0085] Optionally, the search space configuration parameters may be an aggregation level, an amount of candidate PDCCHs corresponding to the aggregation level, a monitoring cycle, a monitoring offset value, a time domain length, monitored symbols within a slot, or a type of search space.
[0086]
number
number
[0087] In relation to the above information elements, we briefly explain each configuration parameter of the search space below.
[0088] (1) monitoringSlotPeriodicityAndOffset is used to indicate the monitoring offset value and monitoring cycle of the search space.
[0089] In the present embodiment, one monitoring cycle can include at least one slot. In the aforementioned information element, a network device can select a parameter from sl1, sl2, ..., and sl12560 to configure a monitoring cycle. Here, sl1 indicates that one monitoring cycle includes one slot, and sl2 indicates that one monitoring cycle includes two slots. By analogy, sl12560 indicates that one monitoring cycle includes 12560 slots.
[0090] An INTEGER is used to indicate the monitoring offset value. The monitoring offset value is used to determine the start slot in the monitoring cycle in which the terminal performs monitoring. Specifically, the monitoring offset value is used to determine the slot in the monitoring cycle in which the terminal starts monitoring the search space. For example, if a monitoring cycle includes four slots and the monitoring offset value is 2, this indicates that the terminal starts monitoring the search space in the third slot of the monitoring cycle. Note that the monitoring offset value cannot be greater than the length of the monitoring cycle (i.e., the number of slots included in the monitoring cycle). For example, the monitoring cycle is sl2. An INTEGER(0..1) is used to indicate that the value range of the monitoring offset value is {0,1}. If the monitoring cycle is sl4, an INTEGER(0..3) is used to indicate that the value range of the monitoring offset value is {0,1,2,3}.
[0091] (2) Duration is used to indicate the time domain length of the search space. The time domain length of the search space is the amount of slots that the search space lasts for each occurrence, i.e., the amount of slots that the terminal needs to perform monitoring. For example, if the time domain length of the search space is 3 slots, the terminal needs to monitor the search space for 3 consecutive slots.
[0092] (3) monitoringSymbolsWithinSlot is used to indicate the starting symbol to be monitored within a slot. Note that the symbol is an orthogonal frequency division multiplexing (OFDM) symbol.
[0093] In a specific implementation, monitoringSymbolsWithinSlot is a 14-bit sequence. Each bit in the 14-bit sequence has a one-to-one correspondence with each OFDM symbol in the slot. The value of each bit in the 14-bit sequence is used to indicate whether the OFDM symbol corresponding to that bit is the start symbol. Specifically, if a bit in the 14-bit sequence has a value of 1, it indicates that the OFDM symbol corresponding to that bit is the start symbol. If a bit in the 14-bit sequence has a value of 0, it indicates that the OFDM symbol corresponding to that bit is not the start symbol. For example, if the 14-bit sequence is 1000000100000, then symbols #0 and #7 in the slot are the start symbols.
[0094] It should be noted that the last two bits of monitoringSymbolsWithinSlot may be ignored if the cyclic prefix (CP) of the symbol is set to the extended cyclic prefix with the bandwidth part (BWP) configured by the network device for the terminal.
[0095] It should be noted that the start symbol is the first symbol of multiple consecutive monitored symbols within a slot. A slot may include multiple start symbols. The terminal can determine the symbols to be monitored within a slot based on the start symbol set in monitoringSymbolsWithinSlot and the specific number of consecutive monitored symbols set in the control resource set (ControlResourceSet, CORESET). For example, if monitoringSymbolsWithinSlot is 1000000100000 and the specific number of consecutive monitored symbols set in the control resource set is 3, then symbol #0, symbol #1, symbol #2, symbol #7, symbol #8, and symbol #9 within the slot are the monitored symbols.
[0096] (4) nrofCandidates is used to configure the quantity of candidate PDCCHs corresponding to each of the multiple aggregation levels in the search space.
[0097] The aggregation level is the amount of CCEs included in one PDCCH. Multiple aggregation levels are defined in the protocol, such as 1, 2, 4, 8, and 16. For example, if the aggregation level of a search space is 16, this indicates that the PDCCH carried in the search space contains 16 CCEs.
[0098] It should be noted that unless otherwise specified, the number of candidate PDCCHs corresponding to each aggregation level of the search space configured by using nrofCandidates is applicable to any DCI format.
[0099] (5) searchSpaceType is used to indicate the type of the search space, ie, whether the search space is a common search space or a UE-specific search space.
[0100] When searchSpaceType is set to common, it indicates that the search space is a common search space. In this case, searchSpaceType may further include any one or more of the following parameters: dci-Format0-0-AndFormat1-0, dci-Format2-0, dci-Format2-1, dci-Format2-2, and dci-Format2-3. When any one of the above parameters is selected, it indicates that the terminal needs to monitor the DCI format corresponding to that parameter in the search space. When none of the above parameters is selected, it indicates that the terminal does not need to monitor the DCI format corresponding to that parameter in the search space. For example, when searchSpaceType includes dci-Format0-0-AndFormat1-0 but does not include other parameters, it indicates that the terminal needs to monitor DCI format 0-0 and DCI format 1-0 in the search space, but does not need to monitor DCI format 2-0, DCI format 2-1, DCI format 2-2, or DCI format 2-3.
[0101] When searchSpaceType is set to UE-specific, it indicates that the search space is a UE-specific search space. In this case, searchSpaceType may further include any one or more of the following parameters: formats0-0-And-1-0 and formats0-1-And-1-1. When any one of the above parameters is selected, it indicates that the terminal needs to monitor the DCI format corresponding to that parameter in the search space. When none of the above parameters is selected, it indicates that the terminal does not need to monitor the DCI format corresponding to that parameter in the search space. When formats0-0-And-1-0 is set in searchSpaceType but formats0-1-And-1-1 is not set, it indicates that the terminal needs to monitor DCI format 0-0 and DCI format 1-0 in the search space, but does not need to monitor DCI format 0-1 and DCI format 1-1.
[0102] 6. DRX
[0103] The DRX mechanism includes two modes: IDLE DRX and connected DRX. The two types of DRX are implemented differently. The embodiments in this application mainly describe connected DRX (C-DRX).
[0104] The DRX mechanism configures one DRX cycle for a terminal in RRC connected mode. As shown in Figure 1, a DRX cycle includes an "on duration" and a "DRX opportunity." During the "on duration," the terminal monitors and receives a downlink control channel (e.g., PDCCH). During the "DRX opportunity," the terminal does not receive data from the downlink channel to save power.
[0105] DRX cycles can be classified into long DRX cycles and short DRX cycles. Generally, the long DRX cycle is an integer multiple of the short DRX cycle. It should be noted that the long DRX cycle is mandatory by default, and the short DRX cycle is optional. Specifically, when a DRX mechanism is used, the network device must configure the long DRX cycle for the terminal, and the network device may or may not configure the short DRX cycle for the terminal. The signaling used to configure the long DRX cycle or the short DRX cycle may be RRC signaling.
[0106] Optionally, the RRC signaling used to configure the long DRX cycle includes at least the following parameters: time length of the long DRX cycle, time length of the on-duration, etc.
[0107] Optionally, the RRC signaling used to configure the short DRX cycle includes at least the following parameters: the time length of the short DRX cycle, the time length of drx-ShortCycleTimer, etc.
[0108] If the network device configures a short DRX cycle for the terminal, the terminal starts the timer drx-ShortCycleTimer when it uses the short DRX cycle. When the timer drx-ShortCycleTimer expires, the terminal switches from using the short DRX cycle to using the long DRX cycle. The timing length of the timer drx-ShortCycleTimer is typically an integer multiple of the short DRX cycle.
[0109] Furthermore, the network device may send media access control (MAC) control element (CE) signaling to the terminal to instruct the terminal to switch between the long DRX cycle and the short DRX cycle.
[0110] In the embodiments of the present application, the terminal's use of the long DRX cycle can be understood as the terminal using the long DRX cycle or the terminal switching to a long DRX cycle mode. It can be understood that when the terminal switches to a long DRX cycle mode, the first long DRX cycle may not actually start.
[0111] In the embodiments of the present application, the terminal's use of the short DRX cycle can be understood as the terminal using the short DRX cycle or the terminal switching to the short DRX cycle. It can be understood that when the terminal switches to a short DRX cycle mode, the first short DRX cycle may not actually start.
[0112] 7. DRX cycles associated with power-saving signals, and power-saving signals associated with DRX cycles
[0113] The DRX cycle associated with the power saving signal is the DRX cycle of the terminal behavior indicated by the power saving signal.
[0114] The power saving signal associated with the DRX cycle is a power saving signal that indicates the behavior of the terminal during the DRX cycle.
[0115] Typically, a power saving signal is transmitted a few slots or a few milliseconds before the DRX cycle associated with the power saving signal. For example, if a terminal receives power saving signal #1 N slots or M milliseconds before DRX cycle #1, then the DRX cycle associated with power saving signal #1 is DRX cycle #1, and the power saving signal associated with DRX cycle #1 is power saving signal #1.
[0116] The behavior of the terminal includes: whether the terminal detects the PDCCH, whether the terminal switches between BWPs, whether the terminal measures and reports the channel state, and so on.
[0117] The following describes the use of long and short DRX cycles in a practical application scenario. For example, when a user uses a mobile phone to watch video, the mobile phone may use a short DRX cycle, which may be 40 ms long. That is, the mobile phone monitors scheduling information transmitted from a base station every 40 ms (i.e., during the duration of the short DRX cycle). After receiving the scheduling information, the mobile phone determines the time-frequency resource location where video data will be received based on the scheduling information transmitted from the base station and retrieves the video data at the corresponding time-frequency resource location. When the mobile phone completes buffering the video data and no longer needs to receive video data, the mobile phone does not receive scheduling information transmitted from the base station for a certain period of time (e.g., several short DRX cycles). If the period during which the mobile phone does not receive scheduling information exceeds a preset threshold, the mobile phone can switch from using the short DRX cycle to using the long DRX cycle. The length of the long DRX cycle used by the mobile phone may be 160 ms. In this way, the mobile phone monitors scheduling information transmitted from the base station every 160 ms. Compared with the short DRX cycle used by the mobile phone, the long DRX cycle used by the mobile phone can increase the sleep time of the mobile phone, thereby reducing the power consumption of the mobile phone.
[0118] The above is a brief explanation of the terms used in the embodiments of the present application, and the details will not be explained again below.
[0119] Currently, the monitoring cycle of the search space is fixed. Therefore, if a network device configures only one search space to be used to transmit a power-saving signal for a terminal, the search space cannot be applied to both the long DRX cycle and the short DRX cycle. For example, assume that the monitoring cycle of the search space is the same as the long DRX cycle. Generally, the long DRX cycle is an integer multiple of the short DRX cycle. Therefore, the monitoring cycle of the search space is also an integer multiple of the short DRX cycle. Therefore, when a terminal uses the short DRX cycle, there may be no opportunity to monitor the search space in the short DRX cycle, and as a result, the terminal may fail to detect the power-saving signal in the short DRX cycle.
[0120] As shown in Figure 2, the monitoring cycle of the search space is the same as the long DRX cycle, and the cycle length of the long DRX cycle is twice that of the short DRX cycle. In this case, when the terminal switches from using the long DRX cycle to using the short DRX cycle, it finds that there are no monitoring opportunities in the search space in the first short DRX cycle. Therefore, the terminal cannot properly monitor the power-saving signal in the short DRX cycle.
[0121] Alternatively, the network device may configure two search spaces to be used to transmit a power-saving signal for a terminal, with the monitoring cycle of one search space corresponding to the long DRX cycle and the monitoring cycle of the other search space corresponding to the short DRX cycle. However, according to the prior art, when the network configures two search spaces for a terminal, the terminal monitors both search spaces regardless of whether the terminal uses the long DRX cycle or the short DRX cycle. However, the power-saving signal is used to indicate whether the terminal is in a sleep state or a normal working state during the on-duration of the DRX cycle associated with the power-saving signal, and the power-saving signal only needs to be transmitted in the search space corresponding to the DRX cycle currently being used by the terminal. For example, in FIG. 2, the cycle length of the long DRX cycle is twice the cycle length of the short DRX cycle. If the terminal uses the long DRX cycle, in addition to monitoring the search space corresponding to the long DRX cycle once before the on-duration of the long DRX cycle, the terminal also needs to monitor the search space corresponding to the short DRX cycle twice. However, the power saving signal only needs to be transmitted in the search space corresponding to the long DRX cycle, and therefore, even if the terminal monitors the search space corresponding to the short DRX cycle, the terminal will not be able to receive the power saving signal. Similarly, if the terminal uses a short DRX cycle, before the on duration of the short DRX cycle, in addition to monitoring the search space corresponding to the short DRX cycle, the terminal will also need to monitor the search space corresponding to the long DRX cycle. However, the power saving signal only needs to be transmitted in the search space corresponding to the short DRX cycle, and therefore, even if the terminal monitors the search space corresponding to the long DRX cycle, the terminal will not be able to receive the power saving signal. As a result, the power consumption of the terminal will increase.
