Partial sensing resource monitoring method and device and user equipment
By determining M listening cycles within N consecutive logical subframes, determining P listening subframes within each listening cycle, and adjusting the listening subframes under the preset conditions, the resource selection failure problem caused by reserved subframes in the prior art is solved, and a more efficient and reliable resource selection is achieved.
Patent Information
- Application Number
- CN202311423310.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-30
- Publication Date
- 2025-05-09
AI Technical Summary
In scenarios where subframes are reserved, the existing monitoring method can easily lead to resource selection failure, because the listening subframe positions between different listening cycles do not match and cannot be mapped to Y subframes that meet the requirements.
Each M logical subframe is determined as one monitoring period within N consecutive logical subframes, and P logical subframes in each monitoring period are determined as a set of monitoring subframes, and when the preset conditions are met, the monitoring subframes are adjusted to avoid the position mismatch problem caused by the existence of the reserved subframes.
It effectively avoids resource selection failure, ensures that in scenes with reserved subframes, the Y subframes can still be successfully mapped to meet the requirements, and improves the reliability and efficiency of resource selection.
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Figure CN119966568A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of communication technologies, and in particular to a partially perceived resource monitoring method, device and user equipment. Background Art
[0002] When the P-UE triggers partial sensing resource selection, it first determines Y subframes from the resource selection window, then excludes the resources on the Y subframes, and finally determines the candidate resource set. When determining the Y subframes, the corresponding positions are all in the monitoring state according to the pre-configured period.
[0003] The existing monitoring method uses 100ms (physical subframe) as the monitoring period, monitors on the configured subframes, and determines the valid Y subframes based on the monitoring subframes in the past 10 monitoring periods during resource selection. However, in scenarios with reserved subframes, the existing monitoring method will cause the monitoring subframe positions between different monitoring periods to not match due to the existence of reserved subframes, making it impossible to map the Y subframes that meet the requirements during the Partial Sensing resource selection process, resulting in resource selection failure. Summary of the invention
[0004] The present invention provides a partially perceived resource monitoring method, device and user equipment, which solves the problem that the existing monitoring method easily causes resource selection failure in a scenario with reserved subframes.
[0005] In a first aspect, an embodiment of the present invention provides a partially perceived resource monitoring method, comprising:
[0006] In N consecutive logical subframes, every M logical subframes are determined as a monitoring period, where M and N are positive integers;
[0007] Determine P logical subframes in each of the monitoring periods as a group of monitoring subframes, and perform monitoring, where P is a positive integer;
[0008] When it is determined that the preset condition is met, the monitoring subframe is adjusted.
[0009] Optionally, when determining that a preset condition is met, adjusting the monitoring subframe includes:
[0010] When the service packet arrives at the media access control MAC layer, determine the physical subframe interval between the last listening subframe in the target listening period and the arrival time of the service packet;
[0011] If the physical subframe interval exceeds the preset number of physical subframes, the counter is incremented by 1;
[0012] If the counter exceeds the preset threshold value, it is determined that the preset condition is met, and the position of the listening subframe in the target listening period and the subsequent listening period is adjusted.
[0013] Optionally, the target monitoring period includes:
[0014] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is greater than or equal to a first preset value, the target monitoring period is the first monitoring period;
[0015] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is less than a first preset value, the target monitoring period is a next monitoring period of the first monitoring period;
[0016] Among them, the first monitoring period is the monitoring period when the service packet arrives at the MAC layer; or, when the subframe where the service packet arrives at the MAC layer is a reserved subframe, the first monitoring period is the monitoring period of the first logical subframe after the reserved subframe.
[0017] Optionally, the adjusting the position of the listening subframe in the target listening period and the subsequent listening period includes:
[0018] For each listening period in the target listening period and subsequent listening periods, adjusting part of the listening subframes in the set of listening subframes to logical subframes in the first target position;
[0019] After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods other than the first Q listening periods in the subsequent listening periods, adjusting another part of the listening subframes that are not adjusted in each listening period to logical subframes that are not determined as listening subframes in the second target position;
[0020] Wherein, in the target monitoring period, the start time of the first target position is longer than a first preset time from the arrival time of the service packet, and the first target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0021] Optionally, the adjusting the position of the listening subframe in the target listening period and the subsequent listening period includes:
[0022] For the target listening period and subsequent listening periods, the positions of the original P listening subframes are kept unchanged, and the P logical subframes located at the third target position in each listening period are expanded into listening subframes;
[0023] After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods in subsequent listening periods except the first Q listening periods, cancel the original P listening subframes, and use only the P logical subframes located in the third target position in each listening period as listening subframes;
[0024] Wherein, in the target monitoring period, the start time of the third target position is longer than a second preset time from the arrival time of the service packet, and the third target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0025] Optionally, the value of Q is related to a configuration parameter, and the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored.
[0026] Optionally, the number of subframes of the adjusted part of the monitoring subframes and the number of subframes of the unadjusted part of the monitoring subframes in the P monitoring subframes are both greater than or equal to the minimum number of candidate subframes.
[0027] Optionally, when the service period indicated by the high layer is 1s, determining the P logical subframes in each of the monitoring periods as a group of monitoring subframes and performing monitoring includes:
[0028] Acquire a configuration parameter, where the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored;
[0029] According to the configuration parameters, P monitoring subframes in each of the monitoring periods are monitored.
[0030] Optionally, the configuration parameter includes a group of bit sequences, and each bit corresponds to an indication information of whether the monitoring period needs to be monitored.
[0031] Optionally, the P logical subframes are a group of continuous resources; or,
[0032] The P logical subframes are a group of discrete resources.
[0033] In a second aspect, an embodiment of the present invention provides a partially perceived resource monitoring device, including:
[0034] A first processing module is used to determine every M logical subframes in N consecutive logical subframes as a monitoring period, where M and N are positive integers;
[0035] A second processing module is used to determine P logical subframes in each monitoring period as monitoring subframes and perform monitoring, where P is a positive integer;
[0036] The third processing module is used to adjust the monitoring subframe when it is determined that the preset condition is met.
