Wireless resource configuration method, apparatus, and related device
By obtaining the reference signal received power value at the lowest point of the target cell signal in the wireless communication network, conducting file transfer protocol tests, determining extreme threshold indicators, and optimizing resource block configuration, the problem that wireless resource configuration technology cannot meet the needs of key protection scenarios is solved, and network stability and efficiency are improved.
Patent Information
- Application Number
- CN202510184185.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2045-02-19
AI Technical Summary
Existing wireless resource allocation technologies cannot meet the high data transmission demands of critical security scenarios, resulting in limited performance and stability of wireless communication networks in various application scenarios.
By obtaining the reference signal received power values of multiple preset marker points in the target cell, the lowest signal point is determined, and file transfer protocol transmission tests are performed at this point to determine the extreme threshold index of the rate per physical resource block, so as to guide the base station side to configure the resource block reservation ratio and optimize the wireless resource configuration.
It improves the efficiency and accuracy of wireless resource allocation, enhances network stability and efficiency in weak signal areas, and ensures reliable service quality even under the most unfavorable conditions.
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Figure CN120018310B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present disclosure relates to the technical field of communication, and particularly relates to a wireless resource configuration method and device and related equipment. BACKGROUND
[0002] In a wireless communication network, as the number of various key guarantee scenarios (such as intelligent transportation, large-scale live broadcast, emergency rescue, etc.) increases, the requirements for data transmission rate and network stability of these scenarios become increasingly stringent. These scenarios usually involve real-time transmission of a large amount of data, such as high-definition video, sensor data, etc., and require the network to provide high-speed, low-latency data transmission services.
[0003] However, the existing wireless resource configuration technology cannot meet the needs of key guarantee scenarios when facing high data transmission demand scenarios, limiting the performance and stability of wireless communication networks in various application scenarios.
[0004] It should be noted that the information disclosed in the above background section is only used to strengthen the understanding of the background of the present disclosure, and therefore can include information that does not constitute prior art known to those of ordinary skill in the art. SUMMARY
[0005] The present disclosure provides a wireless resource configuration method, device and related equipment, which improves the efficiency and accuracy of wireless resource configuration, and improves the stability and efficiency of the network in weak signal areas.
[0006] Other characteristics and advantages of the present disclosure will become apparent from the following detailed description, or will be learned by practice of the present disclosure.
[0007] According to one aspect of the present disclosure, a wireless resource configuration method is provided, applied to a terminal, the method comprising: obtaining reference signal received power values corresponding to a plurality of preset marker points of a target cell; determining a marker point with the lowest target cell reference signal received power value from the reference signal received power values corresponding to the plurality of preset marker points of the target cell; performing a file transfer protocol transmission test on the marker point with the lowest target cell reference signal received power value based on a pre-set time window to determine an extreme threshold index of per physical resource block rate, so that a base station side configures a resource block reservation ratio based on the extreme threshold index of per physical resource block rate.
[0008] In some embodiments, when the wireless resource configuration scenario is along a preset route, the obtaining of the reference signal receiving power values corresponding to the plurality of preset marker points of the target cell comprises: in response to the terminal moving to each preset marker point of the target cell, obtaining the reference signal receiving power value corresponding to each preset marker point of the target cell to obtain the reference signal receiving power values corresponding to the plurality of preset marker points of the target cell; wherein the preset marker points are obtained by uniformly dotting the preset route in the target cell; and the determining of the marker point with the lowest reference signal receiving power value from among the reference signal receiving power values corresponding to the plurality of preset marker points of the target cell comprises: sorting the reference signal receiving power values corresponding to the plurality of preset marker points of the target cell, and determining the marker point with the lowest reference signal receiving power value of the target cell.
[0009] In some embodiments, the wireless resource configuration comprises uplink wireless resource configuration and downlink wireless resource configuration; and the determining of the marker point with the lowest reference signal receiving power value of the target cell from among the reference signal receiving power values corresponding to the plurality of preset marker points of the target cell comprises: when the uplink wireless resource configuration is performed, performing uplink file transfer protocol transmission test based on a preset time window at the marker point with the lowest reference signal receiving power value of the target cell to determine the uplink extreme threshold index per physical resource block rate; and when the downlink wireless resource configuration is performed, performing downlink file transfer protocol transmission test based on a preset time window at the marker point with the lowest reference signal receiving power value of the target cell to determine the downlink extreme threshold index per physical resource block rate.
[0010] In some embodiments, the performing of the file transfer protocol transmission test based on a preset time window at the marker point with the lowest reference signal receiving power value of the target cell to determine the extreme threshold index per physical resource block rate comprises: determining the preset rate per physical resource block corresponding to each unit time within the preset time window at the marker point with the lowest reference signal receiving power value of the target cell; sorting the preset rate per physical resource block corresponding to each unit time within the preset time window; and determining the extreme threshold index per physical resource block rate based on the sorting.
[0011] In some embodiments, the determining of the preset rate per physical resource block corresponding to each unit time within the preset time window at the marker point with the lowest reference signal receiving power value of the target cell comprises: obtaining the packet data convergence protocol layer throughput and the resource block occupation number per unit time within the preset time window at the point with the lowest reference signal receiving power value; and determining the preset rate per physical resource block corresponding to each unit time according to the packet data convergence protocol layer throughput and the resource block occupation number per unit time.
[0012] According to another aspect of the present disclosure, a wireless resource configuration method applied to a base station side is also provided, and the method comprises: obtaining an extreme threshold index of a per-physical resource block rate; wherein the extreme threshold index is used to represent a worst value of the per-physical resource block rate; the extreme threshold index of the per-physical resource block rate is a marker point at which a terminal has a lowest reference signal received power value in a target cell, and is obtained based on a pre-set time window for a file transfer protocol transmission test; the marker point at which the terminal has the lowest reference signal received power value is determined from reference signal received power values corresponding to a plurality of preset marker points in the target cell; the reference signal received power values corresponding to the plurality of preset marker points in the target cell are obtained by the terminal; and configuring a resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate.
[0013] In some embodiments, the wireless resource configuration comprises uplink wireless resource configuration; before the step of configuring the resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate, the method further comprises: obtaining an uplink target rate, a total number of schedulable resource blocks per time slot, and a total number of schedulable resources per unit period; and the step of configuring the resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate further comprises: configuring an uplink resource block reservation ratio according to the uplink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and an uplink extreme threshold index of the per-physical resource block rate, wherein the uplink extreme threshold index of the per-physical resource block rate is a marker point at which the terminal has a lowest reference signal received power value in the target cell, and is obtained based on a pre-set time window for an uplink file transfer protocol transmission test.