[0122] In order to solve the above technical problems, the embodiments of the present application provide the following technical solutions, for specific contents please refer to the following contents:
[0123] The technical solutions provided in the embodiments of the present application may be applied to various communication systems, such as new radio (NR) communication systems using fifth-generation (5G) communication technologies, future evolved systems, or multiple convergent communication systems. The technical solutions provided in the present application may be applied to multiple application scenarios, such as machine-to-machine (M2M), macro-micro communication, enhanced mobile broadband (eMBB), ultra-reliable & low latency communication (uRLLC), and massive machine-type communication (mMTC). These scenarios may include, but are not limited to, communication scenarios between communication devices, communication scenarios between network devices, and communication scenarios between a network device and a communication device. Hereinafter, the technical solutions will be described by taking an example in which the technical solutions are applied to a communication scenario between a network device and a terminal.
[0124] Furthermore, the network architectures and service scenarios described in the embodiments of the present application are intended to more clearly explain the technical solutions in the embodiments of the present application, and do not constitute limitations on the technical solutions provided in the embodiments of the present application. Those skilled in the art can understand that with the evolution of network architectures and the emergence of new service scenarios, the technical solutions provided in the embodiments of the present application can also be applied to similar technical problems.
[0125] 3 is a schematic diagram of the architecture of a communication system to which the technical solution provided in the present application is applicable. The communication system may include one or more network devices (FIG. 3 shows only one network device) and one or more terminals (FIG. 3 shows only one terminal).
[0126] The network device may be a base station, a base station controller, etc. in wireless communication. The base station may include various types of base stations such as a micro base station (which may also be referred to as a small cell), a macro base station, a relay node, and an access point. This is not particularly limited in the embodiment of the present application. In the embodiment of the present application, the base station may be a base transceiver station (BTS) in a global system for mobile communications (GSM) or code division multiple access (CDMA), a Node B in wideband code division multiple access (WCDMA), an evolved Node B (eNB or e-NodeB) in long term evolution (LTE), an eNB in the Internet of Things (IoT) or narrowband Internet of Things (NB-IoT), or a base station in a future 5G mobile communication network or a future evolved public land mobile network (PLMN). This is not limited in the embodiments of the present application. In the embodiments of the present application, the apparatus configured to realize the functions of the network device may be a network device, or may be an apparatus capable of supporting the network device in realizing its functions, such as a chip system. In the embodiments of the present application, an example in which the apparatus configured to realize the functions of the network device is a network device is used to describe the technical solutions provided in the embodiments of the present application.
[0127] A network device described herein, such as a base station, typically includes a baseband unit (BBU), a remote radio unit (RRU), an antenna, and a feeder connecting the RRU and the antenna. The BBU is configured to perform signal modulation. The RRU is configured to perform radio frequency processing. The antenna is configured to convert between pilot waves on the cable and radio waves in the air. A distributed base station significantly shortens the length of the feeder between the RRU and the antenna, thereby reducing signal loss and feeder costs. The RRU and antenna are relatively small and can be installed anywhere, allowing for more flexible network planning. The RRU may also be remotely located. Additionally, all BBUs may be centralized and located in a central office (CO). This centralized approach significantly reduces the size of the base station equipment and the energy consumption of auxiliary devices, especially air conditioners, thereby significantly reducing carbon emissions. In addition, after the distributed BBUs are integrated into the BBU baseband pool, they can be centrally managed and scheduled, allowing for more flexible resource allocation. In this mode, all physical base stations evolve into virtual base stations. All virtual base stations within the BBU baseband pool share information such as the data being transmitted and received from users and the channel quality, and cooperate with each other to perform joint scheduling.
[0128] In some deployments, a base station may include a centralized unit (CU) and a distributed unit (DU). The base station may also include an active antenna unit (AAU). The CU implements some base station functions, and the DU also implements some base station functions. For example, the CU is responsible for processing non-real-time protocols and services and implements radio resource control (RRC) layer and packet data convergence protocol (PDCP) layer functions. The DU is responsible for processing physical layer protocols and real-time services and implements radio link control (RLC) layer, media access control (MAC) layer, and physical (PHY) layer functions. The AAU implements some physical layer processing functions, radio frequency processing, and active antenna-related functions. RRC layer information ultimately becomes or is converted from PHY layer information. Therefore, in this architecture, higher layer signaling, such as RRC layer signaling or PDCP layer signaling, may also be considered to be transmitted by the DU or by the DU and AAU. It may be understood that a network device may be a device including one or more of a CU node, a DU node, and an AAU node. Furthermore, a CU may be classified as a network device within a RAN, or a CU may be classified as a network device in a core network (CN). This is not a limitation in the present application.
[0129] A terminal is a device with wireless transceiver capabilities. The terminal may be deployed on land, including indoor devices, outdoor devices, handheld devices, or vehicle-mounted devices, on water (e.g., on a ship), or in the air (e.g., on an aircraft, balloon, or satellite). The terminal device may be user equipment (UE). The UE may include a handheld device, a vehicle, an in-vehicle device, a wearable device, or a computing device with wireless communication capabilities. For example, the UE may be a mobile phone, a tablet computer, or a computer with wireless transceiver capabilities. Alternatively, the terminal device may be a virtual reality (VR) terminal device, an augmented reality (AR) terminal device, a wireless terminal for industrial control equipment, a self-propelled wireless terminal, a wireless terminal for remote medical equipment, a wireless terminal for smart grids, a wireless terminal for smart cities, a wireless terminal for smart homes, etc. In the embodiments of the present application, a device configured to implement the functions of a terminal may be a terminal, or may be a device capable of supporting a terminal in realizing its functions, such as a chip system. In the embodiments of the present application, the chip system may include a chip, or may include a chip and other discrete components. In the embodiments of the present application, an example in which a device configured to implement the functions of a terminal is a terminal is used to describe the technical solutions provided in the embodiments of the present application.
[0130] As shown in FIG. 4, the communication device includes at least one processor 101, a communication line 102, a memory 103, and at least one communication interface 104.
[0131] The processor 101 may be a general-purpose central processing unit (CPU), a microprocessor, an application-specific integrated circuit (ASIC), or one or more integrated circuits configured to control program execution of the present solutions.
[0132] Communication lines 102 may include paths for transferring information between the above-mentioned components.
[0133] The communication interface 104 may use any device such as a transceiver configured to communicate with other devices or communication networks, such as Ethernet, RAN, or wireless local area networks (WLAN).
[0134] Memory 103 may be a read-only memory (ROM) or other type of static storage device capable of storing static information or instructions, or a random access memory (RAM) or other type of dynamic storage device capable of storing information or instructions. Alternatively, memory 103 may be an electrically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disk storage, optical disk storage (including compact optical disks, laser disks, optical disks, digital versatile disks, Blu-ray disks, etc.), a magnetic disk storage medium or other magnetic storage device, or any other medium capable of carrying or storing program code in the form of instructions or data structures and accessible by a computer, although this is not a limitation herein. The memory may also exist independently and be connected to the processor via communication line 102. The memory may alternatively be integrated with the processor. The memory provided in this embodiment of the present application may typically be non-volatile. The memory 103 is configured to store computer-executable instructions for implementing the solution of the present application, and the processor 101 controls the execution of the computer-executable instructions. The processor 101 is configured to execute the computer-executable instructions stored in the memory 103 to implement the method provided in the embodiment of the present application.
[0135] Optionally, the computer-executable instructions in the embodiments of the present application may be referred to as application program code, which is not specifically limited in the embodiments of the present application.
[0136] In a particular implementation, in an embodiment, processor 101 may include one or more CPUs, such as CPU 0 and CPU 1 in FIG.
[0137] In a specific implementation, in an embodiment, a communications device may include multiple processors, such as processor 101 and processor 107 in FIG. 4. Each processor may be a single-core (single-CPU) processor or a multi-core (multi-CPU) processor. A processor in this case may be one or more devices, circuits, and / or processing cores configured to process data (e.g., computer program instructions).
[0138] In a specific implementation, in an embodiment, the communication device may further include an output device 105 and an input device 106. The output device 105 communicates with the processor 101 and can display information in a variety of ways. For example, the output device 105 may be a liquid crystal display (LCD), a light emitting diode (LED) display device, a cathode ray tube (CRT) display device, or a projector. The input device 106 communicates with the processor 101 and can receive input from a user in a variety of ways. For example, the input device 106 may be a mouse, a keyboard, a touchscreen device, or a sensor device.
[0139] Hereinafter, the technical solutions provided in the embodiments of the present application will be described with reference to the accompanying drawings of this specification.
[0140] 5 illustrates a search space monitoring method according to an embodiment of the present application. The method includes the following steps:
[0141] S101: When a terminal uses a long DRX cycle, a network device transmits a power saving signal in a first search space and does not transmit a power saving signal in a second search space.
[0142] Optionally, step S101 may be expressed as follows: the network device transmits a power saving signal associated with a long DRX cycle in a first search space, and does not transmit a power saving signal associated with a long DRX cycle in a second search space.
[0143] The first search space and the second search space are two different search spaces that are configured by the network device and are used to carry power saving signals, where the first search space corresponds to a long DRX cycle and the second search space corresponds to a short DRX cycle.
[0144] Optionally, the network device may explicitly enable the terminal to know the search spaces used to carry the power-saving signal. For example, the network device may transmit first information to the terminal, the first information including identifiers of one or more search spaces used to carry the power-saving signal.
[0145] Optionally, the network device may implicitly enable the terminal to know the search space used to carry the power-saving signal. For example, the network device may transmit search space configuration information to the terminal. If the search space configuration information includes a DCI format corresponding to the power-saving signal, the search space is the search space for carrying the power-saving signal.
[0146] In this embodiment of the present application, the power saving signal is used to indicate power saving information. Optionally, the power saving information includes at least one of the following:
[0147] (1) Whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal: The power saving signal may be used to instruct the terminal to monitor the PDCCH in the DRX cycle associated with the power saving signal. Alternatively, the power saving signal may be used to instruct the terminal not to monitor the PDCCH in the DRX cycle associated with the power saving signal. "Whether to monitor the PDCCH in the DRX cycle" may also be equivalently expressed as "whether to monitor the PDCCH during the DRX on duration."
[0148] It can be understood that when a power saving signal is used to instruct a terminal not to monitor the PDCCH in a DRX cycle associated with the power saving signal, the terminal does not monitor the PDCCH, thereby reducing power consumption of the terminal. The PDCCH in this case includes at least a PDCCH used to schedule uplink data (PUSCH) or downlink data (PDSCH), i.e., a PDCCH carrying DCI format 0-0, DCI format 0-1, DCI format 1-0, and DCI format 1-1. The PDCCH may further include a PDCCH with another function, for example, a PDCCH carrying DCI format 2-0 and / or DCI format 2-1 and / or DCI format 2-2 and / or DCI format 2-3.
[0149] (2) Minimum scheduling time interval indication: The minimum scheduling time interval indication may be a minimum K0 value or a minimum K2 value. K0 is the time interval between the slot in which the PDCCH is located and the slot in which the PDSCH scheduled by using the PDCCH is located. K2 is the time interval between the slot in which the PDCCH is located and the slot in which the PDSCH scheduled by using the PDCCH is located.
[0150] (3) Channel State Information (CSI) Measurement Trigger Indication: The CSI measurement trigger indication is used to trigger the terminal to perform CSI-RS measurement and CSI reporting.
[0151] (4) Bandwidth part (BWP) switching instruction: The BWP switching instruction is used to instruct the terminal to switch between BWPs. In other words, the BWP switching instruction is used to instruct the terminal to switch from a first BWP to a second BWP.
[0152] It can be understood that the first BWP is the BWP used by the terminal before switching, and the second BWP is the BWP used by the terminal after switching. The second BWP may be preset or may be determined by the terminal based on a BWP switching instruction, which is not limited in this embodiment of the present application.
[0153] (5) The search space and / or control resource set (CORESET) that the terminal needs to monitor during the DRX cycle associated with the power saving signal.
[0154] For example, a network device may configure search space #1, search space #1, and search space #3 for a terminal, and a power saving signal may indicate that the terminal should monitor search space #1 and search space #3.
[0155] For example, a network device may configure CORESET #1, CORESET #2, and CORESET #3 for a terminal, and the power saving signal may indicate that the terminal should monitor CORESET #1.
[0156] It can be appreciated that with respect to multiple search spaces and / or CORESETs configured by a network device for a terminal, the power saving signal can instruct the terminal to monitor only a portion of the search space and / or CORESET, reducing the amount of search space and / or CORESET that the terminal needs to monitor, thereby reducing the power consumption of the terminal.
[0157] (6) A monitoring cycle in which the terminal monitors the PDCCH during a DRX cycle related to a power saving signal.
[0158] (7) Skipping duration used by the terminal in the DRX cycle associated with the power saving signal: The skipping duration is the duration during which the terminal skips monitoring the PDCCH. The skipping duration may include one or more slots / subframes / PDCCH monitoring occasions. This is not limited to this embodiment of the present application.
[0159] The above are examples of power saving information, and the embodiment of the present application is not limited to these.