[0037] In a third aspect, an embodiment of the present invention provides a user device, comprising: a transceiver, a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein when the processor executes the computer program, the steps of the partially perceived resource monitoring method as described in the first aspect are implemented.
[0038] In a fourth aspect, an embodiment of the present invention provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps of the partially perceived resource monitoring method as described in the first aspect.
[0039] The beneficial effects of the above technical solution of the present invention are:
[0040] In the above scheme, in the process of executing partially perceived resource monitoring, on the one hand, when configuring the monitoring period, in N consecutive logical subframes, every M logical subframes are determined as a monitoring period, and P logical subframes in each monitoring period are determined as a group of monitoring subframes, so as to avoid the problem that the physical subframe is used to configure the monitoring period, which easily leads to the inability to map the Y subframes that meet the requirements during the resource selection process, resulting in the failure of resource selection. On the other hand, by adjusting the monitoring subframe when the preset conditions are met, it is possible to avoid the problem that the delay becomes larger or cannot be mapped to the candidate subframe due to the backward shift of the monitoring subframe due to the existence of the reserved subframe. BRIEF DESCRIPTION OF THE DRAWINGS
[0041] Figure 1 One of the existing partial perception mechanism schematics;
[0042] Figure 2 The second diagram showing some existing perception mechanisms;
[0043] Figure 3 The third diagram showing some existing perception mechanisms;
[0044] Figure 4 A flowchart showing a partially-aware resource monitoring method according to an embodiment of the present invention;
[0045] Figure 5 A schematic diagram showing a monitoring period according to an embodiment of the present invention;
[0046] Figure 6 A second schematic diagram showing a monitoring period according to an embodiment of the present invention;
[0047] Figure 7 A third schematic diagram showing a monitoring period according to an embodiment of the present invention;
[0048] Figure 8 A fourth schematic diagram showing a monitoring period according to an embodiment of the present invention;
[0049] Fig. 9 A fifth schematic diagram showing a monitoring period according to an embodiment of the present invention;
[0050] Fig.10 A structural block diagram showing a partially aware resource monitoring device according to an embodiment of the present invention;
[0051] Fig.11 A schematic diagram showing the hardware structure of a user equipment according to an embodiment of the present invention. DETAILED DESCRIPTION
[0052] In order to make the technical problems, technical solutions and advantages to be solved by the present invention clearer, the following will be described in detail in conjunction with the accompanying drawings and specific embodiments. In the following description, specific details such as specific configurations and components are provided only to help fully understand the embodiments of the present invention. Therefore, it should be clear to those skilled in the art that various changes and modifications can be made to the embodiments described herein without departing from the scope and spirit of the present invention. In addition, for clarity and brevity, the description of known functions and structures is omitted.
[0053] It should be understood that the references to "one embodiment" or "an embodiment" throughout the specification mean that the specific features, structures, or characteristics associated with the embodiment are included in at least one embodiment of the present invention. Therefore, the references to "in one embodiment" or "in an embodiment" appearing throughout the specification do not necessarily refer to the same embodiment. In addition, these specific features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.
[0054] In various embodiments of the present invention, it should be understood that the size of the serial numbers of the following processes does not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present invention.
[0055] Additionally, the terms "system" and "network" are often used interchangeably herein.
[0056] In the embodiments provided in the present application, it should be understood that "B corresponding to A" means that B is associated with A, and B can be determined according to A. However, it should also be understood that determining B according to A does not mean determining B only according to A, and B can also be determined according to A and / or other information.
[0057] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.
[0058] The following first introduces the contents involved in the solution provided in the embodiment of the present application.
[0059] Regarding the resource determination of partial sensing in the standard, Step 1 and Step 2 are to determine the candidate subframe Y and the data in the sensing window, including:
[0060] Step 1: Determine the candidate subframes within the resource selection window
[0061] The UE first determines the range of the resource selection window [n+T1,n+T2] according to the current time n, where T1≤4, which depends on the UE implementation; 20≤T2≤100, and the specific value depends on the UE implementation.
[0062] Then determine Y subframes (logical subframes) from the resource selection window ([n+T1, n+T2]), and the number of Y needs to be greater than or equal to the parameter minNumCandidateSF-r14 configured by the higher layer. How to set Y specifically depends on the UE implementation.
[0063] Step 2: Determine the scope and content of the Sensing window
[0064] See also Figure 1 , according to the subframe determined in Step 1 Get the Sensing window Sensing information on the subframe. step In the PC5 configuration, the value is 100; the value of k is 1, 2, 3, ..., 10, k is indicated by the configuration parameter gapCandidateSensing-r14, gapCandidateSensing is a 10-bit bitmap used to indicate whether the 10 k values are valid, 1 indicates valid, and 0 indicates invalid.
[0065] like Figure 2 In the existing scheme, when determining the "monitoring subframe", 100ms is used as the monitoring period, and the pre-configured subframe is periodically monitored; when selecting resources, the candidate subframe set Y is determined according to the monitoring subframe.
[0066] That is, the monitoring method of the prior art uses 100ms as the monitoring period, that is, the monitoring period is divided by physical subframes, and monitoring is performed at the configured subframe position, without considering the scenario in which the system is equipped with reserved subframes. When the bitmap length is configured as 100, there will be 1 subframe as a reserved subframe every 256ms. Partial perception determines that the candidate subframe Y is calculated according to the logical subframe. If the monitoring method uses 100ms as the period to configure monitoring, there may be a position mismatch problem between the monitoring subframes in different monitoring periods, and it is impossible to determine the candidate subframe Y that meets the requirements, resulting in resource selection failure and performance degradation.
[0067] like Figure 3 In the Partral Sensing resource selection, when determining the candidate subframe Y, the logical subframe The necessary condition for being determined as a candidate subframe is that it is within the sensing window. The subframe is in the monitoring state. The existing solution uses 100ms as the monitoring period, which will appear due to the existence of reserved subframes. Figure 3 In the situation described, according to the formula The subframe is in the listening state, but the actual The subframe is in the monitoring state, and the sensing window There are subframes that are not monitored, so Cannot be used as a candidate subframe.