[0014] In some embodiments, the wireless resource configuration comprises downlink wireless resource configuration; before the step of configuring the resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate, the method further comprises: obtaining a downlink target rate, a total number of schedulable resource blocks per time slot, and a total number of schedulable resources per unit period; and the step of configuring the resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate further comprises: configuring a downlink resource block reservation ratio according to the downlink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and a downlink extreme threshold index of the per-physical resource block rate, wherein the downlink extreme threshold index of the per-physical resource block rate is a marker point at which the terminal has a lowest reference signal received power value in the target cell, and is obtained based on a pre-set time window for a downlink file transfer protocol transmission test.
[0015] According to another aspect of the present disclosure, a wireless resource configuration apparatus applied to a terminal is also provided, which comprises: a first acquisition module configured to acquire reference signal received power values corresponding to a plurality of preset marker points of a target cell; a first determination module configured to determine a marker point with a lowest reference signal received power value of the target cell from the reference signal received power values corresponding to the plurality of preset marker points of the target cell; a second determination module configured to determine an extreme threshold index of a per-physical resource block rate based on a pre-set time window for a file transfer protocol transmission test at the marker point with the lowest reference signal received power value of the target cell, so as to enable a base station side to configure a resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate.
[0016] According to another aspect of the present disclosure, a wireless resource configuration apparatus applied to a base station side is also provided, which comprises: a second acquisition module configured to acquire an extreme threshold index of a per-physical resource block rate; wherein the extreme threshold index is used to represent a worst value of the per-physical resource block rate; the extreme threshold index of the per-physical resource block rate is obtained by a terminal based on a pre-set time window for a file transfer protocol transmission test at a marker point with a lowest reference signal received power value of a target cell; the marker point with the lowest reference signal received power value is determined from reference signal received power values corresponding to a plurality of preset marker points of the target cell; the reference signal received power values corresponding to the plurality of preset marker points of the target cell are acquired by the terminal; and a configuration module configured to configure a resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate.
[0017] According to another aspect of the present disclosure, an electronic device is also provided, which comprises: a processor; and a memory configured to store executable instructions of the processor; wherein the processor is configured to execute the wireless resource configuration method according to any one of the preceding aspects by executing the executable instructions.
[0018] According to another aspect of the present disclosure, a computer readable storage medium having a computer program stored thereon is also provided, wherein the computer program is executed by a processor to implement the wireless resource configuration method according to any one of the preceding aspects.
[0019] According to another aspect of the present disclosure, a computer program product is also provided, which comprises: a computer program or instructions, wherein the computer program or instructions are executed by a processor to implement the wireless resource configuration method according to any one of the preceding aspects.
[0020] The wireless resource configuration method provided in the embodiments of the present disclosure is applied to a terminal, and the method comprises the following steps: acquiring reference signal receiving power values corresponding to a plurality of preset marker points in a target cell; determining a marker point with the lowest target cell reference signal receiving power value from the reference signal receiving power values corresponding to the plurality of preset marker points in the target cell; performing a file transfer protocol transmission test based on a preset time window at the marker point with the lowest target cell reference signal receiving power value, to determine an extreme threshold index of a per-physical resource block rate, so that a base station side configures a resource block reservation ratio based on the extreme threshold index of the per-physical resource block rate. By acquiring the reference signal receiving power values of the plurality of marker points in the target cell, the weakest point of the signal is located, and the file transfer protocol transmission test is performed at the point, to determine the extreme threshold of the per-physical resource block rate. The base station configures the resource block reservation ratio based on the extreme threshold, thereby improving the efficiency and accuracy of the wireless resource configuration, and thus improving the stability and efficiency of the network in the weak signal area.
[0021] It should be understood that the foregoing general description and the following detailed description are only exemplary and explanatory, and are not limiting to the present disclosure. BRIEF DESCRIPTION OF DRAWINGS
[0022] The accompanying drawings, which are incorporated into and form part of the specification, illustrate embodiments consistent with the present disclosure and, together with the description, serve to explain the principles of the disclosure. Obviously, the drawings in the following description are only some embodiments of the present disclosure, and other drawings can be obtained from these drawings without creative labor for those skilled in the art.
[0023] Figure 1 A system architecture schematic diagram of the wireless resource configuration method in the embodiments of the present disclosure is shown;
[0024] Figure 2 A flowchart of the wireless resource configuration method in the embodiments of the present disclosure is shown;
[0025] Figure 3 A flowchart of the method for determining the marker point with the lowest target cell reference signal receiving power value in the embodiments of the present disclosure is shown;
[0026] Figure 4 A flowchart of the method for determining the extreme threshold index of the per-physical resource block rate in the embodiments of the present disclosure is shown;
[0027] Figure 5 A flowchart of the method for determining the extreme threshold index of the per-physical resource block rate in the embodiments of the present disclosure is shown;
[0028] Figure 6 A flowchart of the wireless resource configuration method in the embodiments of the present disclosure is shown;
[0029] Figure 7 This diagram illustrates a wireless resource configuration device according to an embodiment of the present disclosure.
[0030] Figure 8 This diagram illustrates a wireless resource configuration device according to an embodiment of the present disclosure.
[0031] Figure 9 A structural block diagram of an electronic device according to an embodiment of the present disclosure is shown. Detailed Implementation
[0032] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the examples set forth herein; rather, they are provided so that this disclosure will be more comprehensive and complete, and will fully convey the concept of the exemplary embodiments to those skilled in the art. The described features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.
[0033] Furthermore, the accompanying drawings are merely illustrative of this disclosure and are not necessarily drawn to scale. The same reference numerals in the drawings denote the same or similar parts, and therefore repeated descriptions of them will be omitted. Some block diagrams shown in the drawings are functional entities and do not necessarily correspond to physically or logically independent entities. These functional entities may be implemented in software, in one or more hardware modules or integrated circuits, or in different network and / or processor devices and / or microcontroller devices.
[0034] To facilitate understanding, before introducing the embodiments of this disclosure, the following explanations are provided for several terms involved in the embodiments of this disclosure:
[0035] Reference Signal Received Power (RSRP) is an important metric for measuring downlink signal quality in LTE systems. It represents the average received power level of the reference signal per resource element. The RSRP value reflects the strength of the reference signal received by the user equipment (UE) for a specific cell, typically measured in dBm (decibels per milliwatt). A higher RSRP value indicates better signal quality and a more stable connection, while a lower RSRP value may indicate poor coverage or interference problems.
