A parameter configuration method, device and equipment of a radio frequency channel and a storage medium

By building an RF path template library and a device database, RF path control parameters are automatically generated, solving the problem of complicated RF path parameter configuration for 5G modules, improving configuration efficiency and accuracy, and promoting 5G module R&D.

CN116647317BActive Publication Date: 2025-10-24CHINA MOBILE M2M +1
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202210140448.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-02-16
Publication Date
2025-10-24
Estimated Expiration
2042-02-16

AI Technical Summary

Technical Problem

Because 5G modules have many and flexible radio frequency paths, parameter configuration is complicated and prone to errors, which affects the efficiency of 5G module development.

Method used

By constructing an RF path template library and a device database, the control parameters of the target RF path template and device are automatically obtained, the control parameters of the RF path are automatically generated, and the parameters are verified and corrected using a calibration and testing instrument.

Benefits of technology

It enables automatic configuration of RF path parameters, improves configuration efficiency and accuracy, reduces human error, and enhances the R&D efficiency of 5G modules.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN116647317B_ABST
    Figure CN116647317B_ABST
Patent Text Reader

Abstract

The application discloses a method, device, equipment and storage medium for parameter configuration of a radio frequency channel. The method comprises the following steps: obtaining a target radio frequency channel template corresponding to a configuration requirement from a radio frequency channel template library based on the configuration requirement of the radio frequency channel; obtaining first control parameters of at least two radio frequency devices and a combination relationship of the at least two radio frequency devices in the target radio frequency channel template; and generating second control parameters of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the first control parameters of each radio frequency device in the target radio frequency channel template. In this way, the automatic configuration of the radio frequency channel control parameters can be realized, and the efficiency of the radio frequency channel parameter configuration can be improved by obtaining the target radio frequency channel template from the template library according to the configuration requirement, and generating the second control parameters of the radio frequency channel according to the first control parameters of the radio frequency devices and the combination relationship of the radio frequency devices in the radio frequency channel template.
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 parameter configuration method and device of a radio frequency path, an equipment and a storage medium. BACKGROUND

[0002] With the gradual commercialization of the 5th Generation Mobile Communication Technology (5G), various chip platforms have launched 5G commercial chips for 5G modules. Because the radio frequency paths of the 5G modules corresponding to different 5G commercial chips are different, the radio frequency paths of the 5G modules are multiple, and because there are many devices on the path, many combinations of the path, and great flexibility of the path, the parameter configuration workload of the radio frequency path of the 5G module is complicated.

[0003] Currently, the parameter configuration of the radio frequency path of the 5G module is manually generated according to the control parameters of the radio frequency path by referring to the schematic diagram and comparing the related device manual according to the radio frequency devices on the schematic diagram. The entire configuration process is mainly completed by manual work, which is huge and prone to errors. Relying only on manual configuration of the control parameters of the radio frequency path will make it difficult to speed up the efficiency of the hardware development and debugging of the 5G module, bring bottleneck obstacles to the rapid development of the 5G module, and further limit the improvement of the development rate of the 5G module. SUMMARY

[0004] To solve the above technical problems, the embodiments of the present application expect to provide a parameter configuration method, device, equipment and storage medium of a radio frequency path.

[0005] The technical solution of the present application is implemented as follows:

[0006] In a first aspect, a parameter configuration method of a radio frequency path is provided, and the method comprises:

[0007] Based on the configuration requirement of the radio frequency path, a target radio frequency path template corresponding to the configuration requirement is obtained from a radio frequency path template library; wherein the radio frequency path template library comprises at least one radio frequency path template, and the radio frequency path template comprises at least two radio frequency devices;

[0008] The first control parameters of the at least two radio frequency devices in the target radio frequency path template and the combination relationship of the at least two radio frequency devices are obtained;

[0009] Based on the combination relationship of the at least two radio frequency devices in the target radio frequency path template and the first control parameters of each radio frequency device, the second control parameters of the radio frequency path are generated.

[0010] In the scheme, the radio frequency channel template includes radio frequency device types and combination relationships of different radio frequency device types; the obtaining of the first control parameters of the at least two radio frequency devices in the target radio frequency channel template and the combination relationship of the at least two radio frequency devices includes: obtaining the first control parameters of the at least two radio frequency devices in the target radio frequency channel template based on the radio frequency device types of each radio frequency device in the target radio frequency channel template; and obtaining the combination relationship of the at least two radio frequency devices in the target radio frequency channel template based on the combination relationship of the different radio frequency device types and the radio frequency device types of each radio frequency device.

[0011] In the scheme, the radio frequency device types at least include one of the following: a radio frequency chip, a power amplifier, a radio frequency switch, a filter, a duplexer, and a low-noise amplifier.