[0160] Optionally, the power saving signal may contain more than one information element, with each information element being used to carry one piece of power saving information. In this way, the power saving signal may simultaneously indicate multiple pieces of power saving information.
[0161] Optionally, the power saving signal may include an index, which may be implemented using one or more bits. The power saving information indicated using the power saving signal depends on the value of the index included in the power saving signal. That is, the value of the index corresponds to one or more pieces of power saving information.
[0162]
number
[0163] S102: When using a long DRX cycle, the terminal monitors a power saving signal in a first search space and does not monitor a power saving signal in a second search space.
[0164] Optionally, step S102 may also be expressed as follows: the terminal monitors power saving signals associated with long DRX cycles in the first search space, and does not monitor power saving signals associated with short DRX cycles in the second search space.
[0165] Optionally, the terminal may implicitly determine the first and second search spaces. For example, if a network device configures two search spaces to be used for transmitting power-saving signals for the terminal, the terminal may determine the first and second search spaces based on the monitoring cycles of the two search spaces. For example, the search space with the longer monitoring cycle of the two search spaces may be used as the first search space, and the search space with the shorter monitoring cycle of the two search spaces may be used as the second search space. Alternatively, the search space with the same monitoring cycle as the long DRX cycle may be used as the first search space, and the search space with the same monitoring cycle as the short DRX cycle may be used as the second search space.
[0166] Optionally, the terminal may explicitly determine the first search space and the second search space. For example, the terminal may receive first configuration information transmitted from a network device, and the first configuration information may be used to set information related to a power saving signal. The first configuration information may include first indication information and second indication information. The first indication information may be used to indicate an identifier / index value / name of the first search space, and the second indication information may be used to indicate an identifier / index value / name of the second search space. In this manner, the terminal may determine the first search space based on the first indication information and the second search space based on the second indication information. For example, the first indication information may be SearchSpaceIdForLongCycle, which may be used to indicate an identifier / index value / name of a search space that needs to be monitored when the terminal uses a long DRX cycle, and the second indication information may be SearchSpaceIdForShortCycle, which may be used to indicate an identifier / index value / name of a search space that needs to be monitored when the terminal uses a short DRX cycle.
[0167] Optionally, the first configuration information may further include a first radio network temporary identifier (RNTI), where the first RNTI is used to identify a terminal that receives the power saving signal. In this way, after a terminal knows the first RNTI of the terminal, the terminal can determine the power saving signal to be transmitted to the terminal based on the first RNTI of the terminal and avoid erroneously receiving a power saving signal transmitted to another terminal. It may be understood that the first RNTI may have another name, such as a power saving RNTI (PS-RNTI), which is not limited to this embodiment of the present application.
[0168] In this embodiment of the present application, the monitoring cycle of the first search space may be the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space may be the same as the short DRX cycle in terms of time length. In this way, the monitoring occasions of the first search space and the second search space can occur at appropriate positions in the DRX cycle (e.g., before the on-duration of the DRX cycle), and the terminal can normally monitor the power saving signal in the first search space / second search space.
[0169] Indeed, the monitoring cycle of the first search space may alternatively differ in time length from the long DRX cycle, and the monitoring cycle of the second search space may alternatively differ in time length from the short DRX cycle, but this embodiment of the present application is not limited thereto.
[0170] In this embodiment of the present application, the monitoring offset value of the first search space may be the same as the monitoring offset value of the second search space, or alternatively, the monitoring offset value of the first search space may be different from the monitoring offset value of the second search space.
[0171] It should be noted that when the terminal uses a long DRX cycle, the network device may decide whether to transmit a power saving signal in the first search space based on the actual conditions. However, regardless of whether the network device transmits a power saving signal, the terminal is required to monitor the power saving signal in the first search space.
[0172] S103: If the terminal uses a short DRX cycle, the network device transmits a power saving signal in the second search space and does not transmit a power saving signal in the first search space.
[0173] Optionally, step S103 may be expressed as follows: the network device transmits a power saving signal associated with a short DRX cycle in the second search space, and does not transmit a power saving signal associated with a short DRX cycle in the first search space.
[0174] S104: When using a short DRX cycle, the terminal monitors a power saving signal in the second search space and does not monitor a power saving signal in the first search space.
[0175] Optionally, step S104 may be expressed as follows: the terminal monitors a power saving signal associated with a short DRX cycle in the second search space, and does not monitor a power saving signal associated with a short DRX cycle in the first search space.
[0176] It should be noted that when the terminal uses a short DRX cycle, the network device may decide whether to transmit a power saving signal in the second search space based on the actual conditions. However, regardless of whether the network device transmits a power saving signal, the terminal is required to monitor the power saving signal in the second search space.
[0177] Based on the technical solution shown in FIG. 5, when the terminal uses a long DRX cycle, the terminal monitors power-saving signals in the first search space but does not monitor power-saving signals in the second search space. When the terminal uses a short DRX cycle, the terminal monitors power-saving signals in the second search space but does not monitor power-saving signals in the first search space. In this way, the terminal can normally monitor power-saving signals in the search space in a situation where power-saving signals can be applied to both the long DRX cycle and the short DRX cycle. Furthermore, regardless of the long DRX cycle or the short DRX cycle, the terminal only needs to monitor power-saving signals in one search space. As a result, the amount of search space that the terminal needs to monitor is reduced, and the power consumption of the terminal is reduced.
[0178] The embodiment shown in FIG. 5 will now be described using an example in conjunction with FIG.
[0179] The terminal enters the long DRX cycle mode before long DRX cycle #1. Therefore, the network device transmits power saving signals within the first search space at monitoring occasion #1 and monitoring occasion #2 of the first search space. Correspondingly, the terminal monitors power saving signals within the first search space at monitoring occasion #1 and monitoring occasion #2 of the first search space. The terminal enters the short DRX cycle mode before short DRX cycle #1. Therefore, the network device transmits power saving signals at monitoring occasion #1, monitoring occasion #2, monitoring occasion #3, and monitoring occasion #4 of the second search space. Correspondingly, the terminal monitors power saving signals at monitoring occasion #1, monitoring occasion #2, monitoring occasion #3, and monitoring occasion #4 of the second search space.
[0180] In other words, the first search space is used to carry a power saving signal associated with a long DRX cycle, and the second search space is used to carry a power saving signal associated with a short DRX cycle. Long DRX cycle #1 is therefore used as an example. The network device transmits a power saving signal associated with long DRX cycle #1 within the first search space at monitoring occasion #1 of the first search space. Correspondingly, the terminal monitors the power saving signal associated with long DRX cycle #1 within the first search space at monitoring occasion #1 of the first search space. Short DRX cycle #1 is also used as an example. The network device transmits a power saving signal associated with short DRX cycle #1 within the second search space at monitoring occasion #1 of the second search space. Correspondingly, the terminal monitors the power saving signal associated with short DRX cycle #1 within the second search space at monitoring occasion #1 of the second search space.
[0181] The following describes the technical solutions of the present application with reference to embodiments of several practical application scenarios.
[0182] For example, referring to FIG. 7, when a user uses a mobile phone to watch online videos, the service latency requirement is relatively low. In this case, the mobile phone may use a long DRX cycle, which may be 640 ms long. That is, the mobile phone monitors scheduling information transmitted from the base station every 640 ms (i.e., the duration of the short DRX cycle). When the mobile phone has completed buffering video data and no longer needs to receive video data, the mobile phone does not need to receive scheduling information transmitted from the base station for a certain period of time (e.g., several long DRX cycles). In this case, the base station may transmit a power-saving signal to the mobile phone to indicate that the mobile phone does not need to monitor scheduling information during one or more long DRX cycles. Specifically, the base station may transmit a power-saving signal in a first search space but not in a second search space. Correspondingly, the mobile phone may monitor the power-saving signal in the first search space but not in the second search space.
[0183] For example, referring to FIG. 8, when a user uses a mobile phone to play an online game, the service delay requirement is relatively high. In this case, the mobile phone may use a short DRX cycle, and the length of the short DRX cycle may be 40 ms. That is, the mobile phone monitors scheduling information transmitted from a base station every 40 ms (i.e., the on duration of the short DRX cycle). During the game loading process, the mobile phone does not need to perform data interaction with the base station for the time being. In this case, the base station may send a power-saving signal to the mobile phone to indicate that the mobile phone does not need to monitor scheduling information in one or more short DRX cycles. Specifically, the base station may send a power-saving signal in the second search space but not in the first search space. Correspondingly, the mobile phone may monitor the power-saving signal in the second search space but not in the first search space.
[0184] 9 illustrates another search space monitoring method according to an embodiment of the present application. The method includes the following steps:
[0185] S201: When the terminal uses a long DRX cycle, the network device transmits a power saving signal in a search space based on a first configuration parameter set of the search space.
[0186] Optionally, step S201 may be expressed as follows: the network device transmits, in the search space, a power saving signal associated with a long DRX cycle based on a first set of configuration parameters of the search space.
[0187] For a related description of the power saving signal, please refer to the description of the embodiment shown in Figure 5. The details will not be described again here.
[0188] In this embodiment of the present application, the first set of configuration parameters corresponds to a long DRX cycle. The monitoring cycle in the first set of configuration parameters may be the same as the long DRX cycle in terms of time length. Alternatively, the monitoring cycle in the first set of configuration parameters may differ from the long DRX cycle in terms of time length.
[0189] The search space is a search space used to carry a power saving signal. For how the network device sets the search space used to carry a power saving signal for the terminal, please refer to the relevant description in the embodiment shown in Figure 5. The details will not be described again here.
[0190] S202: When using a long DRX cycle, the terminal monitors a power saving signal within the search space based on a first set of configuration parameters of the search space.
[0191] Optionally, step S202 may be expressed as follows: the terminal monitors a power saving signal associated with a long DRX cycle in the search space based on a first set of configuration parameters of the search space.
[0192] It should be noted that when the terminal uses a long DRX cycle, the network device can determine whether to transmit a power-saving signal in the search space based on actual conditions. However, regardless of whether the network device transmits a power-saving signal, the terminal is required to monitor the search space for a power-saving signal based on the first set of configuration parameters for the search space.
[0193] S203: If the terminal uses a short DRX cycle, the network device transmits a power saving signal in the search space based on a second configuration parameter set of the search space.
[0194] Optionally, step S203 may be expressed as follows: the network device transmits a power saving signal associated with a short DRX cycle in the search space based on a second set of configuration parameters of the search space.
[0195] In this embodiment of the present application, the second set of configuration parameters corresponds to a short DRX cycle. The monitoring cycle in the second set of configuration parameters may be the same in time length as the short DRX cycle. Alternatively, the monitoring cycle in the second set of configuration parameters may differ in time length from the short DRX cycle.
[0196] It should be noted that the first set of configuration parameters is different from the second set of configuration parameters. Specifically, the first set of configuration parameters is different from the second set of configuration parameters in at least one configuration parameter. For example, the monitoring cycle of the first set of configuration parameters is different from the monitoring cycle of the second set of configuration parameters.
[0197] Optionally, the monitoring offset value in the first set of configuration parameters is different from the monitoring offset value in the second set of configuration parameters. Alternatively, the monitoring offset value in the first set of configuration parameters is the same as the monitoring offset value in the second set of configuration parameters.
[0198] Optionally, the first and second configuration parameters are set in at least two ways:
[0199] Method 1: A network device transmits search space configuration information to a terminal, and the terminal receives the search space configuration information transmitted from the network device. The search space configuration information includes a first configuration parameter set and a second configuration parameter set.
[0200]
number
[0201] Here, monitoringSlotPeriodicityAndOffsetForLongDRX is used to indicate the monitoring cycle and monitoring offset value corresponding to the long DRX cycle, i.e., the monitoring cycle and monitoring offset value in the first configuration parameter set.
[0202] The monitoringSlotPeriodicityAndOffsetForShortDRX parameter is used to indicate the monitoring cycle and monitoring offset value corresponding to the short DRX cycle, i.e., the monitoring cycle and monitoring offset value in the second configuration parameter set.
[0203] A Cond Setup is used to indicate that the parameters corresponding to it are required when a new search space is created. Otherwise, the parameters corresponding to it are optional. Also, the parameters corresponding to it require to be retained after being set.
[0204] The parameters corresponding to Cond Setup may be monitoringSlotPeriodicityAndOffsetForLongDRX and monitoringSlotPeriodicityAndOffsetForShortDRX.
[0205] It should be noted that if the target configuration parameter in the first configuration parameter set is the same as the target configuration parameter in the second configuration parameter set, the search space configuration information can include only one target configuration parameter, thereby reducing the signaling overhead of the search space configuration information. In this case, the target configuration parameter included in the search space configuration information is applicable to both the first configuration parameter set and the second configuration parameter set.
[0206] The target configuration parameter may be any configuration parameter of the search space, such as the time domain length of the search space or the type of the search space, which is not limited in this embodiment of the present application.
[0207] Method 2: The network device transmits search space configuration information to the terminal, so that the terminal receives the search space configuration information transmitted from the network device.Furthermore, the network device transmits instruction information to the terminal, so that the terminal receives the instruction information transmitted from the network device.
[0208] The search space configuration information is used to indicate parameters other than the monitoring cycle and the monitoring offset value in the first configuration parameter group and parameters other than the monitoring cycle and the monitoring offset value in the second configuration parameter group.
