Radio frequency path determination method, apparatus, device, and storage medium

By acquiring and scanning the radio frequency path identifier in the radio frequency path determination method, the problem of emergency call failure caused by radio frequency device failure was solved, and the reliability of data transmission and the success of emergency calls were achieved.

CN116346149BActive Publication Date: 2026-01-02ROLLING WIRELESS SARL
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202211644042.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-20
Publication Date
2026-01-02
Estimated Expiration
2042-12-20

AI Technical Summary

Technical Problem

In emergency situations, damage to some radio frequency devices can prevent emergency calls from being made, delaying timely rescue efforts.

Method used

By acquiring the RF path identifier and scanning the corresponding RF device, after identifying the fault-free device, it is used as the target RF path identifier. If a faulty device exists, an available path identifier is selected from multiple pre-configured RF path identifiers to ensure data transmission.

Benefits of technology

In the event of a radio frequency device failure, it is possible to identify an available radio frequency path, ensuring the reliability of data transmission, especially in emergency situations such as car accidents, to guarantee the successful dialing of emergency help calls.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116346149B_ABST
    Figure CN116346149B_ABST
Patent Text Reader

Abstract

The application relates to a radio frequency channel determination method, device, equipment and storage medium, the method comprises the following steps: acquiring a first radio frequency channel identifier and scanning corresponding radio frequency devices; when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, a second radio frequency channel identifier is selected from a plurality of preconfigured radio frequency channel identifiers; the radio frequency devices corresponding to the second radio frequency channel identifier are scanned, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio frequency channel identifier, the second radio frequency channel identifier is taken as a target radio frequency channel identifier. When there is a faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, the second radio frequency channel identifier without the faulty device can be found from the plurality of preconfigured radio frequency channel identifiers, and the second radio frequency channel identifier is taken as the target radio frequency channel identifier, so that the transmission of data is realized, and the reliability of data transmission is ensured.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the field of communication, and in particular to a radio frequency path determination method and device, equipment and storage medium. BACKGROUND

[0002] With the development of the concept of intelligent cars and the development of cellular wireless communication technology, the cellular wireless communication module has become an essential component of new intelligent cars or electric cars, which enables the car to access the cellular wireless network and thus provides the owner with a wealth of functions.

[0003] At the same time, with the development and progress of microelectronics technology and wireless communication, the design complexity of the cellular wireless communication module has also greatly increased, the complexity of the radio frequency device has greatly increased, and the probability of failure has also greatly increased. The existing radio frequency drive framework, under normal circumstances, needs to detect all the radio frequency devices while ensuring that these radio frequency devices can communicate normally, so that the radio frequency drive can be normally loaded and worked. However, in an emergency situation, such as a car crash, a car fire, a car sinking, if some radio frequency devices are damaged, it will cause the emergency call to be unsuccessful, thereby delaying timely rescue and causing irreparable loss. SUMMARY

[0004] The present application provides a radio frequency path determination method, device, equipment and storage medium to solve the problem that when some radio frequency devices are damaged, the emergency call is unsuccessful, thereby delaying timely rescue and causing irreparable loss.

[0005] In a first aspect, the present application provides a radio frequency path determination method, comprising:

[0006] obtaining a first radio frequency path identifier and scanning the radio frequency device corresponding to the first radio frequency path identifier;

[0007] When it is determined that there is no faulty device in the radio frequency device corresponding to the first radio frequency path identifier, the first radio frequency path identifier is taken as a target radio frequency path identifier;

[0008] When it is determined that there is a faulty device in the radio frequency device corresponding to the first radio frequency path identifier, a second radio frequency path identifier is selected from a plurality of preconfigured radio frequency path identifiers;

[0009] Scan the radio frequency device corresponding to the second radio frequency path identifier, and when it is determined that there is no faulty device in the radio frequency device corresponding to the second radio frequency path identifier, the second radio frequency path identifier is taken as a target radio frequency path identifier.