[0036] File Transfer Protocol (FTP) is a standard network protocol used to transfer files between hosts on a network. It works through a client-server architecture, allowing users to exchange files between different computers, especially on local area networks (LANs) or wide area networks (WANs). FTP is an application-layer protocol based on Transmission Control Protocol (TCP), using two default ports: 20 for data transfer and 21 for command transfer.
[0037] PDCP (Packet Data Convergence Protocol) layer throughput refers to the amount of data successfully transmitted through the PDCP layer within a certain time. The PDCP layer is located at Layer 2 (L2) in the protocol stack of wireless communication systems such as LTE and 5G NR, and is primarily used to handle user plane data transmission. It is commonly used to measure network performance, especially the actual data transmission rate experienced by users.
[0038] An uplink physical resource block (PRB) is used to describe the basic resource unit for transmitting data over a radio interface. A PRB defines the amount of resources allocated to a user for data transmission in both the time and frequency domains, and is typically used to represent transmission capacity and spectrum resource utilization.
[0039] A resource block (RB) is the basic unit used to allocate and manage wireless resources in a wireless communication system, especially in LTE (Long Term Evolution) and similar standards. An RB consists of 12 consecutive subcarriers in the frequency domain and covers one time slot (typically 0.5 milliseconds) in the time domain, thus defining a portion of the time-frequency resource grid required for data transmission.
[0040] As mentioned earlier, in today's highly interconnected world, critical security scenarios cover a wide range of fields. For example, with the rapid development of intelligent transportation, large-scale entertainment events, and emergency response systems, the demand for data transmission rates and stability is increasing daily. Especially in critical security scenarios, such as autonomous vehicle operation, real-time video transmission at concerts, and emergency rescue operations in disaster areas, the requirements for network performance have reached unprecedented levels.
[0041] The development of autonomous vehicle technology relies on high-precision map information, real-time road condition updates, and complex sensor data analysis, all of which depend on efficient data interaction capabilities. Autonomous vehicles continuously collect information about their surroundings through various sensors distributed throughout the vehicle and upload this massive amount of data in real time to the cloud or control center for processing and analysis. To ensure safe driving and efficient operation, data transmission rates need to reach hundreds of megabits per second or even higher to achieve seamless integration from environmental perception to decision-making and execution.
[0042] In large-scale entertainment events, especially concerts, stage performances require close collaboration with backstage crews, including real-time transmission of high-definition video footage and special effects control. These applications demand not only high bandwidth but also exceptional stability to ensure precise and synchronized display of all visual effects. This involves massive data exchange, posing challenges to the effective management and allocation of network resources.
[0043] In emergencies or disasters, rapid and accurate information transmission is crucial for the success of rescue operations. Whether it's drone reconnaissance, on-site medical data sharing, or communication between the command center and frontline teams, a robust and stable communication network is essential. Especially in complex and ever-changing disaster environments, ensuring the timeliness and accuracy of data is paramount.
[0044] To meet the stringent requirements of the aforementioned scenarios, the RB (Reserve Resource) mechanism was developed. This mechanism prioritizes providing sufficient wireless resources for key services in situations of intense network resource competition, ensuring low latency and high throughput during data transmission. However, existing wireless resource allocation technologies cannot meet the needs of key service scenarios with high data transmission demands, limiting the performance and stability of wireless communication networks in various application scenarios.
[0045] Research has shown that precise scheduling of RB resources can effectively avoid service quality degradation caused by resource contention, thus providing a solid network foundation for the safe driving of autonomous vehicles, the spectacular presentation of concerts, and the successful implementation of emergency rescue operations.
[0046] The specific implementation methods of the embodiments of this disclosure will now be described in detail with reference to the accompanying drawings.
[0047] Figure 1 An exemplary system architecture diagram is shown that can be applied to the wireless resource configuration method in the embodiments of this disclosure. For example... Figure 1 As shown, the system architecture may include terminal device 101, network 102, and base station 103.
[0048] Network 102 is a medium used to provide a communication link between terminal device 101 and base station 103, and can be a wired network or a wireless network.
[0049] Optionally, the aforementioned wireless or wired networks use standard communication technologies and / or protocols. The network is typically the Internet, but can also be any network, including but not limited to Local Area Networks (LANs), Metropolitan Area Networks (MANs), Wide Area Networks (WANs), mobile, wired or wireless networks, private networks, or any combination of virtual private networks. In some embodiments, technologies and / or formats including Hyper Text Markup Language (HTML), Extensible Markup Language (XML), etc., are used to represent data exchanged over the network. Furthermore, conventional encryption technologies such as Secure Socket Layer (SSL), Transport Layer Security (TLS), Virtual Private Networks (VPNs), and Internet Protocol Security (IPSec) can be used to encrypt all or some links. In other embodiments, custom and / or dedicated data communication technologies can be used to replace or supplement the aforementioned data communication technologies.
[0050] Optionally, the terminal device in this embodiment may also be referred to as UE (User Equipment). In specific implementation, the terminal device may be a mobile phone, tablet personal computer, laptop computer, personal digital assistant (PDA), mobile internet device (MID), wearable device, or vehicle-mounted device, etc. It should be noted that the specific type of terminal device is not limited in the embodiments of the present invention.
[0051] Base station 103 can refer to a device in the access network that communicates with the terminal device through at least one sector on the air interface. The base station can also coordinate the attribute management of the air interface. For example, the base station can be an evolved LTE base station or a base station (gNB) or access point in an NR (New Radio) system, and is not limited in this embodiment. It should be noted that the base station described in this embodiment can be not only a base station device, but also a relay device, or other network element devices with base station functions.
[0052] Those skilled in the art will know that Figure 1 The number of terminal devices, networks, and base stations shown is merely illustrative; any number of terminal devices, networks, and base stations can be included as needed. This disclosure does not limit the scope of the embodiments.
[0053] Under the above system architecture, this disclosure provides a wireless resource configuration method, which can be executed by any electronic device with computing capabilities.
[0054] In some embodiments, the wireless resource configuration method provided in this disclosure can be implemented by the terminal device and the base station in the above system architecture through interaction.
[0055] Figure 2 This diagram illustrates a flowchart of a wireless resource configuration method according to an embodiment of the present disclosure, applied to a terminal. For example... Figure 2 As shown, the wireless resource configuration method provided in this embodiment includes the following steps:
[0056] S202, obtain the reference signal received power values corresponding to multiple preset marker points in the target cell.