[0209] The indication information is used to indicate the monitoring cycle and monitoring offset value in the first configuration parameter set and the monitoring cycle and monitoring offset value in the second configuration parameter set. The indication information includes monitoringSlotPeriodicityAndOffsetForLongDRX and monitoringSlotPeriodicityAndOffsetForShortDRX. Optionally, the indication information may be carried in the configuration information of the power saving signal (i.e., the first configuration information above).
[0210] When the search space configuration information uses the SearchSpace IE, it can be understood that the SearchSpace IE does not include the monitoringSlotPeriodicityAndOffset, or the monitoringSlotPeriodicityAndOffset included in the SearchSpace IE is not read by the terminal. In other words, the terminal does not determine the monitoring cycle and monitoring offset value of the search space based on the monitoringSlotPeriodicityAndOffset included in the SearchSpace IE.
[0211] S204: When using a short DRX cycle, the terminal monitors a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0212] Optionally, step S204 may be expressed as follows: the terminal monitors, in the search space, a power saving signal associated with a short DRX cycle based on a second set of configuration parameters of the search space.
[0213] It should be noted that when the terminal uses a short DRX cycle, the network device can determine whether to transmit a power-saving signal in the search space based on actual conditions. However, regardless of whether the network device transmits a power-saving signal, the terminal is required to monitor the search space for a power-saving signal based on the second configuration parameter set for the search space.
[0214] Based on the technical solution shown in Fig. 9, when a long DRX cycle is used, the terminal uses a first set of configuration parameters in the search space to satisfy the terminal's conditions for the period for monitoring a power saving signal in the long DRX cycle. When a short DRX cycle is used, the terminal uses a second set of configuration parameters in the search space to satisfy the terminal's conditions for the period for monitoring a power saving signal in the short DRX cycle. In other words, in a situation where a power saving signal may be applied to both the long DRX cycle and the short DRX cycle, the terminal may use configuration parameter sets corresponding to the DRX cycles for different DRX cycles to ensure that the terminal can successfully monitor the power saving signal in the search space.
[0215] The embodiment shown in FIG. 9 will now be described using an example in conjunction with FIG.
[0216] The terminal enters the long DRX cycle mode before long DRX cycle #1. Therefore, the network device determines based on the first configuration parameter set of the search space (e.g., the monitoring cycle in the first configuration parameter set is a first value) that the monitoring occasions of the search space are monitoring occasion #1 and monitoring occasion #2. As a result, the network device transmits power saving signals within the search space at monitoring occasion #1 and monitoring occasion #2 of the search space. Correspondingly, the terminal monitors power saving signals within the search space at monitoring occasion #1 and monitoring occasion #2 of the search space. The terminal enters the short DRX cycle mode before short DRX cycle #1. Therefore, the network device determines based on the second set of configuration parameters of the search space (e.g., the monitoring cycle in the second set of configuration parameters is a first value) that the monitoring occasions of the search space are monitoring occasion #3, monitoring occasion #4, monitoring occasion #5, and monitoring occasion #6, and as a result, the network device transmits power saving signals within the search space at monitoring occasion #3, monitoring occasion #4, monitoring occasion #5, and monitoring occasion #6 of the search space. Correspondingly, the terminal monitors power saving signals within the search space at monitoring occasion #3, monitoring occasion #4, monitoring occasion #5, and monitoring occasion #6 of the search space.
[0217] In other words, using long DRX cycle #2 as an example, the network device determines that the monitoring occasion of the search space is monitoring occasion #2 based on a first set of configuration parameters for the search space (e.g., the monitoring cycle in the first set of configuration parameters is a first value), and as a result, the network device transmits a power saving signal associated with long DRX cycle #2 within the search space at monitoring occasion #2 of the search space. Correspondingly, the terminal monitors the power saving signal associated with long DRX cycle #2 within the search space at monitoring occasion #2 of the search space. The network device determines that the monitoring occasion of the search space is monitoring occasion #4 based on a second set of configuration parameters for the search space (e.g., the monitoring cycle in the first set of configuration parameters is a first value), and as a result, the network device transmits a power saving signal associated with short DRX cycle #2 within the search space at monitoring occasion #4 of the search space. Accordingly, the terminal monitors the search space for a power saving signal associated with short DRX cycle #2 at search space monitoring occasion #4.
[0218] The solution will be described below with reference to some practical application scenarios.
[0219] For example, referring to FIG. 7, when a user uses a mobile phone to watch online videos, the service latency requirement is relatively low. In this case, the mobile phone may use a long DRX cycle, which may be 640 ms long. That is, the mobile phone monitors scheduling information transmitted from the base station every 640 ms (i.e., the on duration of the short DRX cycle). When the mobile phone has completed buffering video data and no longer needs to receive video data, the mobile phone does not need to receive scheduling information transmitted from the base station for a certain period of time (e.g., several long DRX cycles). In this case, the base station may send a power-saving signal to the mobile phone to indicate that the mobile phone does not need to monitor scheduling information during one or more long DRX cycles. Specifically, the base station may determine a monitoring occasion for the search space based on a first set of configuration parameters for the search space and send a power-saving signal during the monitoring occasion for the search space. Accordingly, the mobile phone may determine a monitoring occasion of the search space based on the first set of configuration parameters of the search space, and monitor the power saving signal at the monitoring occasion of the search space.
[0220] For example, referring to FIG. 8, when a user uses a mobile phone to play an online game, the service latency requirement for the online game is relatively high. In this case, the mobile phone may use a short DRX cycle, and the length of the short DRX cycle may be 40 ms. That is, the mobile phone monitors scheduling information transmitted from the base station every 40 ms (i.e., the on duration of the short DRX cycle). During the game loading process, the mobile phone does not need to immediately perform data interaction with the base station. In this case, the base station may send a power-saving signal to the mobile phone to indicate that the mobile phone does not need to monitor scheduling information in one or more short DRX cycles. Specifically, the base station may determine a search space monitoring occasion based on the second set of configuration parameters and transmit a power-saving signal during the search space monitoring occasion. Correspondingly, the mobile phone may determine a search space monitoring occasion based on the second set of configuration parameters for the search space and monitor the power-saving signal during the search space monitoring occasion.
[0221] 11 illustrates another search space monitoring method according to an embodiment of the present application. The method includes the following steps:
[0222] S301: A network device determines M candidate monitoring occasions for a search space.
[0223] For a related description of the power saving signal, please refer to the description of the embodiment shown in Figure 5. The details will not be described again here.
[0224] The search space is a search space used to carry the power saving signal. For a method for configuring the search space used to carry the power saving signal of the terminal by the network device, please refer to the relevant description in the embodiment shown in Figure 5. The details will not be described again here.
[0225] It should be noted that a monitoring occasion includes a period of consecutive time units in the time domain, where a time unit may be an OFDM symbol. The network device may transmit signaling, such as a PDCCH, during the monitoring occasion in the search space. Correspondingly, the terminal may monitor the search space during the monitoring occasion to receive the signaling transmitted by the network device.
[0226] S302: The network device determines N target monitoring occasions from among the M candidate monitoring occasions based on the time domain positions of the on-durations of the DRX cycles used by the terminal.
[0227] The DRX cycle may be a DRX cycle associated with a power saving signal, or alternatively, the DRX cycle may be a DRX cycle being used by the terminal or a DRX cycle to be used by the terminal.
[0228] N is a positive integer less than or equal to M.
[0229] Design 1: The target monitoring occasion is located before the on-duration of the DRX cycle used by the terminal and is closest to the on-duration of the DRX cycle used by the terminal.
[0230] Based on Design 1, the monitoring occasions of M candidates can be determined based on the configuration information of the search space, where M is a positive integer. For a method of determining the monitoring occasions of M candidates, please refer to the prior art. The details are not described in this application.
[0231] For example, referring to FIG. 12, candidate monitoring occasion #1 through candidate monitoring occasion #8 exist in the time domain for the search space. For long DRX cycle #1, candidate monitoring occasion #1 precedes the on-duration of long DRX cycle #1 and is closest to the on-duration of long DRX cycle #1. Therefore, candidate monitoring occasion #1 is the target monitoring occasion. For long DRX cycle #2, candidate monitoring occasion #3 precedes the on-duration of long DRX cycle #2 and is closest to the on-duration of long DRX cycle #2. Therefore, candidate monitoring occasion #3 is the target monitoring occasion. For short DRX cycle #1, candidate monitoring occasion #5 precedes the on-duration of short DRX cycle #1 and is closest to the on-duration of short DRX cycle #1. Therefore, candidate monitoring occasion #5 is the target monitoring occasion. By analogy, it can be determined that candidate monitoring occasion #6, candidate monitoring occasion #7, and candidate monitoring occasion #8 are all target monitoring occasions.
[0232] Design 2: The N target monitoring occasions are the N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on-duration of the DRX cycle.
[0233] Based on Design 2, for each of the M candidate monitoring occasions, a difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first preset value; or a difference between the end time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first preset value.
[0234] In this embodiment of the present application, the first pre-configured value is defined in a standard, or pre-configured by a network device for the terminal, or determined by negotiation between the terminal and the network device.
[0235] The difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle may be referred to as a first offset value, which is not limited to this embodiment of the present application.
[0236] Based on Design 2, the value of N may be pre-configured (i.e., defined in the standard), pre-configured by the network device for the terminal, or determined by negotiation between the terminal and the network device.
[0237] For example, referring to FIG. 13, it is assumed that N is equal to 3. With respect to the search space, candidate monitoring occasion #1 through candidate monitoring occasion #10 exist within the DRX opportunities of long DRX cycle #1. Therefore, the target monitoring occasions associated with the on-duration of short DRX cycle #1 are candidate monitoring occasion #8, candidate monitoring occasion #9, and candidate monitoring occasion #10. Candidate monitoring occasion #11 through candidate monitoring occasion #14 exist within the DRX opportunities of short DRX cycle #1. Therefore, the target monitoring occasions associated with the on-duration of short DRX cycle #2 are candidate monitoring occasion #12, candidate monitoring occasion #13, and candidate monitoring occasion #14. Candidate monitoring occasion #15 through candidate monitoring occasion #18 exist within the DRX opportunities of short DRX cycle #2. Therefore, the target monitoring occasions associated with the on-duration of the next DRX cycle are candidate monitoring occasion #16, candidate monitoring occasion #17, and candidate monitoring occasion #18.
[0238] Design 3: N monitoring occasions are N monitoring occasions within a time window.
[0239] Based on Design 3, the monitoring occasions of M candidates are determined based on the configuration information of the search space, where M is a positive integer. For a method of determining the monitoring occasions of M candidates, please refer to the prior art. Details will not be described here.
[0240] It can be understood that the time window is essentially a time period, where, with respect to a current DRX cycle, a difference between a start time of the time window corresponding to the current DRX cycle and a start time of the on-duration of the next DRX cycle is equal to a second preset value, and a difference between an end time of the time window corresponding to the current DRX cycle and a start time of the on-duration of the next DRX cycle is equal to a third preset value.
[0241] The difference between the start time of the time window and the start time of the on-duration of the DRX cycle may be referred to as a second offset value. The difference between the end time of the time window and the start time of the on-duration of the DRX cycle may be referred to as a third offset value. This is not limited to this embodiment of the present application.
[0242] The second preset value is defined in a standard, or is preset by the network device for the terminal, or is determined by negotiation between the terminal and the network device, and the third preset value is defined in a standard, or is preset by the network device for the terminal, or is determined by negotiation between the terminal and the network device.
[0243] That is, the network device can determine a time window corresponding to a DRX cycle based on the second offset value and the third offset value, and further determine N target monitoring occasions from among M candidate monitoring occasions based on the time window of the DRX cycle.
[0244] Thus, the N target monitoring occasions in a short DRX cycle are the N candidate monitoring occasions in the time window corresponding to the short DRX cycle, and the N target monitoring occasions in a long DRX cycle are the N candidate monitoring occasions in the time window corresponding to the long DRX cycle.
[0245] Based on Design 3, the value of N is not fixed. It can be seen that the value of N is directly proportional to the size of the time window (or the length of the time window).
[0246] Optionally, the second offset value corresponding to the long DRX cycle may be the same as the second offset value corresponding to the short DRX cycle, and the third offset value corresponding to the long DRX cycle may be the same as the third offset value corresponding to the short DRX cycle, and thus the length of the time window corresponding to the long DRX cycle may be the same as the length of the time window corresponding to the short DRX cycle.
[0247] For example, referring to FIG. 14, with respect to the search space, candidate monitoring occasion #0 through candidate monitoring occasion #11 exist within the DRX opportunities of long DRX cycle #1. Candidate monitoring occasion #9 and candidate monitoring occasion #10 are within the time window, and therefore, the target monitoring occasions of long DRX cycle #1 are candidate monitoring occasion #9 and candidate monitoring occasion #10. Candidate monitoring occasion #12 through candidate monitoring occasion #17 exist within short DRX cycle #1. Candidate monitoring occasion #15 and candidate monitoring occasion #16 are within the time window, and therefore, the target monitoring occasions of short DRX cycle #1 are candidate monitoring occasion #15 and candidate monitoring occasion #16. Candidate monitoring occasion #18 through candidate monitoring occasion #23 exist within short DRX cycle #2. Candidate monitoring occasion #21 and candidate monitoring occasion #22 are within the time window, therefore, the target monitoring occasions for short DRX cycle #2 are candidate monitoring occasion #21 and candidate monitoring occasion #23.