[0010] In a second aspect, the present application also provides a radio frequency path determination method, comprising:

[0011] In the initialization phase, a first radio path identifier in a configuration file is acquired, and a radio frequency device corresponding to the first radio path identifier is scanned;

[0012] When it is determined that there is no faulty device in the radio frequency device corresponding to the first radio path identifier, the first radio path identifier is taken as an initialization radio path identifier;

[0013] When it is determined that there is a faulty device in the radio frequency device corresponding to the first radio path identifier, a second radio path identifier is selected from a plurality of preconfigured radio path identifiers;

[0014] The radio frequency device corresponding to the second radio path identifier is scanned, and when it is determined that there is no faulty device in the radio frequency device corresponding to the second radio path identifier, the second radio path identifier is taken as the initialization radio path identifier.

[0015] Optionally, the method comprises:

[0016] When the second radio path identifier does not exist in the plurality of preconfigured radio path identifiers, it is determined that the radio frequency system is in an offline mode.

[0017] Optionally, the method further comprises:

[0018] In the data transmission phase, in response to a demand for transmitting target data, the radio frequency device corresponding to the initialization radio path identifier is scanned;

[0019] When it is determined that there is no faulty device in the radio frequency device corresponding to the initialization radio path identifier, the target data is transmitted through the radio frequency device corresponding to the initialization radio path identifier;

[0020] When it is determined that there is a faulty device in the radio frequency device corresponding to the initialization radio path identifier, a third radio path identifier is selected from the plurality of preconfigured radio path identifiers;

[0021] The radio frequency device corresponding to the third radio path identifier is scanned, and when it is determined that there is no faulty device in the radio frequency device corresponding to the third radio path identifier, the target data is transmitted through the radio frequency device corresponding to the third radio path identifier.

[0022] Optionally, the method comprises:

[0023] When the third radio path identifier does not exist in the plurality of preconfigured radio path identifiers, it is determined that the radio frequency system is in an offline mode.

[0024] Optionally, the target data transmitted comprises making an emergency call.

[0025] In a third aspect, the application provides a radio path determination device, comprising:

[0026] a first scanning module, configured to acquire a first radio frequency channel identifier and scan radio frequency devices corresponding to the first radio frequency channel identifier;

[0027] a first determining module, configured to, when it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, take the first radio frequency channel identifier as a target radio frequency channel identifier;

[0028] a selecting module, configured to, when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, select a second radio frequency channel identifier from a plurality of radio frequency channel identifiers configured in advance;

[0029] a second determining module, configured to scan the radio frequency devices corresponding to the second radio frequency channel identifier, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio frequency channel identifier, take the radio frequency channel formed by the radio frequency devices corresponding to the second radio frequency channel identifier as a target radio frequency channel identifier.

[0030] In a fourth aspect, the present application further provides a radio frequency channel determination apparatus, comprising:

[0031] a second scanning module, configured to, in an initialization stage, acquire a first radio frequency channel identifier in a configuration file and scan radio frequency devices corresponding to the first radio frequency channel identifier;

[0032] a third determining module, configured to, when it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, take the first radio frequency channel identifier as an initialization radio frequency channel identifier;

[0033] a second selecting module, configured to, when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, select a second radio frequency channel identifier from a plurality of radio frequency channel identifiers configured in advance;

[0034] a fourth determining module, configured to scan the radio frequency devices corresponding to the second radio frequency channel identifier, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio frequency channel identifier, take the second radio frequency channel identifier as an initialization radio frequency channel identifier.

[0035] In a fifth aspect, the present application further provides an electronic device, comprising a processor, a memory and a communication bus, wherein the processor and the memory complete mutual communication through the communication bus;

[0036] the memory, configured to store a computer program;

[0037] the processor, configured to execute the program stored in the memory, and realize the radio frequency channel determination method described above.