[0012] In the scheme, the method further includes: constructing a radio frequency device database; and the radio frequency device database includes: the first control parameters corresponding to different radio frequency devices; and the obtaining of the first control parameters of the at least two radio frequency devices in the target radio frequency channel template includes: obtaining the first control parameters corresponding to the radio frequency devices from the radio frequency device database.

[0013] In the scheme, the method further includes: preparing the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template; writing the second control parameters of the radio frequency channel into the prepared radio frequency channel; connecting the prepared radio frequency channel to a calibration instrument to verify the correctness of the second control parameters; determining whether the verification fails; checking whether the first control parameters of the radio frequency devices in the target radio frequency channel template are correct; correcting the first control parameters of the incorrect radio frequency devices; and correcting the second control parameters of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the first control parameters of the corrected incorrect radio frequency devices.

[0014] In the scheme, the method further includes: correcting the first control parameters corresponding to the incorrect radio frequency devices in the radio frequency device database; the radio frequency device database includes the first control parameters corresponding to different radio frequency devices; and the radio frequency device database is used to obtain the first control parameters of the at least two radio frequency devices in the target radio frequency channel template.

[0015] In the scheme, the method further includes: constructing the radio frequency channel template library; and the radio frequency channel template library includes: a corresponding relationship between configuration requirements and radio frequency channel templates.

[0016] In a second aspect, a parameter configuration device of a radio frequency channel is provided, and the device includes:

[0017] The acquisition module is configured to acquire a target radio frequency channel template corresponding to a configuration requirement of the radio frequency channel from a radio frequency channel template library based on the configuration requirement of the radio frequency channel, wherein the radio frequency channel template library comprises at least one radio frequency channel template, and the radio frequency channel template comprises at least two radio frequency devices;

[0018] The acquisition module is further configured to acquire first control parameters of the at least two radio frequency devices in the target radio frequency channel template and a combination relationship of the at least two radio frequency devices.

[0019] The processing module is configured to generate second control parameters of the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template and the first control parameters of each radio frequency device.

[0020] In a third aspect, an electronic device is provided, and the device comprises a processor and a memory configured to store a computer program capable of running on the processor, wherein the processor is configured to execute the steps of the foregoing method when running the computer program.

[0021] In a fourth aspect, a computer storage medium is provided, and the computer storage medium stores a computer program, wherein the computer program is executed by a processor to implement the steps of the foregoing method.

[0022] The present application discloses a method for parameter configuration of a radio frequency channel. The method directly acquires a corresponding target radio frequency channel template from a radio frequency channel template library according to a configuration requirement, acquires first control parameters of radio frequency devices in the template and a combination relationship of the radio frequency devices, and automatically generates second control parameters of the radio frequency channel. The method can realize automatic configuration of radio frequency channel control parameters and improve the efficiency of radio frequency channel parameter configuration. BRIEF DESCRIPTION OF DRAWINGS

[0023] Figure 1 FIG. 1 is a first flowchart of a method for parameter configuration of a radio frequency channel according to an embodiment of the present application;

[0024] Figure 2 FIG. 2 is a second flowchart of a method for parameter configuration of a radio frequency channel according to an embodiment of the present application;

[0025] Figure 3 FIG. 3 is a third flowchart of a method for parameter configuration of a radio frequency channel according to an embodiment of the present application;

[0026] Figure 4 FIG. 4 is a structural diagram of a parameter configuration system of a radio frequency channel according to an embodiment of the present application;

[0027] Figure 5 FIG. 5 is a fourth flowchart of a method for parameter configuration of a radio frequency channel according to an embodiment of the present application;

[0028] Figure 6 FIG. 1 is a schematic diagram of a configuration structure of a parameter configuration device for a radio frequency channel in an embodiment of the present application;

[0029] Figure 7 FIG. 2 is a schematic diagram of a configuration structure of an electronic device in an embodiment of the present application. DETAILED DESCRIPTION

[0030] In order to enable a person skilled in the art to more fully understand the features and technical contents of the embodiments of the present application, the implementation of the embodiments of the present application will be described in detail below with reference to the accompanying drawings, which are used for reference only and do not limit the embodiments of the present application.

[0031] Figure 1 FIG. 3 is a first schematic diagram of a parameter configuration method for a radio frequency channel in an embodiment of the present application. As shown in the figure, the parameter configuration method for the radio frequency channel can specifically include the following steps. Figure 1

[0032] Step 101: Based on a configuration requirement of a radio frequency channel, a target radio frequency channel template corresponding to the configuration requirement is acquired from a radio frequency channel template library; wherein the radio frequency channel template library includes at least one radio frequency channel template, and the radio frequency channel template includes at least two radio frequency devices.