[0248] Optionally, the second offset value corresponding to the long DRX cycle may be different from the second offset value corresponding to the short DRX cycle and / or the third offset value corresponding to the long DRX cycle may be different from the third offset value corresponding to the short DRX cycle, and thus the length of the time window corresponding to the long DRX cycle may be different from the length of the time window corresponding to the short DRX cycle.
[0249] For example, the length of the time window corresponding to the long DRX cycle is greater than the length of the time window corresponding to the short DRX cycle.
[0250] For example, referring to FIG. 15, with respect to the search space, candidate monitoring occasion #0 through candidate monitoring occasion #11 exist within the DRX opportunities of long DRX cycle #1. Candidate monitoring occasion #7 through candidate monitoring occasion #10 are within the time window, and therefore, the target monitoring occasions of long DRX cycle #1 are candidate monitoring occasion #7 through candidate monitoring occasion #10. Candidate monitoring occasion #12 through candidate monitoring occasion #17 exist within short DRX cycle #1. Candidate monitoring occasion #15 and candidate monitoring occasion #16 are within the time window, and therefore, the target monitoring occasions of short DRX cycle #1 are candidate monitoring occasion #15 and candidate monitoring occasion #16. Candidate monitoring occasion #18 through candidate monitoring occasion #23 exist within short DRX cycle #2. Candidate monitoring occasion #21 and candidate monitoring occasion #22 are within the time window, and therefore the target monitoring occasions for short DRX cycle #2 are candidate monitoring occasion #21 and candidate monitoring occasion #22.
[0251] Optionally, based on Design 1, Design 2, or Design 3 described above, the monitoring cycle of the search space is less than or equal to the short DRX cycle, ensuring that when the terminal uses the short DRX cycle, one or more corresponding target monitoring occasions exist within each short DRX cycle, thereby preventing the terminal from missing a power saving signal.
[0252] If the monitoring cycle of the search space is less than or equal to the short DRX cycle (i.e., the monitoring cycle of the search space is the same in time length as the short DRX cycle) and an appropriate monitoring offset is used for the search space, and the terminal uses the short DRX cycle, all monitoring cycles of the search space are target monitoring occasions. This helps reduce the complexity when the terminal determines target monitoring occasions. Furthermore, because the long DRX cycle is generally L times the short DRX cycle, when the terminal uses the long DRX cycle, the terminal can also determine one or more target monitoring occasions from L consecutive monitoring occasions. This also helps reduce the complexity when the terminal determines target monitoring occasions. L is a positive integer.
[0253] Certainly, the search space monitoring cycle may differ in time length from the short DRX cycle, which is not limited to this embodiment of the present application.
[0254] S303: The network device transmits a power-saving signal at N target monitoring occasions within the search space.
[0255] The network device may understand not to transmit power saving signals during non-target monitoring occasions of the search space.
[0256] S304: The terminal determines M candidate monitoring occasions in the search space.
[0257] S305: The terminal determines N target monitoring occasions from among the M candidate monitoring occasions based on the time domain positions of the on durations of the DRX cycles.
[0258] For the specific implementation of steps S304 and S305, please refer to the description in steps S301 and S302, and the details will not be described again here.
[0259] S306: The terminal monitors for power-saving signals at N target monitoring occasions within the search space.
[0260] The terminal may understand not to monitor the power saving signal in non-target monitoring occasions of the search space in order to reduce power consumption of the terminal.
[0261] It should be noted that the network device can decide whether to transmit a power-saving signal in the search space based on the actual conditions. However, regardless of whether the network device transmits a power-saving signal, the terminal needs to monitor the power-saving signal in the target monitoring occasion of the search space to avoid missing the power-saving signal.
[0262] Based on the technical solution shown in FIG. 11, the terminal determines the target monitoring occasion based on the time-domain position of the on-duration of the DRX cycle. Specifically, when the terminal uses a long DRX cycle, the terminal can determine the target monitoring occasion based on the time-domain position of the on-duration of the long DRX cycle. When the terminal uses a short DRX cycle, the terminal can determine the target monitoring occasion based on the time-domain position of the on-duration of the short DRX cycle. The target monitoring occasion determined by the terminal is adapted to the DRX cycle used by the terminal. In this way, regardless of whether the DRX cycle is long or short, the terminal can successfully monitor the power saving signal within the search space at the appropriate monitoring occasion (i.e., the target monitoring occasion).
[0263] The solution will be described below with reference to some practical application scenarios.
[0264] For example, referring to FIG. 7, when a user uses a mobile phone to watch online videos, the service latency requirement is relatively low. In this case, the mobile phone may use a long DRX cycle, which may be 640 ms long. That is, the mobile phone monitors scheduling information transmitted from the base station every 640 ms (i.e., the on-duration of the short DRX cycle). When the mobile phone has completed buffering video data and no longer needs to receive video data, the mobile phone does not need to receive scheduling information transmitted from the base station within a certain period of time (e.g., several long DRX cycles). In this case, the base station may send a power-saving signal to the mobile phone to indicate that the mobile phone does not need to monitor scheduling information during one or more long DRX cycles. Specifically, the base station may determine M candidate monitoring occasions based on the search space configuration parameters, and then determine N target monitoring occasions from among the M candidate monitoring occasions based on the time-domain positions of the on-duration of the long DRX cycle. Therefore, the base station transmits power-saving signals at N target monitoring occasions in the search space. Correspondingly, the mobile phone can determine M candidate monitoring occasions based on the configuration parameters of the search space, and then determine N target monitoring occasions from among the M candidate monitoring occasions based on the time-domain positions of the on-durations of the long DRX cycles. Thus, the mobile phone transmits power-saving signals at N target monitoring occasions in the search space.
[0265] For example, referring to FIG. 8, when a user uses a mobile phone to play an online game, the service latency requirement is relatively high. In this case, the mobile phone may use a short DRX cycle, and the length of the short DRX cycle may be 40 ms. That is, the mobile phone monitors scheduling information transmitted from the base station every 40 ms (i.e., the on-duration of the short DRX cycle). During the game loading process, the mobile phone does not need to perform data interaction with the base station for the time being. In this case, the base station may send a power-saving signal to the mobile phone to indicate that the mobile phone does not need to monitor scheduling information in one or more short DRX cycles. Specifically, the base station may determine M candidate monitoring occasions based on the configuration parameters of the search space, and then determine N target monitoring occasions from the M candidate monitoring occasions based on the time-domain positions of the on-duration of the short DRX cycle. Therefore, the base station transmits a power-saving signal at the N target monitoring occasions within the search space. Accordingly, the mobile phone may determine M candidate monitoring occasions based on the configuration parameters of the search space, and then determine N target monitoring occasions from among the M candidate monitoring occasions based on the time-domain positions of the on-durations of the short DRX cycles. Thus, the mobile phone transmits power-saving signals at the N target monitoring occasions in the search space.
[0266] The above mainly describes the solutions provided in the embodiments of the present application from the perspective of interactions between network elements. It can be understood that, to implement the aforementioned functions, each of the network elements, such as terminals and network devices, includes corresponding hardware structures and / or software modules for performing each function. Those skilled in the art will readily recognize that the present application may be implemented by hardware or a combination of hardware and computer software in combination with the example units and algorithm steps described in the embodiments disclosed herein. Whether a function is performed by hardware or hardware driven by computer software depends on the design constraints of a specific application and technical solution. Those skilled in the art may use various methods to implement the described functions for each specific application, but such implementations should not be considered to go beyond the scope of the present application.
[0267] In the embodiments of the present application, the functional modules of the terminal and the network device may be obtained by division based on the above-described method example. For example, each functional module may be obtained by division based on its corresponding function, or two or more functions may be integrated into one processing module. The integrated module may be implemented in the form of hardware or in the form of a software functional module. It should be noted that the module division in the embodiments of the present application is an example and is merely a logical functional division. During actual implementation, other division methods may be used. The following description will be given using an example in which each functional module is obtained by division based on its corresponding function.
[0268] 16 is a schematic diagram of the structure of a communication device according to an embodiment of the present application. As shown in FIG. 16, the communication device includes a processing module 201 and a communication module 202. The processing module 201 may include a first processing module and a second processing module.
[0269] Optionally, the communication device may implement at least one of the following solutions:
[0270] Solution 1: The first processing module is configured to monitor a power saving signal in a first search space and skip monitoring a power saving signal in a second search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second processing module is configured to monitor a power saving signal in the second search space and skip monitoring a power saving signal in the first search space when the terminal uses a short DRX cycle.
[0271] For related descriptions of the power saving information, the first search space, and the second search space, please refer to the embodiment shown in Figure 5. The details will not be described again here.
[0272] Solution 2: The first processing module is configured to monitor a power saving signal in the search space based on a first set of configuration parameters of the search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second processing module is configured to monitor a power saving signal in the search space based on a second set of configuration parameters of the search space when the terminal uses a short DRX cycle.
[0273] For related descriptions of the power saving information, the search space, the first configuration parameter group, and the second configuration parameter group, please refer to the embodiment shown in Figure 9. The details will not be described again here.
[0274] In one possible design, the communication module 202 is configured to receive search space configuration information, where the search space configuration information is used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0275] In one possible design, the communications module 202 is configured to receive search space configuration information and receive instruction information, where the search space configuration information is used to indicate parameters other than the monitoring cycle and the monitoring offset value in the first set of configuration parameters and parameters other than the monitoring cycle and the monitoring offset value in the second set of configuration parameters, and the instruction information is used to indicate the monitoring cycle and the monitoring offset value in the first set of configuration parameters and the monitoring cycle and the monitoring offset value in the second set of configuration parameters.
[0276] Solution 3: The first processing module is configured to determine M candidate monitoring occasions in a search space; and determine N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles, where M is a positive integer and N is a positive integer less than or equal to M. The second processing module is configured to monitor power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information of the terminal.
[0277] For related information on power saving signals, search spaces, and target monitoring occasions, please refer to the embodiment shown in Figure 11. The details will not be described again here.
[0278] In one example, referring to the communication device shown in Figure 4, the communication module 202 in Figure 16 may be realized by the communication interface 104 in Figure 4, and the processing module 201 in Figure 16 may be realized by the processor 101 in Figure 4. This is not limited to this embodiment of the present application.
[0279] 17 is a schematic diagram of the structure of a communication device according to an embodiment of the present application. As shown in FIG. 17, the communication device includes a processing module 301 and a communication module 302. The communication module 302 may include a first communication module and a second communication module.
[0280] Optionally, the communication device may implement at least one of the following solutions:
[0281] Solution 1: The first communication module is configured to transmit a power saving signal in a first search space and skip transmitting the power saving signal in a second search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second communication module is configured to transmit a power saving signal in the second search space and skip transmitting the power saving signal in the first search space when the terminal uses a short DRX cycle.
[0282] For related descriptions of the power saving information, the first search space, and the second search space, please refer to the embodiment shown in Figure 5. The details will not be described again here.
[0283] Solution 2: The first communication module is configured to transmit a power saving signal in the search space based on a first set of configuration parameters of the search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second communication module is configured to transmit a power saving signal in the search space based on a second set of configuration parameters of the search space when the terminal uses a short DRX cycle.
[0284] For related descriptions of the power saving information, the search space, the first configuration parameter group, and the second configuration parameter group, please refer to the embodiment shown in Figure 9. The details will not be described again here.
[0285] In a possible design, the first communication module / second communication module is further configured to transmit search space configuration information to the terminal, and the search space configuration information is used to indicate the first configuration parameter set and the second configuration parameter set.
[0286] In a possible design, the first communication module / second communication module is further configured to transmit search space configuration information to the terminal and transmit instruction information to the terminal. The search space configuration information is used to indicate parameters other than the monitoring cycle and monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and monitoring offset value in the second configuration parameter set. The instruction information is used to indicate the monitoring cycle and monitoring offset value in the first configuration parameter set and the monitoring cycle and monitoring offset value in the second configuration parameter set.
[0287] Solution 3: The processing module 301 is configured to: determine M candidate monitoring occasions in a search space; and determine N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles used by the terminal, where M is a positive integer and N is a positive integer less than or equal to M. The communication module 302 is configured to transmit power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information of the terminal.
[0288] For related information on power saving signals, search spaces, and target monitoring occasions, please refer to the embodiment shown in Figure 11. The details will not be described again here.
[0289] In one example, referring to the communication device shown in Figure 4, the communication module 302 in Figure 17 may be realized by the communication interface 104 in Figure 4, and the processing module 301 in Figure 17 may be realized by the processor 101 in Figure 4. This is not limited to this embodiment of the present application.