[0038] In a sixth aspect, the present application provides a computer readable storage medium storing a computer program, which, when executed by a processor, implements the radio path determination method described above.

[0039] The technical solution provided by the embodiments of the present application has the following advantages compared with the prior art: the method provided by the embodiments of the present application acquires a first radio path identifier and scans radio frequency devices corresponding to the first radio path identifier; when it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio path identifier, the first radio path identifier is taken as a target radio path identifier; when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio path identifier, a second radio path identifier is selected from a plurality of preconfigured radio path identifiers; the radio frequency devices corresponding to the second radio path identifier are scanned, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio path identifier, the second radio path identifier is taken as the target radio path identifier. Since a plurality of radio path identifiers are preconfigured, when there is a faulty device in the radio frequency devices corresponding to the first radio path identifier, which causes the radio frequency devices to be unable to transmit data, a second radio path identifier capable of transmitting data can be found from the plurality of preconfigured radio path identifiers, and the second radio path identifier is taken as the target radio path identifier, so that the transmission of data is realized, thereby ensuring the reliability of data transmission. BRIEF DESCRIPTION OF DRAWINGS

[0040] The accompanying drawings, which are incorporated herein and form part of the specification, illustrate embodiments consistent with the present application and, together with the description, further serve to explain the principles of the application.

[0041] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the accompanying drawings needed to be used in the embodiments or prior art description will be briefly introduced here. Obviously, for those skilled in the art, other drawings can also be obtained based on these drawings without any creative effort.

[0042] Figure 1 FIG. 1 is a flowchart of a radio path determination method according to an embodiment of the present application;

[0043] Figure 2 FIG. 2 is a hardware structure diagram of a radio frequency device according to an embodiment of the present application;

[0044] Figure 3 FIG. 3 is another flowchart of a radio path determination method according to an embodiment of the present application;

[0045] Figure 4 FIG. 4 is a structure diagram of a radio path determination device according to an embodiment of the present application;

[0046] Figure 5Another structure diagram of the radio frequency channel determination device in the embodiment of the present application is shown. DETAILED DESCRIPTION

[0047] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described below in connection with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the protection scope of the present application.

[0048] To solve the problems in the prior art, the first aspect of the present application provides a radio frequency channel determination method, which can be applied to an electronic device. The electronic device can be specifically a module capable of realizing a communication function or a vehicle-mounted device containing the module.

[0049] As shown in Figure 1 , the method comprises the following steps:

[0050] Step 101: obtaining a first radio frequency channel identifier and scanning radio frequency devices corresponding to the first radio frequency channel identifier.

[0051] Specifically, the first radio frequency channel identifier corresponding to a plurality of radio frequency devices is obtained, and the electronic device scans a plurality of radio frequency devices corresponding to the first radio frequency channel identifier.

[0052] Step 102: when it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, taking the first radio frequency channel identifier as a target radio frequency channel identifier.

[0053] Step 103: when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio frequency channel identifier, selecting a second radio frequency channel identifier from a plurality of radio frequency channel identifiers configured in advance.

[0054] Please refer to Figure 2 , Figure 2 The hardware structure diagram of the radio frequency device shown in the embodiment is shown. For the Figure 2The illustrated radio frequency device pre-compile the path formed by the radio frequency device into one independent radio frequency path identifier, so that the radio frequency path formed by the corresponding radio frequency device of each radio frequency path identifier can transmit data. The electronic device is pre-configured with a plurality of radio frequency path identifiers. When it is determined that there is a faulty device in the radio frequency device corresponding to the first radio frequency path identifier, a second radio frequency path identifier is selected from the pre-configured plurality of radio frequency path identifiers. In addition, the first radio frequency path identifier in step 101 can be one of the pre-set frequency path identifiers, and the embodiment does not make specific limitation thereon. It should be understood that the radio frequency devices corresponding to different frequency path identifiers are not completely the same, i.e. some radio frequency devices match different frequency path identifiers at the same time.