[0057] In this embodiment, the target cell refers to a cell in the wireless communication network that is to be configured with wireless resources; it is a geographical area within the coverage of the base station. Within this cell, wireless communication services are provided to terminals located within that area. Within the target cell, a series of marker points are typically pre-defined to assess signal coverage and optimize the network. These marker points represent different locations within the cell and are used to measure performance indicators such as RSRP (Received Signal Strength Ratio), i.e., preset marker points. The RSRP value is the received power of the reference signal transmitted from the base station, measured by the terminal at each preset marker point, and recorded. This value reflects the signal strength received at that marker point. By setting multiple preset marker points within the target cell and measuring the RSRP value at each marker point, an assessment of the cell's signal coverage can be obtained, helping to identify areas with weak signals for targeted network optimization.
[0058] S204, determine the marker with the lowest reference signal received power value among the reference signal received power values corresponding to multiple preset markers in the target cell.
[0059] Among all the preset markers in the target cell, the marker with the lowest RSRP value represents the area with the weakest signal coverage within the cell. This is an area that needs to be focused on, especially in key scenarios where network coverage needs to be optimized.
[0060] S206, at the marker point where the reference signal received power value of the target cell is the lowest, a file transfer protocol transmission test is performed based on a pre-set time window to determine the extreme threshold index of the rate per physical resource block, so that the base station can configure the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block.
[0061] In this embodiment, a time window refers to a period of time set for performing a specific task or measurement. Here, it is a time period determined for FTP transfer testing to ensure consistency of test conditions. For example, a pre-set time window can be 15 minutes. File Transfer Protocol (FTP) transfer testing is a data transfer test using the FTP protocol, designed to evaluate data transfer efficiency and stability under network conditions. Per Physical Resource Block (PRB) rate refers to the data transfer rate that each physical resource block can support. A PRB in LTE contains 12 consecutive subcarriers, lasting 0.5 milliseconds in the time domain, and its data transfer capability depends on various factors such as channel conditions and modulation scheme. The extreme threshold index refers to the lowest acceptable standard or limit value of the PRB rate determined based on the FTP transfer test results, used to guide how to configure resource blocks to meet minimum performance requirements. The base station side refers to the base station equipment portion in the mobile communication network, responsible for communication with the user equipment (UE). The resource block reservation ratio refers to the proportion of PRBs allocated to a specific service or user relative to the total available PRBs, determined according to the extreme threshold index. This helps ensure that even when network load is high, critical services or users in disadvantaged positions (such as the lowest RSRP) have access to sufficient resources to maintain the required performance levels.
[0062] In this embodiment, by conducting FTP transmission tests at the weakest signal coverage points, the minimum limit value of the rate per physical resource block is identified. Based on this, the base station's resource allocation strategy is adjusted, improving the efficiency and accuracy of wireless resource allocation. This ensures reliable service quality even under the most unfavorable conditions, thereby enhancing network stability and efficiency in weak signal areas. This method can optimize network performance and improve user experience in key protection scenarios.
[0063] In some embodiments, wireless resource configuration may involve multiple scenarios. Taking the autonomous driving scenario as an example, the preset marker points are set along the autonomous vehicle's movement route. Figure 3 This is a flowchart illustrating a method for determining the marker point with the lowest reference signal received power value in a target cell, as provided in this embodiment of the disclosure. Figure 3 As shown, when the wireless resource configuration scenario is along a preset route, the reference signal received power values corresponding to multiple preset marker points in the target cell are obtained, including:
[0064] S302, in response to the terminal moving to each preset marker point in the target cell, obtain the reference signal received power value corresponding to each preset marker point in the target cell, and obtain the reference signal received power value corresponding to multiple preset marker points in the target cell.
[0065] In this embodiment, the preset marker points are obtained by uniformly marking points along a preset route in the target cell. The threshold number of preset marker points can be set according to actual needs; for example, the threshold number of preset marker points can be 200. Specifically, if the autonomous vehicle's movement route contains multiple cells, points can be uniformly marked along the movement test route, requiring ≥200 points per cell. The RSRP value of each point is recorded, and the marker point with the lowest RSRP value in each cell is found. By uniformly marking points along the movement test route, it is ensured that all cells within the autonomous vehicle's driving range receive sufficient test coverage. At least 200 points are set in each cell, ensuring sufficiently dense test data within each cell.
[0066] S304, sort the reference signal received power values corresponding to multiple preset marker points in the target cell, and determine the marker point with the lowest reference signal received power value in the target cell.
[0067] In this embodiment, the reference signal received power (RSRP) values corresponding to multiple preset marker points in the target cell are sorted in ascending or descending order. The marker point with the lowest RSRP value is found in the sorted list. This point represents the area with the weakest signal coverage within the target cell. It should be noted that in practical applications, other methods can also be used to determine the marker point with the lowest RSRP value in the target cell; this disclosure does not impose any limitations on this.
[0068] The spot-marking test scheme in this embodiment, through measures such as uniform spot marking, recording RSRP values, and accurately locating signal weak points, can accurately locate the weakest signal area in each cell, improving the comprehensiveness of test coverage and the accuracy of data, and also providing a clear direction for network optimization, thereby improving the driving safety and reliability of unmanned vehicles.
[0069] In some embodiments, the radio resource configuration includes uplink radio resource configuration and downlink radio resource configuration. Uplink radio resource configuration refers to the allocation of data transmission resources from the terminal to the base station, while downlink radio resource configuration refers to the allocation of data transmission resources from the base station to the terminal. Figure 4 A flowchart illustrating a method for determining an extreme threshold index for the rate per physical resource block, provided in this application embodiment, is shown below. Figure 4 As shown, at the marker point where the target cell reference signal received power value is lowest, a file transfer protocol transmission test is performed based on a pre-set time window to determine the extreme threshold index of the rate per physical resource block, which may include:
[0070] S402, when configuring uplink radio resources, at the marker point with the lowest reference signal received power value in the target cell, perform uplink file transfer protocol transmission test based on a pre-set time window to determine the uplink extreme threshold index of the rate per physical resource block.
[0071] S404: When configuring downlink radio resources, at the marker point with the lowest reference signal received power value in the target cell, a downlink file transfer protocol transmission test is performed based on a pre-set time window to determine the downlink extreme threshold index of the rate per physical resource block.
[0072] In some embodiments, Figure 5 A flowchart illustrating a method for determining an extreme threshold index for the rate per physical resource block, provided in this application embodiment, is shown below. Figure 5 As shown, at the marker point where the target cell reference signal received power value is lowest, a file transfer protocol transmission test is performed based on a pre-set time window to determine the extreme threshold index of the rate per physical resource block, including:
[0073] S502, at the marker point where the reference signal received power value of the target cell is the lowest, determines the preset rate of each physical resource block corresponding to each unit of time within a preset time window.