[0290] An embodiment of the present application further provides a computer-readable storage medium. The computer-readable storage medium stores computer instructions. When the computer-readable storage medium operates on a communication device, the communication device can execute the method shown in FIG. 5, FIG. 9, or FIG. 11. The computer instructions may be stored in the computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions may be transmitted from a website, computer, server, or data center to another website, computer, server, or data center via a wired (e.g., coaxial cable, fiber optic, or digital subscriber line (DSL)) or wireless (e.g., infrared, radio, or microwave) method. The computer-readable storage medium may be any available medium accessible by a computer, or a data storage device such as a server or data center that integrates one or more available media. Possible media include magnetic media (e.g., floppy disks, hard disks, or magnetic tapes), optical media, and semiconductor media (e.g., solid-state drives (SSDs)).
[0291] An embodiment of the present application further provides a computer program product including computer instructions, which, when executed on a communication device, enable the communication device to perform the method shown in FIG.
[0292] An embodiment of the present application further provides a communication system, including a network device and a terminal, wherein the terminal is configured to implement the technical solution shown in Figure 5, Figure 9, or Figure 11, and the network device is configured to implement the technical solution shown in Figure 5, Figure 9, or Figure 11.
[0293] 18 is a schematic diagram of the structure of a chip according to an embodiment of the present application. The chip shown in FIG. 18 may be a general-purpose processor or a special-purpose processor. The chip includes a processor 401. The processor 401 is configured to support a communication device in implementing the technical solutions shown in FIG. 5, FIG. 9, or FIG. 11.
[0294] Optionally, the chip further includes a transceiver 402. The transceiver 402 is configured to support a communication device under the control of the processor 401 when implementing the technical solutions shown in FIG.
[0295] Optionally, the chip shown in FIG. 18 may further include a storage medium 403.
[0296] It should be noted that the chip shown in FIG. 18 may be implemented by one or more of the following circuits or components: field programmable gate arrays (FPGAs), programmable logic devices (PLDs), controllers, state machines, gate logic, discrete hardware components, any other suitable circuitry, or any combination of circuits capable of performing the various functions described herein.
[0297] The terminals, network devices, computer storage media, computer program products, and chips provided in the embodiments of the present application are all configured to perform the methods provided above. Therefore, for the beneficial effects that can be achieved by the terminals, network devices, computer storage media, computer program products, and chips, please refer to the beneficial effects corresponding to the methods provided above. Details will not be described again here.
[0298] In relation to the above description, the present application further provides the following embodiments:
[0299] Embodiment 1: A search space monitoring method is provided, the method including:
[0300] When using a long DRX cycle, the terminal monitors the power saving signal in the first search space and skips monitoring the power saving signal in the second search space. The power saving signal is used to indicate the power saving information of the terminal.
[0301] When using a short DRX cycle, the terminal monitors the power saving signal in the second search space and skips monitoring the power saving signal in the first search space.
[0302] Embodiment 2: According to the search space monitoring method of embodiment 1, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0303] Embodiment 3: According to the search space monitoring method of embodiment 1 or embodiment 2, the monitoring cycle of the first search space is the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space is the same as the short DRX cycle in terms of time length.
[0304] Embodiment 4: According to the search space monitoring method according to any one of embodiments 1 to 3, the monitoring offset value of the first search space is different from the monitoring offset value of the second search space.
[0305] Embodiment 5: A communication method is provided, the method including:
[0306] When the terminal uses a long DRX cycle, the network device transmits a power saving signal in the first search space and does not transmit a power saving signal in the second search space, and the power saving signal is used to indicate the power saving information of the terminal.
[0307] When the terminal uses a short DRX cycle, the network device transmits a power saving signal in the second search space and does not transmit a power saving signal in the first search space.
[0308] Embodiment 6: According to the communication method of embodiment 5, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0309] Embodiment 7: According to the communication method of embodiment 5 or embodiment 6, the monitoring cycle of the first search space is the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space is the same as the short DRX cycle in terms of time length.
[0310] Embodiment 8: According to the communication method according to any one of embodiments 5 to 7, the monitoring offset value of the first search space is different from the monitoring offset value of the second search space.
[0311] Embodiment 9: A communications device is provided. The communications device may be a terminal, a chip in the terminal, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: when using a long DRX cycle, monitoring a power saving signal in a first search space and skipping monitoring a power saving signal in a second search space, where the power saving signal is used to indicate power saving information of the terminal; and when using a short DRX cycle, monitoring a power saving signal in the second search space and skipping monitoring a power saving signal in the first search space.
[0312] Embodiment 10: According to the communication device of embodiment 9, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0313] Embodiment 11: According to the communication device of embodiment 9 or embodiment 10, the monitoring cycle of the first search space is the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space is the same as the short DRX cycle in terms of time length.
[0314] Embodiment 12: According to the communication device according to any one of embodiments 9 to 11, the monitoring offset value of the first search space is different from the monitoring offset value of the second search space.
[0315] Embodiment 13: A communications device is provided. The communications device may be a network device, a chip in the network device, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: if the terminal uses a long DRX cycle, transmitting a power saving signal in a first search space and skipping transmitting the power saving signal in a second search space, where the power saving signal is used to indicate power saving information of the terminal; and if the terminal uses a short DRX cycle, transmitting a power saving signal in the second search space and skipping transmitting the power saving signal in the first search space.
[0316] Embodiment 14: According to the communication device of embodiment 13, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0317] Embodiment 15: According to the communication device of embodiment 13 or embodiment 14, the monitoring cycle of the first search space is the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space is the same as the short DRX cycle in terms of time length.
[0318] Embodiment 16: According to the communication device according to any one of embodiments 13 to 15, the monitoring offset value of the first search space is different from the monitoring offset value of the second search space.
[0319] Embodiment 17: A communications device is provided, including a first processing unit and a second processing unit. The first processing module is configured to monitor a power saving signal, where the power saving signal is used to indicate power saving information of the terminal, in a first search space when the terminal uses a long DRX cycle, and skip monitoring a power saving signal in a second search space. The second processing module is configured to monitor a power saving signal in the second search space and skip monitoring a power saving signal in the first search space when the terminal uses a short DRX cycle.
[0320] Embodiment 18: According to the communication device of embodiment 17, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0321] Embodiment 19: According to the communication device of embodiment 17 or embodiment 18, the monitoring cycle of the first search space is the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space is the same as the short DRX cycle in terms of time length.
[0322] Embodiment 20: According to the communication device according to any one of embodiments 17 to 19, the monitoring offset value of the first search space is different from the monitoring offset value of the second search space.
[0323] Embodiment 21: A communication device is provided, including a first communication module and a second communication module. The first communication module is configured to transmit a power saving signal in a first search space and skip transmitting the power saving signal in a second search space when a terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second communication module is configured to transmit a power saving signal in the second search space and skip transmitting the power saving signal in the first search space when the terminal uses a short DRX cycle.
[0324] Embodiment 22: According to the communication device of embodiment 21, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0325] Embodiment 23: According to the communication device of embodiment 21 or embodiment 22, the monitoring cycle of the first search space is the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space is the same as the short DRX cycle in terms of time length.
[0326] Embodiment 24: According to the communication device of any one of embodiments 21 to 23, the monitoring offset value of the first search space is different from the monitoring offset value of the second search space.
[0327] Embodiment 25: A communication system is provided, including a terminal and a network device.
[0328] The terminal is configured to, when using a long DRX cycle, monitor a power saving signal in a first search space, the power saving signal being used to indicate power saving information of the terminal, and skip monitoring a power saving signal in a second search space; and, when using a short DRX cycle, monitor a power saving signal in the second search space and skip monitoring a power saving signal in the first search space.
[0329] The network device is configured to: when the terminal uses a long DRX cycle, transmit a power saving signal in a first search space, the power saving signal being used to indicate power saving information of the terminal, and skip transmitting the power saving signal in the second search space; and when the terminal uses a short DRX cycle, transmit a power saving signal in the second search space and skip transmitting the power saving signal in the first search space.
[0330] Embodiment 26: According to the communication system of embodiment 25, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0331] Embodiment 27: According to the communication system of embodiment 25 or embodiment 26, the monitoring cycle of the first search space is the same as the long DRX cycle in terms of time length, and the monitoring cycle of the second search space is the same as the short DRX cycle in terms of time length.
[0332] Embodiment 28: According to the communication system according to any one of embodiments 25 to 27, the monitoring offset value of the first search space is different from the monitoring offset value of the second search space.
[0333] Embodiment 29: A computer program product is provided, which, when run on a computer, causes the computer to perform the method according to any one of embodiments 1 to 8.
[0334] Embodiment 30: A computer-readable storage medium is provided, which stores instructions that, when executed on a computer, cause the computer to perform the method of any one of embodiments 1 to 8.
[0335] Embodiment 31: A chip is provided. The chip includes a processor, and when the processor executes instructions, the processor is configured to perform the method of any one of embodiments 1 to 8. The instructions may be from a memory within the chip or from a memory off-chip. Optionally, the chip further includes input / output circuitry.
[0336]
[0072] Embodiment 32: A search space monitoring method is provided. The method includes:
[0337] When using a long DRX cycle, the terminal monitors a power saving signal in the search space based on a first set of configuration parameters of the search space, and the power saving signal is used to indicate power saving information of the terminal.
[0338] When using the short DRX cycle, the terminal monitors the power saving signal in the search space based on a second set of configuration parameters of the search space.
[0339] Embodiment 33: According to the search space monitoring method of embodiment 32, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0340] Embodiment 34: According to the search space monitoring method of embodiment 32 or embodiment 33, the method further includes: a step in which the terminal receives search space configuration information, and the search space configuration information is used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0341] Embodiment 35: According to the search space monitoring method of embodiment 32 or embodiment 33, the method further includes: a terminal receiving search space configuration information, where the search space configuration information is used to indicate parameters other than the monitoring cycle and the monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and the monitoring offset value in the second configuration parameter set; and a terminal receiving indication information, where the indication information is used to indicate the monitoring cycle and the monitoring offset value in the first configuration parameter set and the monitoring cycle and the monitoring offset value in the second configuration parameter set.
[0342] Embodiment 36: According to the search space monitoring method of any one of embodiments 32 to 35, the monitoring cycle in the first configuration parameter group is the same as the long DRX cycle in terms of time length, and the monitoring cycle in the second configuration parameter group is the same as the short DRX cycle in terms of time length.
[0343] Embodiment 37: According to the search space monitoring method of any one of embodiments 32 to 36, the monitoring offset value in the first configuration parameter group is different from the monitoring offset value in the second configuration parameter group.
[0344]
[0082] Embodiment 38: A communication method is provided, the method including:
[0345] When the terminal uses a long discontinuous reception (DRX) cycle, the network device transmits a power saving signal in the search space based on a first set of configuration parameters of the search space, and the power saving signal is used to indicate power saving information of the terminal.
[0346] When the terminal uses a short DRX cycle, the network device transmits a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0347] Embodiment 39: According to the communication method of embodiment 38, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0348] Embodiment 40: According to the communication method of embodiment 39 or embodiment 40, the method further includes: a step in which the network device sends search space configuration information to the terminal, and the search space configuration information is used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0349] Embodiment 41: According to the communication method of embodiment 39 or embodiment 40, the method further includes: the network device sending search space configuration information to the terminal, where the search space configuration information is used to indicate parameters other than the monitoring cycle and the monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and the monitoring offset value in the second configuration parameter set; the network device sending indication information to the terminal, where the indication information is used to indicate the monitoring cycle and the monitoring offset value in the first configuration parameter set and the monitoring cycle and the monitoring offset value in the second configuration parameter set.
[0350] Embodiment 42: According to the communication method of any one of embodiments 38 to 41, the monitoring cycle in the first configuration parameter set is the same as the long DRX cycle in terms of time length, and the monitoring cycle in the second configuration parameter set is the same as the short DRX cycle in terms of time length.
[0351] Embodiment 43: According to the communication method of any one of embodiments 38 to 42, the monitoring offset value in the first configuration parameter group is different from the monitoring offset value in the second configuration parameter group.
[0352] Embodiment 44: A communications device is provided. The communications device may be a terminal, a chip in the terminal, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: when using a long DRX cycle, monitoring a power saving signal in a search space, the power saving signal being used to indicate power saving information of the terminal, based on a first set of configuration parameters of the search space; and when using a short DRX cycle, monitoring a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0353] Embodiment 45: According to the communication method of embodiment 44, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0354] Embodiment 46: According to the communication method of embodiment 44 or embodiment 45, when the instructions are executed by the processor, the communication device further operates to perform the step of: receiving search space configuration information, wherein the search space configuration information is used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0355] Embodiment 47: According to the communication method of embodiment 44 or embodiment 45, when the instructions are executed by a processor, the communication device further operates to perform the steps of: receiving search space configuration information, wherein the search space configuration information is used to indicate parameters other than the monitoring cycle and monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and monitoring offset value in the second configuration parameter set; and receiving instruction information, wherein the instruction information is used to indicate the monitoring cycle and monitoring offset value in the first configuration parameter set and the monitoring cycle and monitoring offset value in the second configuration parameter set.
[0356] Embodiment 48: According to the communication method of any one of embodiments 44 to 47, the monitoring cycle in the first configuration parameter group is the same as the long DRX cycle in terms of time length, and the monitoring cycle in the second configuration parameter group is the same as the short DRX cycle in terms of time length.