[0055] Step 104, scan the radio frequency device corresponding to the second radio frequency path identifier, and when it is determined that there is no faulty device in the radio frequency device corresponding to the second radio frequency path identifier, the second radio frequency path identifier is taken as the target radio frequency path identifier.

[0056] In the application, the above-mentioned radio frequency path determination method can be applied to the initialization stage of the electronic device, and / or the data transmission stage of the electronic device.

[0057] Specifically, when applied to the initialization stage, the electronic device acquires the first radio frequency path identifier (at this time, it is specifically the frequency path identifier in the configuration file) and scans the radio frequency device corresponding to the first radio frequency path identifier; when it is determined that there is no faulty device in the radio frequency device corresponding to the first radio frequency path identifier, the first radio frequency path identifier is taken as the initialization radio frequency path identifier (i.e. the aforementioned target radio frequency path identifier), and the radio frequency path formed by the radio frequency device corresponding to the first radio frequency path identifier is taken as the radio frequency path capable of transmitting data for subsequent data transmission.

[0058] When it is determined that there is a faulty device in the radio frequency device corresponding to the first radio frequency path identifier, a second radio frequency path identifier is selected from the pre-configured plurality of radio frequency path identifiers; scan the radio frequency device corresponding to the second radio frequency path identifier, and when it is determined that there is no faulty device in the radio frequency device corresponding to the second radio frequency path identifier, the second radio frequency path identifier is taken as the initialization radio frequency path identifier (i.e. the aforementioned target radio frequency path identifier), and the radio frequency path formed by the radio frequency device corresponding to the second radio frequency path identifier is taken as the radio frequency path capable of transmitting data for subsequent data transmission.

[0059] In the data transmission stage, the first radio path identifier is acquired (at this time, it is the initialized radio path identifier after the initialization stage), and the radio frequency devices corresponding to the first radio path identifier are scanned. When it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio path identifier, the first radio path identifier is used as the final radio path identifier (i.e., the target radio path identifier), and the radio frequency devices corresponding to the first radio path identifier are used to form a radio path for data transmission.

[0060] When it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio path identifier, a second radio path identifier is selected from the plurality of preconfigured radio path identifiers. The radio frequency devices corresponding to the second radio path identifier are scanned, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio path identifier, the second radio path identifier is used as the final radio path identifier (i.e., the target radio path identifier), and the radio frequency devices corresponding to the second radio path identifier are used to form a radio path for data transmission.

[0061] In the initialization stage or the data transmission stage, since a plurality of radio path identifiers are preconfigured, when there is a faulty device in the radio frequency devices corresponding to the first radio path identifier, which causes the radio frequency devices to be unable to transmit data, a second radio path identifier capable of transmitting data can be found from the plurality of preconfigured radio path identifiers, and the second radio path identifier is used as the target radio path identifier, so that data transmission is realized, thereby ensuring the reliability of data transmission.

[0062] The second aspect of the application also provides a radio path determination method, as shown in Figure 3 , which comprises the following steps.

[0063] In step 301, in the initialization stage, a first radio path identifier in a configuration file is acquired, and the radio frequency devices corresponding to the first radio path identifier are scanned.

[0064] In step 302, when it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio path identifier, the first radio path identifier is used as the initialized radio path identifier.

[0065] In step 303, when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio path identifier, a second radio path identifier is selected from the plurality of preconfigured radio path identifiers.

[0066] In step 304, the radio frequency devices corresponding to the second radio path identifier are scanned, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio path identifier, the second radio path identifier is used as the initialized radio path identifier.

[0067] Specifically, in the initialization phase, the electronic device acquires the first radio path identifier in the configuration file and scans the radio frequency device corresponding to the first radio path identifier; when it is determined that there is no faulty device in the radio frequency device corresponding to the first radio path identifier, the first radio path identifier is taken as the initialization radio path identifier, and the radio path formed by the radio frequency device corresponding to the first radio path identifier is taken as the radio path capable of transmitting data for subsequent data transmission.