[0068] To solve the above technical problems, the embodiments of the present invention provide a partially perceived resource monitoring method, device and user equipment, which solve the problem that the existing monitoring method easily causes resource selection failure.
[0069] First embodiment
[0070] like Figure 4 As shown, an embodiment of the present invention provides a partially perceived resource monitoring, which specifically includes the following steps:
[0071] Step 101: In N consecutive logical subframes, every M logical subframes are determined as a monitoring period, where M and N are positive integers;
[0072] In this step, the N logical subframes have consecutive logical subframe numbers. If there are reserved subframes between adjacent logical subframes, the reserved subframes are skipped when numbering the logical subframes and consecutive numbering is performed.
[0073] Among them, in PC5 communication, the physical subframe includes a logical subframe and a reserved subframe.
[0074] Step 102: Determine P logical subframes in each monitoring period as a group of monitoring subframes, and perform monitoring, where P is a positive integer.
[0075] The P logical subframes are a group of continuous resources; or the P logical subframes are a group of discrete resources. That is, a group of monitoring subframes in each monitoring cycle is a group of continuous resources or a group of discrete resources.
[0076] It should be pointed out that when P logical subframes form a group of discrete resources, it is possible to avoid the situation where the local service load is too high and no resources can be selected.
[0077] Specifically, the method for determining the monitoring subframe may refer to the following example:
[0078] Example 1: Configure 10 consecutive logical subframes for every 100 logical subframes
[0079] The system configures 100 logical subframes as a monitoring cycle, and configures a group of monitoring subframes as 10 consecutive logical subframes, namely, the 4th, 5th, 6th, 7th, 8th, 9th, 10th, 11th, 12th, and 13th. The bitmap length is configured as 100, that is, one subframe is reserved for every 256 physical subframes.
[0080] See also Figure 5 , assuming that the current physical subframe number is 1600, then in the first listening cycle, P-UE monitors according to the physical subframes configured in 1604, 1605, 1606, 1607, 1608, 1609, 1610, 1611, 1612, and 1613; in the second listening cycle, P-UE monitors according to the physical subframes configured in 1704, 1705, 1706, 1707, 1708, 1709, 1710, 1711, 1712, and 1713; since 1792 is a reserved subframe, the third listening cycle The physical subframes actually monitored during the period are numbered as follows: 1805, 1806, 1807, 1808, 1809, 1810, 1811, 1812, 1813, and 1814; since 2049 is a reserved subframe, the physical subframes actually monitored during the sixth monitoring period are numbered as follows: 2106, 2107, 2108, 2109, 2110, 2111, 2112, 2113, 2114, and 2115; and so on, for the remaining monitoring periods, the P-UE monitors at the corresponding monitoring subframe positions according to the configuration.
[0081] At time 2600, partial sensing resource selection is triggered, and combined with the monitored subframes in the sensing window, the physical subframe numbers of set Y are determined to be: 2608, 2609, 2610, 2611, 2612, 2613, 2614, 2615, 2616, and 2617.
[0082] Example 2: 10 discrete logical subframes are configured for every 100 logical subframes
[0083] The system configures 100 logical subframes as a monitoring cycle, and configures a group of monitoring subframes as 10 non-continuous logical subframes, namely 5, 10, 15, 20, 25, 30, 35, 40, 45, and 50. The bitmap length is configured as 100, that is, one subframe is reserved for every 256 physical subframes.
[0084] See also Figure 6 , assuming that the current physical subframe number is 1600, the P-UE monitors according to the physical subframes configured at 1605, 1610, 1615, 1620, 1625, 1630, 1635, 1640, 1645, and 1650; in the second monitoring cycle, the P-UE monitors according to the physical subframes configured at 1705, 1710, 1715, 1720, 1725, 1730, 1735, 1740, 1745, and 1750; since 1792 is a reserved subframe, the physical subframe numbers actually monitored in the third monitoring cycle are: 1806, 1811, 1816, 1821, and 1822. 6, 1831, 1836, 1841, 1846, 1851; since 2049 is a reserved subframe, the physical subframe numbers actually monitored in the fifth listening cycle are: 2006, 2011, 2016, 2021, 2026, 2031, 2036, 2041, 2046, 2052; the physical subframe numbers actually monitored in the sixth listening cycle are: 2107, 2112, 2117, 2122, 2127, 2132, 2137, 2142, 2147, 2152; and so on, in the remaining listening cycles, the P-UE monitors at the corresponding listening subframe positions according to the configuration.
[0085] Resource selection is triggered at time 2600, and combined with the monitored subframes in the perception window, the physical subframe numbers of set Y are determined to be: 2609, 2614, 2619, 2624, 2629, 2634, 2639, 2644, 2649, and 2654.
[0086] Step 103: When it is determined that the preset condition is met, the monitoring subframe is adjusted.
[0087] In the above embodiment, in the process of executing partially perceived resource monitoring, on the one hand, when configuring the monitoring period, in N consecutive logical subframes, every M logical subframes are determined as a monitoring period, and P logical subframes in each monitoring period are determined as a group of monitoring subframes, so that the problem of configuring the monitoring period with physical subframes, which easily leads to the inability to map the Y subframes that meet the requirements during the resource selection process, resulting in resource selection failure, can be avoided. On the other hand, by adjusting the monitoring subframe when the preset conditions are met, the problem of increased delay or failure to map to the candidate subframe due to the backward shift of the monitoring subframe due to the existence of the reserved subframe can be avoided.
[0088] In some embodiments, when the service period indicated by the high layer is 1s, determining the P logical subframes in each of the monitoring periods as a group of monitoring subframes and performing monitoring includes:
[0089] Acquire a configuration parameter, where the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored;
[0090] According to the configuration parameters, P monitoring subframes in each of the monitoring periods are monitored.
[0091] The configuration parameter includes a group of bit sequences, and each bit corresponds to an indication information of whether the monitoring period needs to be monitored.