[0357] Embodiment 49: According to the communication method of any one of embodiments 44 to 48, the monitoring offset value in the first configuration parameter group is different from the monitoring offset value in the second configuration parameter group.
[0358] Embodiment 50: A communications device is provided. The communications device may be a network device, a chip within the network device, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: if the terminal uses a long DRX cycle, transmitting a power saving signal in a search space based on a first set of configuration parameters of the search space, where the power saving signal is used to indicate power saving information of the terminal; and if the terminal uses a short DRX cycle, transmitting a power saving signal in the search space based on a second set of configuration parameters of the search space.
[0359] Embodiment 51: According to the communication device of embodiment 50, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal is required to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0360] Embodiment 52: According to the communication device of embodiment 50 or embodiment 51, when the instructions are executed by the processor, the communication device further operates to perform the step of: transmitting search space configuration information to the terminal, wherein the search space configuration information is used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0361] Embodiment 53: According to the communication device of embodiment 50 or embodiment 51, when the instructions are executed by the processor, the communication device further operates to perform the steps of: transmitting search space configuration information to the terminal, wherein the search space configuration information is used to indicate parameters other than the monitoring cycle and monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and monitoring offset value in the second configuration parameter set; and transmitting instruction information to the terminal, wherein the instruction information is used to indicate the monitoring cycle and monitoring offset value in the first configuration parameter set and the monitoring cycle and monitoring offset value in the second configuration parameter set.
[0362] Embodiment 54: According to a communication device according to any one of embodiments 50 to 53, the monitoring cycle in the first configuration parameter set is the same as the long DRX cycle in terms of time length, and the monitoring cycle in the second configuration parameter set is the same as the short DRX cycle in terms of time length.
[0363] Embodiment 55: According to the communication device of any one of embodiments 50 to 54, the monitoring offset value in the first configuration parameter group is different from the monitoring offset value in the second configuration parameter group.
[0364] Embodiment 56: A communications device is provided. The communications device includes a first processing module and a second processing module. The first processing module is configured to monitor a power saving signal in a search space when the terminal uses a long DRX cycle based on a first set of configuration parameters of the search space, the power saving signal being used to indicate power saving information of the terminal. The second processing module is configured to monitor a power saving signal in the search space when the terminal uses a short DRX cycle based on a second set of configuration parameters of the search space.
[0365] Embodiment 57: According to the communication device of embodiment 56, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0366] Embodiment 58: According to the communication device of embodiment 56 or embodiment 57, the communication device further includes a communication module. The communication module is configured to receive search space configuration information, and the search space configuration information is used to indicate a first set of configuration parameters and a second set of configuration parameters.
[0367]
[0082] Embodiment 59: According to the communications device of embodiment 56 or embodiment 57, the communications device further includes a communications module. The communications module is configured to receive search space configuration information and receive instruction information. The search space configuration information is used to indicate parameters other than the monitoring cycle and the monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and the monitoring offset value in the second configuration parameter set. The instruction information is used to indicate the monitoring cycle and the monitoring offset value in the first configuration parameter set and the monitoring cycle and the monitoring offset value in the second configuration parameter set.
[0368] Embodiment 60: According to the communication device of any one of embodiments 56 to 59, the monitoring cycle in the first configuration parameter set is the same as the long DRX cycle in terms of time length, and the monitoring cycle in the second configuration parameter set is the same as the short DRX cycle in terms of time length.
[0369] Embodiment 61: According to the communication device of any one of embodiments 56 to 60, the monitoring offset value in the first configuration parameter group is different from the monitoring offset value in the second configuration parameter group.
[0370] Embodiment 62: A communications device is provided. The communications device includes a first communications module and a second communications module. The first communications module is configured to transmit a power saving signal in a search space based on a first set of configuration parameters of the search space when the terminal uses a long DRX cycle, the power saving signal being used to indicate power saving information of the terminal. The second communications module is configured to transmit a power saving signal in the search space based on a second set of configuration parameters of the search space when the terminal uses a short DRX cycle.
[0371] Embodiment 63: According to the communication device of embodiment 62, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal is required to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0372] Embodiment 64: According to the communication device of embodiment 62 or embodiment 63, the first communication module / second communication module is further configured to send search space configuration information to the terminal, and the search space configuration information is used to indicate the first configuration parameter group and the second configuration parameter group.
[0373] Embodiment 65: According to the communication device of embodiment 62 or embodiment 63, the first communication module / second communication module is further configured to send search space configuration information to the terminal and send instruction information to the terminal. The search space configuration information is used to indicate parameters other than the monitoring cycle and the monitoring offset value in the first configuration parameter set and parameters other than the monitoring cycle and the monitoring offset value in the second configuration parameter set. The instruction information is used to indicate the monitoring cycle and the monitoring offset value in the first configuration parameter set and the monitoring cycle and the monitoring offset value in the second configuration parameter set.
[0374] Embodiment 66: According to the communication device of any one of embodiments 62 to 65, the monitoring cycle in the first configuration parameter set is the same as the long DRX cycle in terms of time length, and the monitoring cycle in the second configuration parameter set is the same as the short DRX cycle in terms of time length.
[0375] Embodiment 67: According to the communication device of any one of embodiments 62 to 66, the monitoring offset value in the first configuration parameter group is different from the monitoring offset value in the second configuration parameter group.
[0376] Embodiment 68: A communication system is provided, including a terminal and a network device.
[0377] The terminal is configured to monitor a power saving signal in the search space, the power saving signal being used to indicate power saving information of the terminal, based on a first set of configuration parameters of the search space, when using a long DRX cycle; and to monitor a power saving signal in the search space, based on a second set of configuration parameters of the search space, when using a short DRX cycle.
[0378] The network device is configured to transmit a power saving signal in the search space, the power saving signal being used to indicate power saving information of the terminal, based on a first set of configuration parameters of the search space, when the terminal uses a long discontinuous reception (DRX) cycle; and to transmit a power saving signal in the search space based on a second set of configuration parameters of the search space, when the terminal uses a short DRX cycle.
[0379] Embodiment 69: According to the communication system of embodiment 68, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0380]
[0082] Embodiment 70: According to the communication system of embodiment 68 or embodiment 69, the network device is configured to send search space configuration information to the terminal, where the search space configuration information is used to indicate the first set of configuration parameters and the second set of configuration parameters. The terminal is further configured to receive the search space configuration information, where the search space configuration information is used to indicate the first set of configuration parameters and the second set of configuration parameters.
[0381] Embodiment 71: According to the communication system of embodiment 68 or embodiment 69, the network device is further configured to perform the steps of: transmitting search space configuration information to the terminal, wherein the search space configuration information is used to indicate parameters other than the monitoring cycle and monitoring offset value in the first configuration parameter group and parameters other than the monitoring cycle and monitoring offset value in the second configuration parameter group; and transmitting instruction information to the terminal, wherein the instruction information is used to indicate the monitoring cycle and monitoring offset value in the first configuration parameter group and the monitoring cycle and monitoring offset value in the second configuration parameter group. The terminal is further configured to: receive search space configuration information, the search space configuration information being used to indicate parameters other than a monitoring cycle and a monitoring offset value in the first configuration parameter set and parameters other than a monitoring cycle and a monitoring offset value in the second configuration parameter set; and receive indication information, the indication information being used to indicate a monitoring cycle and a monitoring offset value in the first configuration parameter set and the monitoring cycle and monitoring offset value in the second configuration parameter set.
[0382] Embodiment 72: According to a communication system according to any one of embodiments 68 to 71, the monitoring cycle in the first set of configuration parameters is the same as the long DRX cycle in terms of time length, and the monitoring cycle in the second set of configuration parameters is the same as the short DRX cycle in terms of time length.
[0383] Embodiment 73: According to the communication system of any one of embodiments 68 to 72, the monitoring offset value in the first configuration parameter group is different from the monitoring offset value in the second configuration parameter group.
[0384] Embodiment 74: A computer program product is provided, which, when run on a computer, causes the computer to perform the method of any one of embodiments 32 to 43.
[0385] Embodiment 75: A computer-readable storage medium is provided, which stores instructions that, when executed on a computer, cause the computer to perform the method of any one of embodiments 32 to 43.
[0386] Embodiment 76: A chip is provided. The chip includes a processor, and when the processor executes instructions, the processor is configured to perform the method of any one of embodiments 32 to 43. The instructions may be from a memory within the chip or from a memory off-chip. Optionally, the chip further includes input / output circuitry.
[0387]
[0082] Embodiment 77: A search space monitoring method is provided. The method includes:
[0388] The terminal determines M candidate monitoring occasions in the search space, where M is a positive integer.
[0389] The terminal determines N target monitoring occasions from the M candidate monitoring occasions based on the time-domain positions of the on-durations of the DRX cycles, where N is a positive integer less than or equal to M.
[0390] A terminal monitors power saving signals for N target monitoring occasions in a search space, and the power saving signals are used to indicate power saving information of the terminal.
[0391] Embodiment 78: According to the search space monitoring method of embodiment 77, the search space monitoring cycle is the same as the short DRX cycle in terms of time length.
[0392] Embodiment 79: According to the search space monitoring method of embodiment 77 or embodiment 78, the target monitoring occasion is before the on-duration of the DRX cycle and is closest to the on-duration of the DRX cycle.
[0393] Embodiment 80: According to the search space monitoring method of embodiment 77, the N target monitoring occasions are N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on-duration of the DRX cycle; and for each of the M candidate monitoring occasions, the difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first predetermined value.
[0394] Embodiment 81: According to the search space monitoring method of embodiment 80, the value of N is pre-set or set by the network device for the terminal.
[0395] Embodiment 82: According to the search space monitoring method of embodiment 77, the N target monitoring occasions are N candidate monitoring occasions within a time window, the difference between the start time of the time window and the start time of the on-duration of the DRX cycle is equal to a second preset value, and the difference between the end time of the time window and the start time of the on-duration of the DRX cycle is equal to a third preset value.
[0396] Embodiment 83: According to the search space monitoring method of any one of embodiments 77 to 82, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0397]
[0084] Embodiment 84: A communication method is provided. The method includes:
[0398] A network device determines M candidate monitoring occasions in the search space, where M is a positive integer.
[0399] A network device determines N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of discontinuous reception (DRX) cycles, where N is a positive integer less than or equal to M.
[0400] A network device transmits a power-saving signal for N target monitoring occasions in a search space, where the power-saving signal is used to indicate the power-saving information of the terminal.
[0401] Embodiment 85: According to the communication method of embodiment 84, the monitoring cycle of the search space is the same as the short DRX cycle in terms of time length.
[0402] Embodiment 86: According to the communication method of embodiment 84 or embodiment 85, the target monitoring occasion precedes the on duration of the DRX cycle and is closest to the on duration of the DRX cycle.
[0403] Embodiment 87: According to the communication method of embodiment 84, the N target monitoring occasions are N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on duration of the DRX cycle; and for each of the M candidate monitoring occasions, the difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first predetermined value.
[0404] Embodiment 88: According to the communication method of embodiment 87, the value of N is pre-set or set by the network device for the terminal.
[0405] Embodiment 89: According to the communication method of embodiment 84, the N target monitoring occasions are N candidate monitoring occasions within a time window, the difference between the start time of the time window and the start time of the on-duration of the DRX cycle is equal to a second preset value, and the difference between the end time of the time window and the start time of the on-duration of the DRX cycle is equal to a third preset value.
[0406] Embodiment 90: According to any one of the communication methods of embodiments 84 to 89, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0407] Embodiment 91: A communications device is provided. The communications device may be a terminal, a chip within a terminal, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: determining M candidate monitoring occasions in a search space, where M is a positive integer; determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles, where N is a positive integer less than or equal to M; and monitoring power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information of the terminal.
[0408] Embodiment 92: According to the communication device of embodiment 91, the monitoring cycle of the search space is the same as the short DRX cycle in terms of time length.
[0409] Embodiment 93: According to the communication device of embodiment 91 or embodiment 92, the target monitoring occasion precedes the on duration of the DRX cycle and is closest to the on duration of the DRX cycle.
[0410] Embodiment 94: According to the communication device of embodiment 91, the N target monitoring occasions are N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on duration of the DRX cycle; and for each of the M candidate monitoring occasions, the difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first predetermined value.
[0411] Embodiment 95: According to the communication device of embodiment 94, the value of N is pre-set or set by the network device for the terminal.
[0412] Embodiment 96: According to the communication device of embodiment 91, the N target monitoring occasions are N candidate monitoring occasions within a time window, the difference between the start time of the time window and the start time of the on-duration of the DRX cycle is equal to a second preset value, and the difference between the end time of the time window and the start time of the on-duration of the DRX cycle is equal to a third preset value.
[0413] Embodiment 97: According to any one of the communication devices of embodiments 91 to 96, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0414] Embodiment 98: A communications device is provided. The communications device may be a network device, a chip within the network device, or a system-on-chip. The communications device includes a processor and a memory. The memory stores instructions. When the instructions are executed by the processor, the communications device operates to perform the following steps: determining M candidate monitoring occasions in a search space, where M is a positive integer; determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles used by the terminals, where N is a positive integer less than or equal to M; and transmitting, by the network device, power-saving signals for the N target monitoring occasions in the search space, where the power-saving signals are used to indicate power-saving information of the terminals.