[0068] When it is determined that there is a faulty device in the radio frequency device corresponding to the first radio path identifier, a second radio path identifier is selected from the plurality of radio path identifiers configured in advance; the radio frequency device corresponding to the second radio path identifier is scanned, and when it is determined that there is no faulty device in the radio frequency device corresponding to the second radio path identifier, the second radio path identifier is taken as the initialization radio path identifier, and the radio path formed by the radio frequency device corresponding to the second radio path identifier is taken as the radio path capable of transmitting data for subsequent data transmission.

[0069] The method of the embodiment can find the second radio path identifier capable of transmitting data from the plurality of radio path identifiers configured in advance when there is a faulty device in the radio frequency device corresponding to the first radio path identifier and the radio frequency device cannot transmit data in the initialization phase, and take the second radio path identifier as the initialization radio path identifier. Meanwhile, the radio path formed by the radio frequency device corresponding to the second radio path identifier is taken as the radio path capable of transmitting data for subsequent data transmission, thereby ensuring the reliability of subsequent data transmission.

[0070] Optionally, in an embodiment of the present application, the method further comprises:

[0071] Step 305: When there is no second radio path identifier in the plurality of radio path identifiers configured in advance, it is determined that the radio frequency system is in an offline mode.

[0072] Specifically, when it is determined that there is a faulty device in the radio frequency device corresponding to the first radio path identifier, and when there is no second radio path identifier in the plurality of radio path identifiers configured in advance, it is determined that the radio frequency system is in an offline mode, and data cannot be transmitted at this time.

[0073] Further, in an embodiment of the present application, the method further comprises:

[0074] Step 306: In the data transmission phase, the radio frequency device corresponding to the initialization radio path identifier is scanned in response to the demand for transmitting target data.

[0075] Step 307: When it is determined that there is no faulty device in the radio frequency device corresponding to the initialization radio path identifier, the target data is transmitted through the radio frequency device corresponding to the initialization radio path identifier.

[0076] Step 308, when it is determined that there is a faulty device in the radio frequency device corresponding to the initialization radio frequency channel identifier, a third radio frequency channel identifier is selected from the plurality of preconfigured radio frequency channel identifiers;

[0077] Step 309, the radio frequency device corresponding to the third radio frequency channel identifier is scanned, and when it is determined that there is no faulty device in the radio frequency device corresponding to the third radio frequency channel identifier, the target data is transmitted through the radio frequency device corresponding to the third radio frequency channel identifier.

[0078] In the data transmission phase, in response to the demand for transmitting the target data, the radio frequency device corresponding to the initialization radio frequency channel identifier determined in the initialization phase is scanned; when it is determined that there is no faulty device in the radio frequency device corresponding to the initialization radio frequency channel identifier, the initialization radio frequency channel identifier is used as the final radio frequency channel identifier, and the target data is transmitted through the radio frequency device corresponding to the initialization radio frequency channel identifier.

[0079] When it is determined that there is a faulty device in the radio frequency device corresponding to the initialization radio frequency channel identifier, a third radio frequency channel identifier is selected from the plurality of preconfigured radio frequency channel identifiers; the radio frequency device corresponding to the third radio frequency channel identifier is scanned, and when it is determined that there is no faulty device in the radio frequency device corresponding to the third radio frequency channel identifier, the third radio frequency channel identifier is used as the final radio frequency channel identifier, and the target data is transmitted through the radio frequency device corresponding to the third radio frequency channel identifier.