[0074] The preset rate per physical resource block per unit time refers to the theoretically achievable data transmission rate of each PRB within a specific time period (e.g., one second).
[0075] In some embodiments, at the marker point where the reference signal received power value of the target cell is the lowest, determining the preset rate per physical resource block corresponding to each unit time within a preset time window includes: at the point where the reference signal received power value is the lowest, acquiring the packet data aggregation protocol layer throughput and the number of resource blocks occupied per unit time within a preset time window; and determining the preset rate per physical resource block corresponding to each unit time based on the packet data aggregation protocol layer throughput and the number of resource blocks occupied per unit time.
[0076] In this embodiment, taking an unmanned vehicle as an example, when configuring uplink radio resources, the unmanned vehicle is controlled to move to the location with the lowest reference signal received power. The test card performs terminal FTP uplink tests at the worst RSRP point of each cell for 15 minutes, and records the packet data aggregation protocol layer throughput (PDCP layer throughput) and the number of resource blocks occupied during the process (reading interval 1 second). Then, based on the test data, the per PRB rate T per unit time of each cell is obtained as T = PDCP layer throughput / number of resource blocks occupied per second.
[0077] When configuring downlink radio resources, the unmanned vehicle is controlled to move to the location with the lowest reference signal received power. The test card performs terminal FTP downlink tests at the worst RSRP point of each cell for 15 minutes. The throughput of the packet data aggregation protocol layer (PDCP layer throughput) and the number of resource blocks occupied are recorded during the process (reading interval 1 second). Then, based on the test data, the rate per PRB per unit time of each cell is obtained as T = PDCP layer throughput / number of resource blocks occupied per second.
[0078] S504 sorts the preset rates of each physical resource block corresponding to each unit of time within a preset time window.
[0079] S506, an extreme threshold metric for determining the rate per physical resource block based on sorting.
[0080] In this embodiment, the extreme threshold index for the per physical resource block rate refers to the limit value of one or more PRB rates determined based on actual measurements, used to guide radio resource allocation. These limit values are typically determined based on statistical analysis methods, such as selecting data from specific percentiles as representative, thereby reflecting the performance standard under worst-case conditions. A percentile refers to the value at a certain percentage position after arranging a set of data from smallest to largest. For example, the 99th percentile T 99 This means that 99% of the data are less than or equal to this value, while the 100th percentile T... 100 This is theoretically the worst-case scenario. In the field of wireless communications, this is used to evaluate and optimize network performance, especially considering the quality of service that can still be guaranteed under the worst-case scenario.
[0081] In some embodiments, taking an autonomous vehicle as an example, the goal of uplink radio resource configuration for a target cell is to ensure that necessary quality of service is maintained even under conditions of high network load or poor channel conditions. To find the extreme threshold for the per PRB rate, the 99th percentile T of the uplink per PRB rate can be selected from the preset rates per physical resource block per unit time within a sorted, pre-defined time window. 99 Or 100th percentile T 100It is understandable that here, the preset rate per physical resource block is the uplink preset rate per physical resource block, T. 99 This means that the scenario where the performance was worse only 1% of the time was chosen as the reference; while T 100 This represents the absolute worst value. For example, after sorting, the 99th percentile T is found. 99 The corresponding rate is 3Mbps. Based on this extreme threshold, sufficient PRB resources can be reserved for critical services to ensure a transmission rate of at least 3Mbps / PRB even under adverse conditions, thereby guaranteeing service quality.
[0082] In some embodiments, taking an autonomous vehicle as an example, the logic for downlink radio resource configuration is similar to that for uplink radio resource configuration, but the focus is on the ability to transmit data from the base station to the user equipment. Similarly, the 99th percentile T can be selected from the downlink data per PRB rate of the target cell. 99 Or 100th percentile T 100 For example: Assume the downlink rate per PRB of the target cell is T. 99 The downlink PRB rate is 8 Mbps. This means that in 99% of cases, the downlink PRB rate of this cell will not be lower than 8 Mbps. When configuring downlink radio resources, resource allocation strategies can be adjusted based on this threshold to ensure stable service quality even when faced with a large number of concurrent requests.
[0083] In this way, whether in the uplink or downlink, percentiles are used to determine extreme threshold indicators, which can improve overall network performance and service reliability. This method is also applicable to other application scenarios that require high-priority services, such as emergency communications and real-time video streaming.
[0084] Figure 6 This diagram illustrates a flowchart of a wireless resource configuration method according to an embodiment of the present disclosure, applied to the base station side. Figure 6 As shown, the wireless resource configuration method provided in this embodiment includes the following steps:
[0085] S602, obtains the extreme threshold metric for the rate per physical resource block.
[0086] In this embodiment, the extreme threshold index is used to represent the worst value of the rate per physical resource block; the extreme threshold index of the rate per physical resource block is the marker point with the lowest reference signal received power value of the terminal in the target cell, obtained by performing file transfer protocol transmission tests based on a preset time window; the marker point with the lowest reference signal received power value is determined from the reference signal received power values corresponding to multiple preset marker points; the reference signal received power values corresponding to the multiple preset marker points in the target cell are obtained by the terminal.
[0087] S604 configures the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block.
[0088] In some embodiments, radio resource configuration includes uplink radio resource configuration; before configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block, the method further includes: obtaining the uplink target rate, the total number of schedulable resource blocks per time slot, and the total number of schedulable resources per unit period; configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block further includes: configuring the uplink resource block reservation ratio according to the uplink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and the uplink extreme threshold index of the rate per physical resource block, wherein the uplink extreme threshold index of the rate per physical resource block is a marker point where the terminal has the lowest received power value of the reference signal in the target cell, obtained by performing uplink file transfer protocol transmission tests based on a pre-set time window.
[0089] In this embodiment, the RB reservation ratio of the X quantile required by the target cell to guarantee the uplink target rate B Mbps is calculated. The proportion of RB reserved for uplink at different PRB rate quantiles is expressed as R = {R 100上 R 99上}
[0090] In some embodiments, radio resource configuration includes downlink radio resource configuration; before configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block, the method further includes: obtaining the downlink target rate, the total number of schedulable resource blocks per time slot, and the total number of schedulable resources per unit period; configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block further includes: configuring the downlink resource block reservation ratio according to the downlink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and the downlink extreme threshold index of the rate per physical resource block, wherein the downlink extreme threshold index of the rate per physical resource block is a marker point where the terminal has the lowest received power value of the reference signal in the target cell, obtained by performing downlink file transfer protocol transmission tests based on a pre-set time window.