[0415] Embodiment 99: According to the communication device of embodiment 98, the monitoring cycle of the search space is the same as the short DRX cycle in terms of time length.
[0416] Embodiment 100: According to the communication device of embodiment 98 or embodiment 99, the target monitoring occasion precedes the on duration of the DRX cycle and is closest to the on duration of the DRX cycle.
[0417] Embodiment 101: According to the communication device of embodiment 98, the N target monitoring occasions are N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on duration of the DRX cycle; and for each of the M candidate monitoring occasions, the difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first predetermined value.
[0418] Embodiment 102: According to the communication device of embodiment 101, the value of N is pre-set or set by the network device for the terminal.
[0419] Embodiment 103: According to the communication device of embodiment 98, the N target monitoring occasions are N candidate monitoring occasions within a time window, the difference between the start time of the time window and the start time of the on-duration of the DRX cycle is equal to a second preset value, and the difference between the end time of the time window and the start time of the on-duration of the DRX cycle is equal to a third preset value.
[0420] Embodiment 104: According to any one of the communication devices of embodiments 98 to 103, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0421] Embodiment 105: A communications device is provided, including a first processing module and a second processing module. The first processing module is configured to determine M candidate monitoring occasions in a search space; and determine N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles, where M is a positive integer and N is a positive integer less than or equal to M. The second processing module is configured to monitor power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information of the terminal.
[0422] Embodiment 106: According to the communication device of embodiment 105, the monitoring cycle of the search space is the same as the short DRX cycle in terms of time length.
[0423] Embodiment 107: According to the communication device of embodiment 105 or embodiment 106, the target monitoring occasion precedes the on duration of the DRX cycle and is closest to the on duration of the DRX cycle.
[0424] Embodiment 108: According to the communication device of embodiment 105, the N target monitoring occasions are N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on duration of the DRX cycle; and for each of the M candidate monitoring occasions, the difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first predetermined value.
[0425] Embodiment 109: According to the communication device of embodiment 108, the value of N is pre-set or set by the network device for the terminal.
[0426] Embodiment 110: According to the communication device of embodiment 105, the N target monitoring occasions are N candidate monitoring occasions within a time window, the difference between the start time of the time window and the start time of the on-duration of the DRX cycle is equal to a second preset value, and the difference between the end time of the time window and the start time of the on-duration of the DRX cycle is equal to a third preset value.
[0427] Embodiment 111: According to any one of the communication devices of embodiments 105 to 110, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0428]
[0072] Embodiment 112: A communications device is provided. The communications device includes a processing module and a communications module. The processing module is configured to determine M candidate monitoring occasions in a search space; and determine N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of DRX cycles used by the terminal, where M is a positive integer and N is a positive integer less than or equal to M. The communications module is configured to transmit power saving signals for the N target monitoring occasions in the search space, where the power saving signals are used to indicate power saving information of the terminal.
[0429] Embodiment 113: According to the communication device of embodiment 112, the monitoring cycle of the search space is the same as the short DRX cycle in terms of time length.
[0430] Embodiment 114: According to the communication device of embodiment 112 or embodiment 113, the target monitoring occasion precedes the on duration of the DRX cycle and is closest to the on duration of the DRX cycle.
[0431] Embodiment 115: According to the communication device of embodiment 112, the N target monitoring occasions are N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on duration of the DRX cycle; and for each of the M candidate monitoring occasions, the difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first predetermined value.
[0432] Embodiment 116: According to the communication device of embodiment 115, the value of N is pre-set or set by the network device for the terminal.
[0433] Embodiment 117: According to the communication device of embodiment 112, the N target monitoring occasions are N candidate monitoring occasions within a time window, the difference between the start time of the time window and the start time of the on-duration of the DRX cycle is equal to a second preset value, and the difference between the end time of the time window and the start time of the on-duration of the DRX cycle is equal to a third preset value.
[0434] Embodiment 118: According to any one of the communication devices of embodiments 112 to 117, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0435] Embodiment 119: A communication system is provided, including a terminal and a network device.
[0436] The terminal is configured to: determine M candidate monitoring occasions in a search space; determine N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of discontinuous reception (DRX) cycles; and monitor power saving signals for the N target monitoring occasions in the search space, where M is a positive integer and N is a positive integer less than or equal to M, and the power saving signals are used to indicate power saving information of the terminal.
[0437] The network device is configured to: determine M candidate monitoring occasions in a search space; determine N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of discontinuous reception (DRX) cycles; and transmit power saving signals for the N target monitoring occasions in the search space, where M is a positive integer and N is a positive integer less than or equal to M, and the power saving signals are used to indicate power saving information of the terminal.
[0438] Embodiment 120: According to the communication device of embodiment 119, the monitoring cycle of the search space is the same as the short DRX cycle in terms of time length.
[0439] Embodiment 121: According to the communication device of embodiment 119 or embodiment 120, the target monitoring occasion precedes the on duration of the DRX cycle and is closest to the on duration of the DRX cycle.
[0440] Embodiment 122: According to the communication device of embodiment 119, the N target monitoring occasions are N candidate monitoring occasions among the M candidate monitoring occasions that are closest to the on duration of the DRX cycle; and for each of the M candidate monitoring occasions, the difference between the start time of the candidate monitoring occasion and the start time of the DRX cycle is greater than or equal to a first predetermined value.
[0441] Embodiment 123: According to the communication device of embodiment 122, the value of N is pre-set or set by the network device for the terminal.
[0442] Embodiment 124: According to the communication device of embodiment 119, the N target monitoring occasions are N candidate monitoring occasions within a time window, the difference between the start time of the time window and the start time of the on-duration of the DRX cycle is equal to a second preset value, and the difference between the end time of the time window and the start time of the on-duration of the DRX cycle is equal to a third preset value.
[0443] Embodiment 125: According to any one of the communication devices of embodiments 119 to 124, the power saving information includes at least one of: whether the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; an indication of a minimum scheduling time interval; an indication of a CSI measurement trigger; an indication of BWP switching; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal.
[0444] Embodiment 126: A computer program product is provided, which, when run on a computer, causes the computer to perform the method of any one of embodiments 77 to 90.
[0445] Embodiment 127: A computer-readable storage medium is provided, which stores instructions that, when executed on a computer, cause the computer to perform the method of any one of embodiments 77 to 90.
[0446] Embodiment 128: A chip is provided. The chip includes a processor, and when the processor executes instructions, the processor is configured to perform the method of any one of embodiments 77 to 90. The instructions may be from a memory within the chip or from a memory off-chip. Optionally, the chip further includes input / output circuitry.
[0447] Although the present application is described with reference to embodiments, those skilled in the art can understand and implement other variations of the disclosed embodiments by considering the accompanying drawings, the disclosed content, and the appended claims. In the claims, the word "comprising" does not exclude other elements or steps, and the words "a" or "something" do not exclude plural meanings. A single processor or other unit may implement several functions recited in the claims. The fact that certain features are recited in mutually different dependent claims does not mean that these features cannot be combined to produce better effects.
Claims
1. A search space monitoring method performed by a terminal or a chip in the terminal, the search space monitoring method comprising: determining M candidate monitoring occasions in a search space, where M is a positive integer; determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of discontinuous reception (DRX) cycles, where N is a positive integer less than or equal to M; and monitoring power saving signals for the N target monitoring occasions in the search space, the power saving signals being used to indicate power saving information of the terminal, the power saving information including whether the terminal monitors a PDCCH in the DRX cycle; wherein the N target monitoring occasions are N candidate monitoring occasions within a time window corresponding to a current DRX cycle, a difference between a start time of the time window and a start time of the on-duration of a next DRX cycle is equal to a second value, and a difference between an end time of the time window and the start time of the on-duration of the next DRX cycle is equal to a third value; The search space monitoring method, wherein the current DRX cycle is a long DRX cycle set by a network device, and the search space monitoring cycle is shorter in time length than the next DRX cycle.
2. 2. The search space monitoring method of claim 1, wherein the PDCCHs include PDCCHs carrying DCI format 0-0, DCI format 0-1, DCI format 1-0, and DCI format 1-1, and further include PDCCHs carrying DCI format 2-0 and / or DCI format 2-1 and / or DCI format 2-2 and / or DCI format 2-3.
3. The search space monitoring method according to claim 1 or 2, wherein the time window is located before the on duration of the next DRX cycle.
4. 4. The search space monitoring method according to claim 1, wherein the second value is pre-configured for the terminal by a network device.
5. The third value is defined by a standard, or 5. The method of claim 1, wherein the third value is determined by negotiation between the terminal and a network device.
6. 6. The search space monitoring method according to claim 1, wherein the next DRX cycle is a short DRX cycle set by the network device, the short DRX cycle being shorter than the long DRX cycle, and the long DRX cycle being L times the short DRX cycle, where L is a positive integer.
7. The power saving information includes: An indication of the minimum scheduling time interval; CSI measurement trigger instructions; BWP switching instructions; a search space and / or CORESET that the terminal needs to monitor in the DRX cycle associated with the power saving signal; a monitoring cycle in which the terminal monitors the PDCCH in the DRX cycle associated with the power saving signal; and a skip duration used by the terminal in the DRX cycle associated with the power saving signal; 7. The search space monitoring method according to claim 1, comprising at least one of the following steps:
8. 8. The search space monitoring method according to claim 6, wherein the second value corresponding to the long DRX cycle is the same as or different from the second value corresponding to the short DRX cycle.
9. 9. The search space monitoring method according to claim 6, wherein the third value corresponding to the long DRX cycle is the same as or different from the third value corresponding to the short DRX cycle.
10. 10. The method of claim 6, wherein the length of the time window corresponding to the long DRX cycle is different from the length of the time window corresponding to the short DRX cycle.
11. A communication method implemented by a network device or a chip within said network device, said communication method comprising: determining M candidate monitoring occasions in a search space, where M is a positive integer; determining N target monitoring occasions from the M candidate monitoring occasions based on time-domain positions of on-durations of discontinuous reception (DRX) cycles, where N is a positive integer less than or equal to M; and transmitting power saving signals for the N target monitoring occasions in the search space, the power saving signals being used to indicate power saving information of a terminal, the power saving information including whether the terminal monitors a PDCCH in the DRX cycle; wherein the N target monitoring occasions are N candidate monitoring occasions within a time window corresponding to a current DRX cycle, a difference between a start time of the time window and a start time of the on-duration of a next DRX cycle is equal to a second value, and a difference between an end time of the time window and the start time of the on-duration of the next DRX cycle is equal to a third value; The communication method, wherein the current DRX cycle is a long DRX cycle configured for the terminal, and the monitoring cycle of the search space is shorter in time length than the next DRX cycle.
12. 12. The communication method according to claim 11, wherein the PDCCHs include PDCCHs carrying DCI format 0-0, DCI format 0-1, DCI format 1-0, and DCI format 1-1, and further include PDCCHs carrying DCI format 2-0 and / or DCI format 2-1 and / or DCI format 2-2 and / or DCI format 2-3.
13. 13. The communication method according to claim 11, wherein the time window is located before the on duration of the next DRX cycle.
14. 14. The communication method according to any one of claims 11 to 13, wherein the second value is pre-configured for the terminal by the network device.
15. The third value is defined by a standard, or 15. The communication method according to claim 11, wherein the third value is determined by negotiation between the terminal and a network device.
16. 16. The communication method according to claim 11, wherein the next DRX cycle is a short DRX cycle configured for the terminal, the short DRX cycle being shorter than the long DRX cycle, and the long DRX cycle being L times the short DRX cycle, where L is a positive integer.
17. 17. The communication method according to claim 16, wherein the second value corresponding to the long DRX cycle is the same as or different from the second value corresponding to the short DRX cycle.
18. 18. The communication method according to claim 16, wherein the third value corresponding to the long DRX cycle is the same as or different from the third value corresponding to the short DRX cycle.
19. 19. The communication method according to claim 16, wherein the length of the time window corresponding to the long DRX cycle is different from the length of the time window corresponding to the short DRX cycle.
20. 11. A terminal device comprising a memory, a processor, and a computer program stored in the memory and operable to run on the processor, the program, when executed, causing the processor to perform a method according to any one of claims 1 to 10.
21. 20. A network device comprising a memory, a processor, and a computer program stored in the memory and operable to run on the processor, the program, when executed, causing the processor to perform a method according to any one of claims 11 to 19.
22. 20. A computer readable storage medium containing instructions which, when run on a computer, cause the computer to perform the method of any one of claims 1 to 19.
23. A computer program, when said computer program is run on a computer, enabling said computer to carry out the method according to any one of claims 1 to 19.
24. A chip coupled to or including a memory, the chip being configured to load and execute a software program stored in the memory and to perform the method of any one of claims 1 to 19.
25. 20. A system-on-chip including a processor and a memory, the memory including instructions that, when executed by the processor, perform the method of any one of claims 1 to 19.