[0080] The method of the embodiment of the application, in the data transmission phase, when it is determined that there is a faulty device in the radio frequency device corresponding to the initialization radio frequency channel identifier, which causes these radio frequency devices to be unable to transmit data, a third radio frequency channel identifier that can transmit data can be found from the plurality of preconfigured radio frequency channel identifiers, the third radio frequency channel identifier is used as the final radio frequency channel identifier, and the target data is transmitted through the radio frequency device corresponding to the third radio frequency channel identifier, so that the transmission of data is realized, thereby ensuring the reliability of data transmission.

[0081] Optionally, in an embodiment of the application, the method further comprises:

[0082] Step 310, when there is no third radio frequency channel identifier in the plurality of preconfigured radio frequency channel identifiers, it is determined that the radio frequency system is in an offline mode.

[0083] Specifically, when it is determined that there is a faulty device in the radio frequency device corresponding to the initialization radio frequency channel identifier, and when there is no third radio frequency channel identifier in the plurality of preconfigured radio frequency channel identifiers, it is determined that the radio frequency system is in an offline mode, and data cannot be transmitted at this time.

[0084] It can be understood that the transmission of the target data can be specifically to make an emergency call, and of course can also be a normal telephone call or digital information transmission, and the specific form of the transmission of the target data is not limited.

[0085] Based on the same concept, in a third aspect, the present application provides a radio frequency path determination apparatus, as shown in the accompanying drawings, comprising: Figure 4

[0086] The first scanning module 401 is configured to acquire a first radio frequency path identifier and scan radio frequency devices corresponding to the first radio frequency path identifier.

[0087] The first determining module 402 is configured to, when it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio frequency path identifier, take the first radio frequency path identifier as a target radio frequency path identifier.

[0088] The selecting module 403 is configured to, when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio frequency path identifier, select a second radio frequency path identifier from a plurality of preconfigured radio frequency path identifiers.

[0089] The second determining module 404 is configured to scan the radio frequency devices corresponding to the second radio frequency path identifier, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio frequency path identifier, take the radio frequency path formed by the radio frequency devices corresponding to the second radio frequency path identifier as a target radio frequency path identifier.

[0090] Based on the same concept, in a fourth aspect, the present application further provides a radio frequency path determination apparatus, as shown in the accompanying drawings, comprising: Figure 5

[0091] The second scanning module 501 is configured to, in an initialization stage, acquire a first radio frequency path identifier in a configuration file and scan radio frequency devices corresponding to the first radio frequency path identifier.

[0092] The third determining module 502 is configured to, when it is determined that there is no faulty device in the radio frequency devices corresponding to the first radio frequency path identifier, take the first radio frequency path identifier as an initialization radio frequency path identifier.

[0093] The second selecting module 503 is configured to, when it is determined that there is a faulty device in the radio frequency devices corresponding to the first radio frequency path identifier, select a second radio frequency path identifier from a plurality of preconfigured radio frequency path identifiers.

[0094] The fourth determining module 504 is configured to scan the radio frequency devices corresponding to the second radio frequency path identifier, and when it is determined that there is no faulty device in the radio frequency devices corresponding to the second radio frequency path identifier, take the second radio frequency path identifier as an initialization radio frequency path identifier.

[0095] Optionally, the apparatus is configured to:

[0096] When the second radio frequency path identifier does not exist in the plurality of preconfigured radio frequency path identifiers, it is determined that the radio frequency system is in an offline mode. ​​

[0097] Optionally, the apparatus is further configured to:

[0098] In the data transmission phase, in response to a requirement of transmitting target data, scan the corresponding radio devices of the initial radio path identifier;

[0099] When it is determined that there is no faulty device in the corresponding radio devices of the initial radio path identifier, transmit the target data through the corresponding radio devices of the initial radio path identifier;

[0100] When it is determined that there is a faulty device in the corresponding radio devices of the initial radio path identifier, select a third radio path identifier from the plurality of preconfigured radio path identifiers;

[0101] Scan the corresponding radio devices of the third radio path identifier, and when it is determined that there is no faulty device in the corresponding radio devices of the third radio path identifier, transmit the target data through the corresponding radio devices of the third radio path identifier.