[0091] In this embodiment, the RB reservation ratio at the X quantile required by the target cell to guarantee the downlink target rate C Mbps is calculated. The proportion of RB reserved for downlink at different PRB rate quantiles is expressed as R = {R 100下 R 99下}
[0092] Based on the same inventive concept, this disclosure also provides a wireless resource configuration device, as described in the following embodiments. Since the principle by which this device embodiment solves the problem is similar to that of the above-described method embodiments, the implementation of this device embodiment can refer to the implementation of the above-described method embodiments, and repeated details will not be elaborated further.
[0093] Figure 7 This diagram illustrates a wireless resource configuration device according to an embodiment of the present disclosure, applied to a terminal, such as... Figure 7 As shown, the device includes: a first acquisition module 71, a first determination module 72, and a second determination module 73;
[0094] The first acquisition module 71 is used to acquire the reference signal received power values corresponding to multiple preset marker points in the target cell;
[0095] The first determining module 72 is used to determine the marker point with the lowest reference signal received power value in the target cell from among the reference signal received power values corresponding to multiple preset marker points in the target cell;
[0096] The second determining module 73 is used to perform file transfer protocol transmission tests based on a pre-set time window at the marker point where the reference signal received power value of the target cell is the lowest, and determine the extreme threshold index of the rate per physical resource block, so that the base station side can configure the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block.
[0097] In some embodiments, the first acquisition module is specifically used to: in response to the terminal moving to each preset marker point in the target cell, acquire the reference signal received power value corresponding to each preset marker point in the target cell, and obtain the reference signal received power values corresponding to multiple preset marker points in the target cell; wherein, the preset marker points are obtained by uniformly marking points on a preset route in the target cell; the first determination module is specifically used to: sort the reference signal received power values corresponding to the multiple preset marker points in the target cell, and determine the marker point with the lowest reference signal received power value in the target cell.
[0098] In some embodiments, the radio resource configuration includes uplink radio resource configuration and downlink radio resource configuration; the second determining module is specifically used for: when performing uplink radio resource configuration, performing uplink file transfer protocol transmission tests based on a pre-set time window at the marker point where the target cell reference signal received power value is the lowest, and determining the uplink extreme threshold index of the rate per physical resource block; when performing downlink radio resource configuration, performing downlink file transfer protocol transmission tests based on a pre-set time window at the marker point where the target cell reference signal received power value is the lowest, and determining the downlink extreme threshold index of the rate per physical resource block.
[0099] In some embodiments, the first determining module is configured to: determine a preset rate per physical resource block per unit time within a preset time window at the marker point where the target cell reference signal received power value is the lowest; sort the preset rates per physical resource block per unit time within the preset time window; and determine an extreme threshold index for the rate per physical resource block based on the sorting.
[0100] In some embodiments, the second determining module is configured to: at the location where the reference signal received power is at its lowest value, acquire the packet data aggregation protocol layer throughput and resource block occupancy per unit time within a preset time window; and determine the preset rate per physical resource block corresponding to each unit time based on the packet data aggregation protocol layer throughput and resource block occupancy per unit time.
[0101] Figure 8 This diagram illustrates a wireless resource configuration device according to an embodiment of the present disclosure, applied to the base station side, such as... Figure 8 As shown, the device includes: a second acquisition module 81 and a configuration module 82;
[0102] The second acquisition module 81 is used to acquire an extreme threshold index for the rate per physical resource block; wherein, the extreme threshold index is used to represent the worst value of the rate per physical resource block; the extreme threshold index for the rate per physical resource block is obtained by the terminal performing a file transfer protocol transmission test based on a pre-set time window at the marker point where the reference signal received power value of the target cell is the lowest; the marker point where the reference signal received power value is the lowest is determined from the reference signal received power values corresponding to multiple preset marker points in the target cell; the reference signal received power values corresponding to the multiple preset marker points in the target cell are acquired by the terminal;
[0103] Configuration module 82 is used to configure the resource block reservation ratio based on an extreme threshold metric of the rate per physical resource block.
[0104] In some embodiments, the radio resource configuration includes uplink radio resource configuration; before configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block, the configuration module 82 is further configured to: obtain the uplink target rate, the total number of schedulable resource blocks per time slot, and the total number of schedulable resources per unit period; the configuration module 82 is configured to: configure the uplink resource block reservation ratio according to the uplink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and the uplink extreme threshold index of the rate per physical resource block, wherein the uplink extreme threshold index of the rate per physical resource block is a marker point where the terminal has the lowest reference signal received power value in the target cell, obtained by performing uplink file transfer protocol transmission tests based on a pre-set time window.
[0105] In some embodiments, the radio resource configuration includes downlink radio resource configuration; before configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block, the configuration module 82 is further configured to: obtain the downlink target rate, the total number of schedulable resource blocks per time slot, and the total number of schedulable resources per unit period; the configuration module 82 is configured to: configure the downlink resource block reservation ratio according to the downlink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and the downlink extreme threshold index of the rate per physical resource block, wherein the downlink extreme threshold index of the rate per physical resource block is a marker point where the terminal has the lowest received power value of the reference signal in the target cell, obtained by performing downlink file transfer protocol transmission tests based on a pre-set time window.
[0106] It should be noted that the examples and application scenarios implemented by the modules in the above device embodiments and the corresponding steps in the method embodiments are the same, but are not limited to the content disclosed in the above method embodiments. It should also be noted that the above modules, as part of the device, can be executed in a computer system such as a set of computer-executable instructions.
[0107] Those skilled in the art will understand that various aspects of this disclosure can be implemented in the following forms: a completely hardware implementation, a completely software implementation (including firmware, microcode, etc.), or a combination of hardware and software implementations, which can be collectively referred to herein as a "circuit", "module" or "system".
[0108] Based on the same inventive concept, this disclosure also provides an electronic device, which includes: a processor; and a memory for storing executable instructions of the processor; wherein the processor is configured to execute the wireless resource configuration method described above by executing the executable instructions. Since the principle by which this electronic device solves the problem is similar to that of the above method embodiments, the implementation of this electronic device embodiment can refer to the implementation of the above method embodiments, and repeated details will not be described again.
[0109] The following reference Figure 9 To describe an electronic device 900 according to such an embodiment of the present disclosure. Figure 9 The electronic device 900 shown is merely an example and should not impose any limitation on the functionality and scope of use of the embodiments disclosed herein.