[0033] In actual application, one frequency band of one communication module can include one or more radio frequency channels, and different radio frequency channels are used to implement different communication schemes. When the communication module needs to switch the communication scheme, the radio frequency channel can be switched to implement the switching. Here, the configuration requirement of the radio frequency channel is a requirement determined according to the communication scheme of the communication module.

[0034] Here, the radio frequency channel template is a template used to represent the radio frequency devices in the radio frequency channel and the combination relationship between the radio frequency devices, and includes at least two radio frequency devices. The radio frequency channel configuration requirements of the communication modules of different communication schemes are different, and the corresponding radio frequency devices and the combination relationship between the radio frequency devices are different, that is, different configuration requirements correspond to different radio frequency channel templates.

[0035] Here, the radio frequency channel template library is a database containing at least one radio frequency channel template. For example, in some embodiments, the method further includes: constructing the radio frequency channel template library; wherein the radio frequency channel template library includes: a corresponding relationship between the configuration requirement and the radio frequency channel template.

[0036] Specifically, the radio frequency channel template library is constructed according to the radio frequency channel configuration requirements of different communication schemes, and different radio frequency channel templates are formulated for different configuration requirements.

[0037] ​By constructing a radio frequency channel template library including a plurality of radio frequency channel templates for selection, the radio frequency channel template can be determined according to different configuration requirements when the radio frequency channel configuration is performed, and then the radio frequency devices in the radio frequency channel and the combination relationship between the radio frequency devices are automatically obtained, thereby improving the configuration efficiency of the radio frequency channel.

[0038] Step 102: Obtain the first control parameter of at least two radio frequency devices in the target radio frequency channel template and the combination relationship of the at least two radio frequency devices;

[0039] Here, the first control parameter of the radio frequency device is the control parameter of the radio frequency device obtained according to the manual of the radio frequency device. In actual application, the first control parameter corresponding to the radio frequency device can be obtained according to the manual of the radio frequency device.

[0040] Exemplarily, in some embodiments, the method further comprises: constructing a radio frequency device database; wherein the radio frequency device database comprises: the first control parameter corresponding to different radio frequency devices; and the obtaining the first control parameter of at least two radio frequency devices in the target radio frequency channel template comprises: obtaining the first control parameter corresponding to the radio frequency device from the radio frequency device database.

[0041] Exemplarily, in actual application, the radio frequency device database is a database compiled from the logical control tables of different manufacturers and different models of radio frequency devices, containing radio frequency devices and corresponding first control parameters.

[0042] By constructing the radio frequency device database, the first control parameter of the radio frequency device can be stored, and when the first control parameter of a certain radio frequency device needs to be called, it is not necessary to re-search the manual of the corresponding device, but can be directly called from the radio frequency device database, which is conducive to improving the parameter configuration efficiency of the radio frequency channel.

[0043] Here, the combination relationship of the at least two radio frequency devices is used to represent the combination relationship between the radio frequency devices in the radio frequency channel template, which can be obtained according to the radio frequency channel template.

[0044] Exemplarily, in some embodiments, the radio frequency channel template comprises a radio frequency device type and a combination relationship of different radio frequency device types; and the obtaining the first control parameter of at least two radio frequency devices in the target radio frequency channel template and the combination relationship of the at least two radio frequency devices comprises: based on the radio frequency device type of each radio frequency device in the target radio frequency channel template, obtaining the first control parameter of at least two radio frequency devices in the target radio frequency channel template; and based on the combination relationship of the different radio frequency device types and the radio frequency device type of each radio frequency device, obtaining the combination relationship of the at least two radio frequency devices in the target radio frequency channel template.

[0045] Exemplarily, in some embodiments, the radio frequency device types at least include one of the following: a radio frequency chip, a power amplifier, a radio frequency switch, a filter, a duplexer, a low noise amplifier.

[0046] Exemplarily, in some embodiments, the radio frequency channel template includes radio frequency device models and combination relationships of different radio frequency device models; and the obtaining the first control parameters of the at least two radio frequency devices in the target radio frequency channel template and the combination relationships of the at least two radio frequency devices includes: based on the radio frequency device model of each radio frequency device in the target radio frequency channel template, obtaining the first control parameters of the at least two radio frequency devices in the target radio frequency channel template; and based on the combination relationships of the different radio frequency device models and the radio frequency device model of each radio frequency device, obtaining the combination relationships of the at least two radio frequency devices in the target radio frequency channel template.

[0047] Step 103: generating the second control parameters of the radio frequency channel based on the combination relationships of the at least two radio frequency devices in the target radio frequency channel template and the first control parameters of each radio frequency device.