[0102] Optionally, the apparatus is configured to:

[0103] When the third radio path identifier does not exist in the plurality of preconfigured radio path identifiers, determine that the radio system is in an offline mode.

[0104] Optionally, the target data includes making an emergency call.

[0105] Based on the same concept, in a fifth aspect, the present application provides an electronic device, comprising a processor, a memory and a communication bus, wherein the processor and the memory complete mutual communication through the communication bus;

[0106] The memory is configured to store a computer program;

[0107] The processor is configured to execute the program stored in the memory, and realize the radio path determination method described above.

[0108] Based on the same concept, in a sixth aspect, the present application provides a computer readable storage medium, which stores a computer program, and the computer program is executed by a processor to realize the radio path determination method described above.

[0109] In the embodiments described above, all or some of the steps can be implemented by software, hardware or firmware, or any combination thereof. When implemented by software, all or some of the steps can be implemented in the form of one or more computer programs. The computer program can be stored in any computer readable medium, and loaded into the computer for execution. The computer readable medium includes: a computer storage medium and a computer communication medium. The computer storage medium includes: volatile memory and non-volatile memory. The computer storage medium includes: an electric medium, a magnetic medium, an optical medium, and a solid medium. The computer communication medium includes: computer communication networks and computer networks. The computer program can be loaded into many different computers and computers networks to implement the embodiments described above.

[0110] It should be noted that the terms "first", "second" and the like in this text are used only to distinguish one entity or action from another, and do not necessarily require or imply these entities or actions have to exist in a temporal order. Also, the terms "comprise", "include" or any other variant thereof are intended to cover a non-exclusive inclusion, such that processes, methods, articles or apparatuses that comprise a list of elements are not limited to those elements, but can include other elements not expressly listed or inherent to such processes, methods, articles or apparatuses.

[0111] The above description is merely one specific implementation of the application. Many modifications and variations of the described embodiments can be made to the described embodiments without departing from the spirit or scope of the application. Thus, it is intended that the present application cover modifications and variations of this implementation provided they come within the scope of the appended claims and their equivalents.

Claims

1. A method for determining radio frequency paths, characterized in that, The method comprises: acquiring a first radio path identifier and scanning radio devices corresponding to the first radio path identifier, wherein a radio path formed by radio devices corresponding to each radio path identifier can transmit data in the absence of faults, and the first radio path identifier is one of a plurality of preconfigured radio path identifiers; when it is determined that there is no faulty device among the radio devices corresponding to the first radio path identifier, taking the first radio path identifier as a target radio path identifier; when it is determined that there is a faulty device among the radio devices corresponding to the first radio path identifier, selecting a second radio path identifier from the plurality of preconfigured radio path identifiers; scanning radio devices corresponding to the second radio path identifier, and when it is determined that there is no faulty device among the radio devices corresponding to the second radio path identifier, taking the second radio path identifier as the target radio path identifier.

2. A radio frequency path determination method, characterized by, The method comprises: in an initialization phase, acquiring a first radio path identifier in a configuration file and scanning radio devices corresponding to the first radio path identifier, wherein a radio path formed by radio devices corresponding to each radio path identifier can transmit data in the absence of faults, and the first radio path identifier is one of a plurality of preconfigured radio path identifiers; when it is determined that there is no faulty device among the radio devices corresponding to the first radio path identifier, taking the first radio path identifier as an initialization radio path identifier; when it is determined that there is a faulty device among the radio devices corresponding to the first radio path identifier, selecting a second radio path identifier from the plurality of preconfigured radio path identifiers; scanning radio devices corresponding to the second radio path identifier, and when it is determined that there is no faulty device among the radio devices corresponding to the second radio path identifier, taking the second radio path identifier as the initialization radio path identifier.

3. The method of claim 2, wherein, The method comprises: when the second radio path identifier does not exist in the plurality of preconfigured radio path identifiers, determining that the radio frequency system is in an offline mode.