[0110] like Figure 9 As shown, the electronic device 900 is manifested in the form of a general-purpose computing device. The components of the electronic device 900 may include, but are not limited to: at least one processing unit 910, at least one storage unit 920, and a bus 930 connecting different system components (including the storage unit 920 and the processing unit 910).
[0111] The storage unit stores program code that can be executed by the processing unit 910, causing the processing unit 910 to perform the steps described in the "Exemplary Methods" section of this specification according to various exemplary embodiments of this disclosure. For example, the processing unit 910 can perform the following steps of the above method embodiments: obtaining wireless resource configuration requirement information of the business system; generating a business process of the business system based on the wireless resource configuration requirement information; and obtaining at least one functional component from the low-code environment platform based on the business process and the wireless resource configuration requirement information to obtain wireless resource configuration, so that the low-code environment platform can perform wireless resource configuration.
[0112] Storage unit 920 may include readable media in the form of volatile storage units, such as random access memory (RAM) 9201 and / or cache memory 9202, and may further include read-only memory (ROM) 9203.
[0113] Storage unit 920 may also include a program / utility 9204 having a set (at least one) program module 9205, such program module 9205 including but not limited to: operating system, one or more application programs, other program modules and program data, each or some combination of these examples may include an implementation of a network environment.
[0114] Bus 930 can represent one or more of several types of bus structures, including a memory cell bus or memory cell controller, a peripheral bus, a graphics acceleration port, a processing unit, or a local bus using any of the various bus structures.
[0115] Electronic device 900 can also communicate with one or more external devices 940 (e.g., keyboard, pointing device, Bluetooth device, etc.), and with one or more devices that enable a user to interact with electronic device 900, and / or with any device that enables electronic device 900 to communicate with one or more other computing devices (e.g., router, modem, etc.). This communication can be performed via input / output (I / O) interface 950. Furthermore, electronic device 900 can also communicate with one or more networks (e.g., local area network (LAN), wide area network (WAN), and / or public networks, such as the Internet) via network adapter 960. As shown, network adapter 960 communicates with other modules of electronic device 900 via bus 930. It should be understood that, although not shown in the figures, other hardware and / or software modules can be used in conjunction with electronic device 900, including but not limited to: microcode, device drivers, redundant processing units, external disk drive arrays, RAID systems, tape drives, and data backup storage systems.
[0116] From the above description of the embodiments, those skilled in the art will readily understand that the exemplary embodiments described herein can be implemented by software or by combining software with necessary hardware. Therefore, the technical solutions according to the embodiments of this disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (such as a CD-ROM, USB flash drive, external hard drive, etc.) or on a network, including several instructions to cause a computing device (such as a personal computer, server, terminal device, or network device, etc.) to execute the methods according to the embodiments of this disclosure.
[0117] Based on the same inventive concept, this disclosure also provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the wireless resource configuration method described above. Since the principle by which this computer-readable storage medium embodiment solves the problem is similar to that of the above method embodiments, the implementation of this computer-readable storage medium embodiment can refer to the implementation of the above method embodiments, and repeated details will not be elaborated further.
[0118] More specific examples of computer-readable storage media in this disclosure may include, but are not limited to: electrical connections having one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing.
[0119] In this disclosure, a computer-readable storage medium may include a data signal propagated in baseband or as part of a carrier wave, carrying readable program code. Such propagated data signals may take various forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination thereof. A readable signal medium may also be any readable medium other than a readable storage medium, capable of transmitting, propagating, or transmitting a program for use by or in connection with an instruction execution system, apparatus, or device.
[0120] Optionally, the program code contained on the computer-readable storage medium may be transmitted using any suitable medium, including but not limited to wireless, wired, optical fiber, RF, etc., or any suitable combination thereof.
[0121] In practical implementation, program code for performing the operations of this disclosure can be written in any combination of one or more programming languages, including object-oriented programming languages such as Java and C++, and conventional procedural programming languages such as C or similar languages. The program code can execute entirely on the user's computing device, partially on the user's device, as a standalone software package, partially on the user's computing device and partially on a remote computing device, or entirely on a remote computing device or server. In cases involving remote computing devices, the remote computing device can be connected to the user's computing device via any type of network, including a local area network (LAN) or a wide area network (WAN), or it can be connected to an external computing device (e.g., via the Internet using an Internet service provider).
[0122] Based on the same inventive concept, this disclosure also provides a computer program product, including a computer program or instructions, which, when executed by a processor, implements the wireless resource configuration method of any one of the above method embodiments. Since the principle by which this computer program product embodiment solves the problem is similar to that of the above method embodiments, the implementation of this computer program product embodiment can refer to the implementation of the above method embodiments, and repeated details will not be elaborated further.
[0123] It should be noted that although several modules or units for the device used to perform actions have been mentioned in the detailed description above, this division is not mandatory. In fact, according to embodiments of this disclosure, the features and functions of two or more modules or units described above can be embodied in one module or unit. Conversely, the features and functions of one module or unit described above can be further divided and embodied by multiple modules or units.
[0124] Furthermore, although the steps of the method in this disclosure are described in a specific order in the accompanying drawings, this does not require or imply that the steps must be performed in that specific order, or that all the steps shown must be performed to achieve the desired result. Additional or alternative steps may be omitted, multiple steps may be combined into one step, and / or a step may be broken down into multiple steps.
[0125] From the above description of the embodiments, those skilled in the art will readily understand that the exemplary embodiments described herein can be implemented by software or by combining software with necessary hardware. Therefore, the technical solutions according to the embodiments of this disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (such as a CD-ROM, USB flash drive, external hard drive, etc.) or on a network, including several instructions to cause a computing device (such as a personal computer, server, mobile terminal, or network device, etc.) to execute the methods according to the embodiments of this disclosure.
[0126] Other embodiments of this disclosure will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This disclosure is intended to cover any variations, uses, or adaptations of this disclosure that follow the general principles of this disclosure and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this disclosure are indicated by the appended claims.
Claims
1. A method for configuring wireless resources, characterized in that, Applied to a terminal, the method includes: Obtain the reference signal received power values corresponding to multiple preset marker points in the target cell; Among the reference signal received power values corresponding to multiple preset marker points in the target cell, determine the marker point with the lowest reference signal received power value in the target cell; At the marker point where the reference signal received power value of the target cell is the lowest, a file transfer protocol transmission test is performed based on a pre-set time window to determine the extreme threshold index of the rate per physical resource block, so that the base station can configure the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block. The extreme threshold index is used to represent the worst value of the rate per physical resource block.