[0092] Optionally, the configuration parameter is a high-level parameter gapCandidateSensing (gap candidate sensing); when the kth bit of the configuration parameter is 1, it means that the listening period corresponding to the kth bit needs to be listened to; when the kth bit of the configuration parameter is 0, it means that the listening period corresponding to the kth bit does not need to be listened to, that is, the kth listening period is skipped and sleeps in the kth listening period. The minimum value of k is 1, and the maximum value of k is the total number of listening periods.
[0093] Exemplarily, the system configures 100 logical subframes as a monitoring period, and a group of configured monitoring subframes are 10 consecutive logical subframes, namely, the 4th, 5th, 6th, 7th, 8th, 9th, 10th, 11th, 12th, and 13th. The bitmap length is configured to 100, that is, there is one subframe as a reserved subframe for every 256 physical subframes. In addition, gapCandidateSensing is configured to 1100100001, and the service cycle is configured to 1s. Since the service cycle is 1s, there are 10 monitoring periods between two service packets. The gapCandidateSensing parameter indicates a monitoring period corresponding to 0, and no monitoring is performed during the entire monitoring period. The gapCandidateSensing parameter indicates a monitoring period corresponding to 1, and monitoring is performed.
[0094] See also Figure 7 , assuming that the current physical subframe number is 1600, the P-UE determines that the 10th bit of the gapCandidateSensing parameter configuration is 1 according to the configuration, then the listening subframe needs to be monitored in the first listening cycle, and the physical subframe numbers in the first listening cycle specifically include: 1604, 1605, 1606, 1607, 1608, 1609, 1610, 1611, 1612, 1613; similarly, if the 9th, 8th, 7th, and 6th bits of the gapCandidateSensing parameter configuration are 0, then no monitoring is performed in the second, third, fourth, and fifth listening cycles; since the 5th bit of gapCandidateSensing is 1, and subframes 1792 and 2049 are reserved subframes, the physical subframe numbers that need to be monitored in the sixth listening cycle include: 2106, 21 07, 2108, 2109, 2110, 2111, 2112, 2113, 2114, 2115; since the 4th and 3rd bits of the gapCandidateSensing parameter configuration indicate 0, no monitoring is performed in the seventh and eighth monitoring cycles; since the 2nd bit of gapCandidateSensing indicates 1, the physical subframe numbers monitored in the ninth monitoring cycle include: 2407, 2408, 2409, 2410, 2411, 2412, 2413, 2414, 2415, 2416; since the 1st bit of the gapCandidateSensing parameter indicates 1, the physical subframe numbers monitored in the tenth monitoring cycle include: 2507, 2508, 2509, 2510, 2511, 2512, 2513, 2514, 2515, 2516.
[0095] Resource selection is triggered at time 2600, and combined with the "listening subframe" in the Sensing window, the physical subframe numbers of set Y are determined to include: 2608, 2609, 2610, 2611, 2612, 2613, 2614, 2615, 2616, and 2617.
[0096] In the above embodiment, when monitoring resources, the monitoring period with the configuration parameter indicating 0 is closed to reduce power consumption.
[0097] In some embodiments, in the above step 103, when it is determined that the preset condition is met, adjusting the monitoring subframe includes:
[0098] When the service packet arrives at the media access control MAC layer, determine the physical subframe interval between the last listening subframe in the target listening period and the arrival time of the service packet;
[0099] If the physical subframe interval exceeds the preset number of physical subframes, the counter is incremented by 1;
[0100] If the counter exceeds the preset threshold value, it is determined that the preset condition is met, and the position of the listening subframe in the target listening period and the subsequent listening period is adjusted.
[0101] For example, it is assumed that the preset number of physical subframes is 50 and the preset threshold value is 1. Figure 8 In the example, the service packet arrives at 8900, and the monitoring subframes in the current monitoring cycle are 8942-8951. The distance between the last monitoring subframe 8951 and the service packet arrival time 8900 is greater than 50, and the counter is incremented by 1. The service packet arrives at 9000, and the monitoring subframes in the current monitoring cycle are 9042-9051. The distance between the last monitoring subframe 9051 and the service packet arrival time 9000 is greater than 50, and the counter is incremented by 1 again. At this time, it is determined that the count number of the counter is 2, which exceeds the preset threshold value 1, and it is determined that the preset condition is met, triggering the adjustment of the monitoring subframe.
[0102] The target monitoring period includes:
[0103] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is greater than or equal to a first preset value, the target monitoring period is the first monitoring period;
[0104] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is less than a first preset value, the target monitoring period is a next monitoring period of the first monitoring period;
[0105] The first monitoring period is the monitoring period when the service packet arrives at the MAC layer; or, when the subframe where the service packet arrives at the MAC layer is a reserved subframe, the first monitoring period is the monitoring period of the first logical subframe after the reserved subframe. It should be noted that Figure 8 and Fig. 9 In the figure, 8900-9000, 9000-9100, 9100-9200, etc. are physical subframe ranges. Due to the existence of reserved subframes, what they represent does not necessarily represent a monitoring cycle.
[0106] Optionally, the first preset value is related to the minimum number of candidate subframes. Exemplarily, the first preset value is equal to the minimum number of candidate subframes.
[0107] In the above embodiment, when determining the need to adjust the starting target listening period of the listening subframe, the minimum number of candidate subframes is taken into consideration. In this way, it can be ensured that when resource selection is triggered at this time, Y subframes that meet the minimum number of candidate subframes can be determined from the current resource selection window and the overlapping part of the target listening period, thereby avoiding resource selection failure.
[0108] In some embodiments, the adjusting the position of the listening subframes in the target listening period and the subsequent listening periods includes the following two schemes:
[0109] Option 1:
[0110] In an optional embodiment, adjusting the position of the listening subframe in the target listening period and the subsequent listening period includes:
[0111] For each listening period in the target listening period and subsequent listening periods, adjusting part of the listening subframes in the set of listening subframes to logical subframes in the first target position;
[0112] After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods other than the first Q listening periods in the subsequent listening periods, adjusting another part of the listening subframes that are not adjusted in each listening period to logical subframes that are not determined as listening subframes in the second target position;
[0113] Wherein, in the target monitoring period, the start time of the first target position is longer than a first preset time from the arrival time of the service packet, and the first target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0114] Exemplarily, assuming that 10 consecutive logical subframes are configured for every 100 logical subframes, after a preset condition is met, the monitoring subframe is triggered to be adjusted, and the adjustment method adopts a partial adjustment method.