4. The method of claim 2, wherein, The method further comprises: in a data transmission phase, in response to a requirement of transmitting target data, scanning radio devices corresponding to the initialization radio path identifier; when it is determined that there is no faulty device among the radio devices corresponding to the initialization radio path identifier, transmitting the target data through the radio devices corresponding to the initialization radio path identifier; when it is determined that there is a faulty device among the radio devices corresponding to the initialization radio path identifier, selecting a third radio path identifier from the plurality of preconfigured radio path identifiers; scanning radio devices corresponding to the third radio path identifier, and when it is determined that there is no faulty device among the radio devices corresponding to the third radio path identifier, transmitting the target data through the radio devices corresponding to the third radio path identifier.

5. The method of claim 4, wherein, The method comprises: when the third radio path identifier does not exist in the plurality of preconfigured radio path identifiers, determining that the radio frequency system is in an offline mode.

6. The method according to any of claims 4 or 5, characterized in that, The transmission target data comprises making an emergency call.

7. A radio frequency path determination apparatus, characterized by, The method comprises: The first scanning module is configured to acquire a first radio frequency channel identifier and scan a radio frequency device corresponding to the first radio frequency channel identifier, wherein a radio frequency channel formed by the radio frequency device corresponding to each radio frequency channel identifier is capable of transmitting data in the absence of a fault, and the first radio frequency channel identifier is one of a plurality of preconfigured radio frequency channel identifiers; The first determining module is configured to determine that there is no faulty device in the radio frequency device corresponding to the first radio frequency channel identifier, and take the first radio frequency channel identifier as a target radio frequency channel identifier; The first selecting module is configured to select a second radio frequency channel identifier from the plurality of preconfigured radio frequency channel identifiers when it is determined that there is a faulty device in the radio frequency device corresponding to the first radio frequency channel identifier; The second determining module is configured to scan the radio frequency device corresponding to the second radio frequency channel identifier, and determine that there is no faulty device in the radio frequency device corresponding to the second radio frequency channel identifier, and take the radio frequency channel formed by the radio frequency device corresponding to the second radio frequency channel identifier as the target radio frequency channel identifier.

8. A radio frequency path determination apparatus, characterized by, The second scanning module is configured to acquire a first radio frequency channel identifier in a configuration file and scan a radio frequency device corresponding to the first radio frequency channel identifier in an initialization stage, wherein a radio frequency channel formed by the radio frequency device corresponding to each radio frequency channel identifier is capable of transmitting data in the absence of a fault, and the first radio frequency channel identifier is one of a plurality of preconfigured radio frequency channel identifiers; The third determining module is configured to determine that there is no faulty device in the radio frequency device corresponding to the first radio frequency channel identifier, and take the first radio frequency channel identifier as an initialization radio frequency channel identifier; The second selecting module is configured to select a second radio frequency channel identifier from the plurality of preconfigured radio frequency channel identifiers when it is determined that there is a faulty device in the radio frequency device corresponding to the first radio frequency channel identifier; The fourth determining module is configured to scan the radio frequency device corresponding to the second radio frequency channel identifier, and determine that there is no faulty device in the radio frequency device corresponding to the second radio frequency channel identifier, and take the second radio frequency channel identifier as the initialization radio frequency channel identifier. The processor, the memory and the communication bus, wherein the processor and the memory complete mutual communication through the communication bus; 9. An electronic device, comprising: The memory is configured to store a computer program; The processor is configured to execute the program stored in the memory, and realize the radio frequency channel determination method in any one of claims 1-6. The computer program is executed by the processor to realize the radio frequency channel determination method in any one of claims 1-6. ​ 10. A computer readable storage medium storing a computer program, characterized in that, ​

Citation Information

Patent Citations

  • Radio frequency device exception handling method and device, terminal and readable storage medium

    CN113037930A