2. The wireless resource allocation method according to claim 1, characterized in that, When the wireless resource configuration scenario is along a preset route, obtaining the reference signal received power values corresponding to multiple preset marker points in the target cell includes: In response to the terminal moving to each preset marker point in the target cell, the reference signal received power value corresponding to each preset marker point in the target cell is obtained, thus obtaining the reference signal received power values corresponding to multiple preset marker points in the target cell; wherein, the preset marker points are obtained by uniformly marking points along a preset route in the target cell; The step of determining the marker point with the lowest reference signal received power value among the reference signal received power values corresponding to multiple preset marker points in the target cell includes: The reference signal received power values corresponding to multiple preset marker points in the target cell are sorted, and the marker point with the lowest reference signal received power value in the target cell is determined.
3. The wireless resource allocation method according to claim 1, characterized in that, The wireless resource configuration includes uplink wireless resource configuration and downlink wireless resource configuration; at the marker point with the lowest reference signal received power value in the target cell, a file transfer protocol transmission test is performed based on a pre-set time window to determine the extreme threshold index of the rate per physical resource block, including: When configuring uplink radio resources, at the marker point with the lowest reference signal received power value in the target cell, an uplink file transfer protocol transmission test is performed based on a pre-set time window to determine the uplink extreme threshold index of the rate per physical resource block. When configuring downlink radio resources, downlink file transfer protocol transmission tests are performed at the marker point with the lowest reference signal received power value in the target cell, based on a pre-set time window, to determine the downlink extreme threshold index of the rate per physical resource block.
4. The wireless resource allocation method according to claim 1, characterized in that, At the marker point where the reference signal received power value of the target cell is lowest, a file transfer protocol transmission test is performed based on a pre-set time window to determine the extreme threshold index of the rate per physical resource block, including: At the marker point where the reference signal received power value of the target cell is the lowest, the preset rate of each physical resource block corresponding to each unit of time is determined within a preset time window; Sort the preset rates of each physical resource block corresponding to each unit of time within a preset time window; The extreme threshold index for the rate of each physical resource block is determined based on the sorting.
5. The wireless resource allocation method according to claim 4, characterized in that, At the marker point where the received power value of the reference signal in the target cell is lowest, within a pre-set time window, determine the preset rate per physical resource block per unit time, including: At the point where the reference signal received power is at its lowest value, the throughput of the packet data aggregation protocol layer and the number of resource blocks occupied per unit time are obtained within a pre-set time window. The preset rate per physical resource block per unit time is determined based on the throughput of the packet data aggregation protocol layer and the number of resource blocks occupied per unit time.
6. A method for configuring wireless resources, characterized in that, Applied to the base station side, the method includes: The extreme threshold index for the rate per physical resource block is obtained; wherein, the extreme threshold index is used to represent the worst value of the rate per physical resource block; the extreme threshold index for the rate per physical resource block is obtained by the terminal performing a file transfer protocol transmission test based on a pre-set time window at the marker point where the reference signal received power value of the terminal is the lowest in the target cell; the marker point where the reference signal received power value is the lowest is determined from the reference signal received power values corresponding to multiple preset marker points in the target cell; the reference signal received power values corresponding to the multiple preset marker points in the target cell are obtained by the terminal; Configure the resource block reservation ratio based on the extreme threshold metric of the rate per physical resource block.
7. The wireless resource allocation method according to claim 6, characterized in that, The radio resource configuration includes uplink radio resource configuration; before configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block, it also includes: Obtain the uplink target rate, the total number of schedulable resource blocks per time slot, and the total number of schedulable resource counts per unit period; The configuration of the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block also includes: Based on the uplink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and the uplink extreme threshold index for the rate per physical resource block, the uplink resource block reservation ratio is configured. The uplink extreme threshold index for the rate per physical resource block is the marker point where the terminal has the lowest reference signal received power value in the target cell, obtained by conducting uplink file transfer protocol transmission tests based on a pre-set time window.
8. The wireless resource allocation method according to claim 6, characterized in that, The radio resource configuration includes downlink radio resource configuration; before configuring the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block, it also includes: Obtain the downlink target rate, the total number of schedulable resource blocks per time slot, and the total number of schedulable resource counts per unit period; The configuration of the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block also includes: Based on the downlink target rate, the total number of schedulable resource blocks per time slot, the total number of schedulable resources per unit period, and the downlink extreme threshold index of the rate per physical resource block, the downlink resource block reservation ratio is configured. The downlink extreme threshold index of the rate per physical resource block is the marker point where the terminal has the lowest reference signal received power value in the target cell, obtained by performing downlink file transfer protocol transmission tests based on a pre-set time window.
9. A wireless resource configuration device, characterized in that, Applied to a terminal, the device includes: The first acquisition module is used to acquire the reference signal received power values corresponding to multiple preset marker points in the target cell; The first determining module is used to determine the marker point with the lowest reference signal received power value in the target cell from among the reference signal received power values corresponding to multiple preset marker points in the target cell; The second determining module is used to perform file transfer protocol transmission tests based on a pre-set time window at the marker point where the reference signal received power value of the target cell is the lowest, and determine the extreme threshold index of the rate per physical resource block, so that the base station side can configure the resource block reservation ratio based on the extreme threshold index of the rate per physical resource block, wherein the extreme threshold index is used to represent the worst value of the rate per physical resource block.
10. A wireless resource allocation device, characterized in that, Applied to the base station side, the device includes: The second acquisition module is used to acquire an extreme threshold index for the rate per physical resource block; wherein, the extreme threshold index is used to represent the worst value of the rate per physical resource block; the extreme threshold index for the rate per physical resource block is obtained by the terminal performing a file transfer protocol transmission test based on a pre-set time window at the marker point with the lowest reference signal received power value in the target cell; the marker point with the lowest reference signal received power value is determined from the reference signal received power values corresponding to multiple preset marker points in the target cell; the reference signal received power values corresponding to the multiple preset marker points in the target cell are acquired by the terminal; The configuration module is used to configure the resource block reservation ratio based on extreme threshold indicators of the rate per physical resource block.
11. An electronic device, characterized in that, include: processor; as well as Memory for storing the executable instructions of the processor; The processor is configured to execute the wireless resource configuration method of any one of claims 1 to 5 and / or the wireless resource configuration method of any one of claims 6 to 8 by executing the executable instructions.
12. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, it implements the wireless resource configuration method according to any one of claims 1 to 5 and / or the wireless resource configuration method according to any one of claims 6 to 8.
13. A computer program product comprising: A computer program or instruction, characterized in that, when executed by a processor, the computer program or instruction implements the wireless resource configuration method according to any one of claims 1 to 5 and / or the wireless resource configuration method according to any one of claims 6 to 8.
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