[0115] Optionally, the minimum value of the first preset time length is 4 ms.
[0116] Specifically, see Figure 8 , the system configures 100 logical subframes as a monitoring cycle, and configures the monitoring subframes as 10 consecutive subframes, namely, the 4th, 5th, 6th, 7th, 8th, 9th, 10th, 11th, 12th, and 13th. The bitmap length is configured as 100, that is, one subframe is reserved for every 256 physical subframes.
[0117] The adjustment process may include:
[0118] 1) The service packet arrives at time 8900. The monitoring subframes in the current monitoring period are 8942 to 8951. The last monitoring subframe 8951 is greater than 50 seconds from the service packet arrival time 8900. The counter is incremented by 1.
[0119] 2) The service packet arrives at time 9000. The "monitoring subframes" in the current monitoring cycle are 9042-9051. The last "monitoring subframe" is greater than 50 from the service packet arrival time, and the counter is incremented by 1.
[0120] 3) Since the counter is 2 and is greater than the preset threshold value 1, the adjustment process of the monitoring subframe is triggered:
[0121] At time 9000, the five logical subframes 9047, 9048, 9049, 9050, and 9051 in the monitoring subframe are adjusted to the subframe positions of 9004, 9005, 9006, 9007, and 9008, and the remaining monitoring subframes 9042 to 9046 remain unchanged. The physical subframe numbers of the adjusted monitoring subframes are: 9004, 9005, 9006, 9007, 9008, 9042, 9043, 9044, 9045, and 9046.
[0122] It is understandable that 9004 to 9008 are the first target positions. For other listening cycles, the second half of the listening subframes in each listening cycle are adjusted to the first target position in each listening cycle in the same manner, and the first target positions in adjacent listening cycles are spaced by the same number of logical subframes.
[0123] 4) According to the adjusted monitoring subframe, 10 monitoring cycles are continued, and the monitoring subframe adjustment is no longer triggered during this period.
[0124] At time 10000, for other listening cycles after time 10000, another part of the listening subframes that have not been adjusted are adjusted. For example, for the first listening cycle after time 10000, the adjustment process is specifically as follows: the current listening subframes are adjusted from: 10008, 10009, 100010, 100011, 100012, 10046, 10047, 10048, 10049, 10050 to: 10004, 10005, 10006, 10007, 10008, 10009, 10010, 10011, 10012, 10013. It should be noted here that subframes 10008 to 100012 are part of the subframes that have been adjusted, and 10046 to 10050 are another part of the subframes that have not been adjusted. For the unadjusted subframes, 10046 is adjusted to subframe 10004, subframe 10047 is adjusted to subframe 10005, 10048 is adjusted to 10006, and subframe 10049 is adjusted to 10007. Since subframes 10008 to 10012 are occupied by previously adjusted monitoring subframes, subframe 10050 is adjusted to subframe 10013. The "adjustment" here can be understood as "replacement".
[0125] 5) Perform monitoring according to the adjusted monitoring subframe.
[0126] Optionally, the value of Q in the above embodiment is related to a configuration parameter, and the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored.
[0127] Exemplarily, the configuration parameter is the gapCandidateSensing parameter, and the value of Q is greater than or equal to the number of bits where the highest bit indicated as 1 by the gapCandidateSensing parameter is located.
[0128] In the above embodiment, by adjusting the monitoring subframe when the preset conditions are met, the problem of increased delay or failure to map to the candidate subframe due to the monitoring subframe being shifted back due to the existence of the reserved subframe can be avoided.
[0129] In an optional embodiment, the number of subframes of the adjusted part of the listening subframes and the number of subframes of the unadjusted part of the listening subframes in the P listening subframes are both greater than or equal to the minimum number of candidate subframes.
[0130] In this embodiment, by making the number of subframes of the adjusted part of the P monitoring subframes and the number of subframes of the other part of the unadjusted monitoring subframes greater than or equal to the minimum number of candidate subframes, it can be ensured that when resource selection is triggered, subframes that meet the requirements can be selected based on the monitoring cycles that have been monitored in the past, thereby avoiding resource selection failure.
[0131] Option 2:
[0132] In an optional embodiment, adjusting the position of the listening subframe in the target listening period and the subsequent listening period includes:
[0133] For the target listening period and subsequent listening periods, the positions of the original P listening subframes are kept unchanged, and the P logical subframes located at the third target position in each listening period are expanded into listening subframes;
[0134] After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods in subsequent listening periods except the first Q listening periods, cancel the original P listening subframes, and use only the P logical subframes located in the third target position in each listening period as listening subframes;
[0135] Wherein, in the target monitoring period, the start time of the third target position is longer than a second preset time from the arrival time of the service packet, and the third target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0136] Optionally, the value of Q in the above embodiment is related to a configuration parameter, and the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored.
[0137] Optionally, the minimum value of the second preset time length is 4 ms.
[0138] Exemplarily, the configuration parameter is the gapCandidateSensing parameter, and the value of Q is greater than or equal to the number of bits where the highest bit indicated as 1 by the gapCandidateSensing parameter is located.
[0139] Exemplarily, 10 consecutive logical subframes are configured as monitoring subframes for every 100 logical subframes, and the monitoring subframes are adjusted after the adjustment is triggered, and the adjustment method adopts a method of extending and adding monitoring subframes.
[0140] See also Fig. 9 , the system configures 100 logical subframes as a monitoring cycle, and configures a group of monitoring subframes as 10 consecutive subframes, namely, the 4th, 5th, 6th, 7th, 8th, 9th, 10th, 11th, 12th, and 13th. The bitmap length is configured as 100, that is, there is one subframe as a reserved subframe for every 256 physical subframes.
[0141] The adjustment process may include:
[0142] 1) The service packet arrives at time 8900. The monitoring subframes in the current monitoring period are 8942 to 8951. The last monitoring subframe 8951 is greater than 50 seconds from the service packet arrival time 8900. The counter is incremented by 1.
[0143] 2) The service packet arrives at time 9000. The "monitoring subframes" in the current monitoring cycle are 9042-9051. The last "monitoring subframe" is greater than 50 from the service packet arrival time, and the counter is incremented by 1.
[0144] 3) Since the counter is 2 and is greater than the preset threshold value 1, the adjustment process of the monitoring subframe is triggered:
[0145] At this time, it is time 9000, and 10 monitoring subframes are extended, and their starting position is the service packet arrival time + T1. The other monitoring subframes remain unchanged. That is, after the extension, the monitoring subframes include two parts: one part is the extended monitoring subframes: 9004, 9005, 9006, 9007, 9008, 9009, 9010, 9011, 9012, 9013, and the other part of the monitoring subframes is the original monitoring subframes: 9042, 9043, 9044, 9045, 9046, 9047, 9048, 9049, 9050, 9051.
[0146] It can be understood that 9004 to 9013 are the third target positions. For other listening cycles after the logical subframe 9100, the same adjustment is made, the third target position in each listening cycle is extended by 10 logical subframes as a listening subframe, and the third target positions in adjacent listening cycles are spaced by the same number of logical subframes.
[0147] 4) According to the adjusted monitoring subframe, 10 monitoring cycles are continued, and no adjustment is triggered during this period.
[0148] At time 10000, for other listening periods after time 10000, the listening subframes corresponding to the extension are cleared and no longer monitored. For example, for the first listening period after time 10000, the listening subframes at this time only include: 10008, 10009, 10010, 10011, 10012, 10013, 10014, 10015, 10016, 10017.
[0149] 5) Monitor according to the adjusted “monitoring subframe”.
[0150] In the above embodiment, by adjusting the monitoring subframe when the preset conditions are met, the problem of increased delay or failure to map to the candidate subframe due to the monitoring subframe being shifted back due to the existence of the reserved subframe can be avoided.
[0151] Second embodiment
[0152] like Fig.10 As shown, an embodiment of the present invention provides a partially perceived resource monitoring device 1000, including:
[0153] The first processing module 1001 is used to determine every M logical subframes in N consecutive logical subframes as a monitoring period, where M and N are positive integers;
[0154] The second processing module 1002 is used to determine P logical subframes in each monitoring period as a group of monitoring subframes and perform monitoring, where P is a positive integer;
[0155] The third processing module 1003 is configured to adjust the monitoring subframe when it is determined that a preset condition is met.
[0156] Optionally, the third processing module 1003 includes:
[0157] The first processing submodule is used to determine the physical subframe interval between the last listening subframe in the target listening period and the arrival time of the service packet when the service packet arrives at the media access control MAC layer;
[0158] A second processing submodule, configured to increase a counter by 1 if the physical subframe interval exceeds a preset number of physical subframes;
[0159] The third processing submodule is configured to determine that the preset condition is satisfied if the counter exceeds a preset threshold value, and adjust the position of the listening subframe in the target listening period and the subsequent listening period.
[0160] Optionally, the target monitoring period includes:
[0161] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is greater than or equal to a first preset value, the target monitoring period is the first monitoring period;
[0162] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is less than a first preset value, the target monitoring period is a next monitoring period of the first monitoring period;
[0163] The first monitoring period is the monitoring period when the service packet arrives at the MAC layer; or, when the subframe in which the service packet arrives at the MAC layer is a reserved subframe, the first monitoring period is the monitoring period of the first logical subframe after the reserved subframe. Optionally, the third processing submodule includes:
[0164] A first processing unit, configured to adjust part of the listening subframes in the set of listening subframes to logical subframes in a first target position for each listening period in the target listening period and subsequent listening periods;
[0165] A second processing unit is configured to, after monitoring the adjusted first Q monitoring periods, adjust another part of the monitoring subframes that are not adjusted in each monitoring period to logical subframes that are not determined as monitoring subframes in a second target position for a plurality of remaining monitoring periods other than the first Q monitoring periods in the target monitoring period and subsequent monitoring periods;
[0166] Wherein, in the target monitoring period, the start time of the first target position is longer than a first preset time from the arrival time of the service packet, and the first target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0167] Optionally, the third processing submodule includes:
[0168] A third processing unit is used for keeping the original P listening subframe positions unchanged for the target listening period and subsequent listening periods, and expanding the P logical subframes located at the third target position in each listening period into listening subframes;
[0169] a fourth processing unit, configured to, after monitoring the adjusted first Q listening periods, cancel the original P listening subframes for a plurality of remaining listening periods other than the first Q listening periods in the target listening period and subsequent listening periods, and use only the P logical subframes located in the third target position in each listening period as listening subframes;
[0170] Wherein, in the target monitoring period, the start time of the third target position is longer than a second preset time from the arrival time of the service packet, and the third target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0171] Optionally, the value of Q is related to a configuration parameter, and the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored.
[0172] Optionally, the number of subframes of the adjusted part of the monitoring subframes and the number of subframes of the unadjusted part of the monitoring subframes in the P monitoring subframes are both greater than or equal to the minimum number of candidate subframes.
[0173] Optionally, when the service cycle indicated by the high layer is 1s, the second processing module 1002 includes:
[0174] A fourth processing submodule, used for obtaining a configuration parameter, where the configuration parameter is used for indicating whether each of the monitoring cycles needs to be monitored;
[0175] The fifth processing submodule is used to monitor the P monitoring subframes in each of the monitoring periods according to the configuration parameters.
[0176] Optionally, the configuration parameter includes a group of bit sequences, and each bit corresponds to an indication information of whether the monitoring period needs to be monitored.
[0177] Optionally, the P logical subframes are a group of continuous resources; or,
[0178] The P logical subframes are a group of discrete resources.
[0179] The second embodiment of the present invention corresponds to the method of the first embodiment. All implementation means in the first embodiment are applicable to the embodiment of the partially perceived resource monitoring device and can achieve the same technical effect.
[0180] Third embodiment
[0181] In order to better achieve the above goals, Fig.11 As shown, the fourth embodiment of the present invention further provides a user equipment, including:
[0182] A processor 1100; and a memory 1120 connected to the processor 1100 via a bus interface, wherein the memory 1120 is used to store programs and data used by the processor 1100 when performing operations, and the processor 1100 calls and executes the programs and data stored in the memory 1120.
[0183] The transceiver 1110 is connected to the bus interface and is used to receive and send data under the control of the processor 1100; the processor 1100 is used to read the program in the memory 1120 to implement the following steps:
[0184] In N consecutive logical subframes, every M logical subframes are determined as a monitoring period, where M and N are positive integers;
[0185] Determine P logical subframes in each of the monitoring periods as a group of monitoring subframes, and perform monitoring, where P is a positive integer;
[0186] When it is determined that the preset condition is met, the monitoring subframe is adjusted.
[0187] Among them, Fig.11 In the embodiment, the bus architecture may include any number of interconnected buses and bridges, specifically one or more processors represented by the processor 1100 and various circuits of the memory represented by the memory 1120 are linked together. The bus architecture may also link together various other circuits such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art and are therefore not further described herein. The bus interface provides an interface. The transceiver 1110 may be a plurality of components, namely, a transmitter and a transceiver, providing a unit for communicating with various other devices on a transmission medium. For different terminals, the user interface 1130 may also be an interface capable of externally and internally connecting required devices, and the connected devices include but are not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like. The processor 1100 is responsible for managing the bus architecture and general processing, and the memory 1120 may store data used by the processor 1100 when performing operations.
[0188] Optionally, the processor 1100 is configured to read a program in the memory 1120 to implement the following steps:
[0189] When the service packet arrives at the media access control MAC layer, determine the physical subframe interval between the last listening subframe in the target listening period and the arrival time of the service packet;
[0190] If the physical subframe interval exceeds the preset number of physical subframes, the counter is incremented by 1;
[0191] If the counter exceeds the preset threshold value, it is determined that the preset condition is met, and the position of the listening subframe in the target listening period and the subsequent listening period is adjusted.
[0192] Optionally, the target monitoring period includes:
[0193] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is greater than or equal to a first preset value, the target monitoring period is the first monitoring period;
[0194] If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is less than a first preset value, the target monitoring period is a next monitoring period of the first monitoring period;
[0195] The first monitoring period is the monitoring period when the service packet arrives at the MAC layer; or, when the subframe in which the service packet arrives at the MAC layer is a reserved subframe, the first monitoring period is the monitoring period of the first logical subframe after the reserved subframe. Optionally, the processor 1100 is used to read the program in the memory 1120 to implement the following steps:
[0196] For each listening period in the target listening period and subsequent listening periods, adjusting part of the listening subframes in the set of listening subframes to logical subframes in the first target position;
[0197] After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods other than the first Q listening periods in the subsequent listening periods, adjusting another part of the listening subframes that are not adjusted in each listening period to logical subframes that are not determined as listening subframes in the second target position;
[0198] Wherein, in the target monitoring period, the start time of the first target position is longer than a first preset time from the arrival time of the service packet, and the first target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0199] Optionally, the processor 1100 is configured to read a program in the memory 1120 to implement the following steps:
[0200] For the target listening period and subsequent listening periods, the positions of the original P listening subframes are kept unchanged, and the P logical subframes located at the third target position in each listening period are expanded into listening subframes;
[0201] After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods in subsequent listening periods except the first Q listening periods, cancel the original P listening subframes, and use only the P logical subframes located in the third target position in each listening period as listening subframes;
[0202] Wherein, in the target monitoring period, the start time of the third target position is longer than a second preset time from the arrival time of the service packet, and the third target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
[0203] Optionally, the value of Q is related to a configuration parameter, and the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored.
[0204] Optionally, the number of subframes of the adjusted part of the monitoring subframes and the number of subframes of the unadjusted part of the monitoring subframes in the P monitoring subframes are both greater than or equal to the minimum number of candidate subframes.
[0205] Optionally, when the service period indicated by the high layer is 1s, determining the P logical subframes in each of the monitoring periods as a group of monitoring subframes and performing monitoring includes:
[0206] Acquire a configuration parameter, where the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored;
[0207] According to the configuration parameters, P monitoring subframes in each of the monitoring periods are monitored.
[0208] Optionally, the configuration parameter includes a group of bit sequences, and each bit corresponds to an indication information of whether the monitoring period needs to be monitored.
[0209] Optionally, the P logical subframes are a group of continuous resources; or,
[0210] The P logical subframes are a group of discrete resources.
[0211] The user equipment provided by the present invention, in the process of executing partially perceived resource monitoring, on the one hand, when configuring the monitoring period, in N consecutive logical subframes, every M logical subframes are determined as a monitoring period, and P logical subframes in each monitoring period are determined as a group of monitoring subframes, so that the problem of configuring the monitoring period with physical subframes, which easily leads to the inability to map the Y subframes that meet the requirements during the resource selection process, causing the resource selection failure, can be avoided. On the other hand, by adjusting the monitoring subframe when the preset conditions are met, the problem of increased delay or failure to map to the candidate subframe due to the backward shift of the monitoring subframe due to the existence of the reserved subframe can be avoided.
[0212] Those skilled in the art will understand that all or part of the steps to implement the above embodiments may be accomplished by hardware, or may be accomplished by instructing related hardware through a computer program, wherein the computer program includes instructions for executing part or all of the steps of the above method; and the computer program may be stored in a readable storage medium, and the storage medium may be any form of storage medium.
[0213] In addition, a specific embodiment of the present invention further provides a computer-readable storage medium on which a computer program is stored, and when the program is executed by a processor, the steps of the method in the first embodiment described above are implemented. The same technical effect can be achieved, and to avoid repetition, it will not be described here.
[0214] In addition, it should be noted that in the apparatus and method of the present invention, it is obvious that each component or each step can be decomposed and / or recombined. These decompositions and / or recombinations should be regarded as equivalent schemes of the present invention. Moreover, the steps of performing the above-mentioned series of processing can naturally be performed in chronological order according to the order of description, but it is not necessary to perform them in chronological order, and some steps can be performed in parallel or independently of each other. For those of ordinary skill in the art, it is understood that all or any steps or components of the method and apparatus of the present invention can be implemented in any computing device (including processors, storage media, etc.) or a network of computing devices in hardware, firmware, software or a combination thereof, which can be achieved by those of ordinary skill in the art using their basic programming skills after reading the description of the present invention.
[0215] Therefore, the purpose of the present invention can also be achieved by running a program or a group of programs on any computing device. The computing device can be a well-known general device. Therefore, the purpose of the present invention can also be achieved by simply providing a program product containing a program code that implements the method or device. That is to say, such a program product also constitutes the present invention, and the storage medium storing such a program product also constitutes the present invention. Obviously, the storage medium can be any well-known storage medium or any storage medium developed in the future. It should also be pointed out that in the device and method of the present invention, it is obvious that each component or each step can be decomposed and / or recombined. These decompositions and / or recombinations should be regarded as equivalent schemes of the present invention. In addition, the steps of performing the above-mentioned series of processing can naturally be performed in chronological order according to the order of description, but it is not necessary to perform them in chronological order. Some steps can be performed in parallel or independently of each other.
[0216] The above is a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.
Claims
1. A partially aware resource monitoring method, characterized in that: include: In N consecutive logical subframes, every M logical subframes are determined as a monitoring period, where M and N are positive integers; Determine P logical subframes in each of the monitoring periods as a group of monitoring subframes, and perform monitoring, where P is a positive integer; When it is determined that the preset condition is met, the monitoring subframe is adjusted.
2. The partially-aware resource monitoring method according to claim 1, characterized in that: The adjusting the monitoring subframe when it is determined that the preset condition is met includes: When the service packet arrives at the media access control MAC layer, determine the physical subframe interval between the last listening subframe in the target listening period and the arrival time of the service packet; If the physical subframe interval exceeds the preset number of physical subframes, the counter is incremented by 1; If the counter exceeds the preset threshold value, it is determined that the preset condition is met, and the position of the listening subframe in the target listening period and the subsequent listening period is adjusted.
3. The partially-aware resource monitoring method according to claim 2, characterized in that: The target monitoring period includes: if the number of unmonitored monitoring subframes in the first monitoring period is greater than or equal to a first preset value, the target monitoring period is the first monitoring period; If the first monitoring period satisfies that the number of monitoring subframes that are not monitored is less than the first preset value, the target monitoring period is the next monitoring period of the first monitoring period; Among them, the first monitoring period is the monitoring period when the service packet arrives at the MAC layer; or, when the subframe where the service packet arrives at the MAC layer is a reserved subframe, the first monitoring period is the monitoring period of the first logical subframe after the reserved subframe.
4. The partially-aware resource monitoring method according to claim 2, characterized in that: The adjusting the position of the listening subframe in the target listening period and the subsequent listening period includes: For each listening period in the target listening period and subsequent listening periods, adjusting part of the listening subframes in the set of listening subframes to logical subframes in a first target position; After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods other than the first Q listening periods in the subsequent listening periods, adjusting another part of the listening subframes that are not adjusted in each listening period to logical subframes that are not determined as listening subframes in the second target position; Wherein, in the target monitoring period, the start time of the first target position is longer than a first preset time from the arrival time of the service packet, and the first target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
5. The partially-aware resource monitoring method according to claim 2, characterized in that: The adjusting the position of the listening subframe in the target listening period and the subsequent listening period includes: For the target listening period and subsequent listening periods, the positions of the original P listening subframes are kept unchanged, and the P logical subframes located at the third target position in each listening period are expanded into listening subframes; After monitoring the adjusted first Q listening periods, for the target listening period and a plurality of remaining listening periods in subsequent listening periods except the first Q listening periods, cancel the original P listening subframes, and use only the P logical subframes located in the third target position in each listening period as listening subframes; Wherein, in the target monitoring period, the start time of the third target position is longer than a second preset time from the arrival time of the service packet, and the third target positions in adjacent monitoring periods are spaced by the same number of logical subframes.
6. The partially perceived resource monitoring method according to claim 4 or 5, characterized in that: The value of Q is related to a configuration parameter, and the configuration parameter is used to indicate whether each monitoring period needs to be monitored.
7. The partially-aware resource monitoring method according to claim 4, characterized in that: The number of subframes of the adjusted part of the monitoring subframes and the number of subframes of the unadjusted part of the monitoring subframes in the P monitoring subframes are both greater than or equal to the minimum number of candidate subframes.
8. The partially-aware resource monitoring method according to claim 1, characterized in that: In the case where the service period indicated by the high layer is 1s, determining the P logical subframes in each of the monitoring periods as a group of monitoring subframes and performing monitoring includes: Acquire a configuration parameter, where the configuration parameter is used to indicate whether each of the monitoring cycles needs to be monitored; According to the configuration parameters, P monitoring subframes in each of the monitoring periods are monitored.
9. The partially-aware resource monitoring method according to claim 8, characterized in that: The configuration parameter includes a group of bit sequences, and each bit corresponds to an indication information of whether the monitoring period needs to be monitored.
10. The partially-aware resource monitoring method according to claim 1, characterized in that: The P logical subframes are a group of continuous resources; or, The P logical subframes are a group of discrete resources.
11. A user equipment, comprising: A transceiver, a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor implements the steps of the partially perceived resource monitoring method as described in any one of claims 1 to 10 when executing the computer program.
12. A partially aware resource monitoring device, characterized in that: include: A first processing module is used to determine every M logical subframes in N consecutive logical subframes as a monitoring period, where M and N are positive integers; A second processing module is used to determine P logical subframes in each monitoring period as monitoring subframes and perform monitoring, where P is a positive integer; The third processing module is used to adjust the monitoring subframe when it is determined that the preset condition is met.
13. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the steps of the partially-aware resource monitoring method as claimed in any one of claims 1 to 10 are implemented.
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