[0048] Here, the first control parameters of the radio frequency devices are control parameters for each radio frequency device, such as control parameters of a power amplifier, control parameters of a radio frequency chip, etc. Generally, the first control parameters include parameters related to characteristics of the radio frequency devices (such as bias parameters of characteristic parameters of a power amplifier, etc.) and control parameters related to transmission and reception of the radio frequency devices. The second control parameters are control parameters for the radio frequency channel, which are used to instruct how the radio frequency devices in the radio frequency channel should work (such as parameters for controlling which side a multi-pole multi-throw switch should be turned to, and how much the bias of a power amplifier PA should be set to). Generally, the second control parameters specifically include: on parameters (logical control parameters related to signal transmission in the radio frequency channel) and characteristic parameters.

[0049] Here, the second control parameters are automatically generated by combination of the first control parameters of the radio frequency devices in the radio frequency channel and the combination relationships of the radio frequency devices in the target radio frequency channel template. Exemplarily, in some embodiments, the generating the second control parameters of the radio frequency channel based on the combination relationships of the at least two radio frequency devices in the target radio frequency channel template and the first control parameters of each radio frequency device includes: collecting radio frequency device characteristic related parameters in the radio frequency channel to generate characteristic parameters of the second control parameters; determining a target transmission path of a signal in the radio frequency channel according to the combination relationships of the radio frequency devices in the target radio frequency channel template; and generating on parameters of the second control parameters according to the target transmission path and control parameters related to transmission and reception of the radio frequency devices.

[0050] Exemplarily, in actual application, the second control parameter can be a logic control parameter of a non-volatile memory (NV) of the radio frequency channel, and the radio frequency channel is controlled according to the second control parameter.

[0051] Exemplarily, in some embodiments, the method further comprises: preparing a radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template; writing the second control parameter of the radio frequency channel into the prepared radio frequency channel; connecting the prepared radio frequency channel to a calibration tester to verify the correctness of the second control parameter; determining that the verification fails, checking whether the first control parameter of the radio frequency device in the target radio frequency channel template is correct; correcting the first control parameter of the erroneous radio frequency device; correcting the second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the corrected first control parameter of the erroneous radio frequency device.

[0052] Exemplarily, in some embodiments, the preparing a radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template can be selecting a target radio frequency channel from prepared radio frequency channels according to the combination relationship of two radio frequency devices as the prepared radio frequency channel.

[0053] Exemplarily, in some embodiments, the method further comprises: correcting the first control parameter corresponding to the erroneous radio frequency device in a radio frequency device database; wherein the radio frequency device database comprises the first control parameters corresponding to different radio frequency devices; and the radio frequency device database is used to obtain the first control parameters of at least two radio frequency devices in the target radio frequency channel template.

[0054] By verifying and correcting the second control parameter by the calibration tester, the condition that the second control parameter is incorrect due to the erroneous first control parameter of the radio frequency device can be effectively avoided, and the accuracy of the radio frequency channel parameter configuration is improved.

[0055] Here, the execution subject of steps 101 to 103 can be a processor of a parameter configuration device of a radio frequency channel.

[0056] The technical solution of the present application can realize the automatic configuration of the radio frequency channel control parameter by directly obtaining the corresponding target radio frequency channel template from the radio frequency channel template library according to the configuration requirement of the radio frequency channel, obtaining the first control parameter of the radio frequency device in the radio frequency channel template and the combination relationship of the radio frequency device in the radio frequency channel template, and automatically generating the second control parameter of the radio frequency channel, thereby improving the efficiency of the radio frequency channel parameter configuration.

[0057] In order to better reflect the purpose of the present application, on the basis of the embodiments of the present application, further example is given. Figure 2 The second flowchart of the parameter configuration method of the radio frequency channel in the embodiments of the present application is shown.

[0058] As shown in the figure, the parameter configuration method of the radio frequency channel can specifically include: Figure 2

[0059] Step 201: Based on the configuration requirement of the radio frequency channel, a target radio frequency channel template corresponding to the configuration requirement is obtained from a radio frequency channel template library; wherein the radio frequency channel template library includes at least one radio frequency channel template, and the radio frequency channel template includes a radio frequency device type and a combination relationship of different radio frequency device types;

[0060] Exemplarily, in some embodiments, the radio frequency device type at least includes one of the following: radio frequency chip, power amplifier, radio frequency switch, filter, duplexer, low noise amplifier.

[0061] Step 202: Based on the radio frequency device type of each radio frequency device in the target radio frequency channel template, the first control parameter of at least two radio frequency devices in the target radio frequency channel template is obtained;

[0062] Here, the radio frequency device type corresponds to one or more radio frequency devices. The first control parameter of the radio frequency device determined according to the radio frequency device type can be an optional radio frequency device or a radio frequency device determined according to a preset selection strategy. Exemplarily, the preset selection strategy can be to select the radio frequency device with the best performance or the latest market in the radio frequency device type.

[0063] Exemplarily, in some embodiments, the radio frequency device type at least includes one of the following: radio frequency chip, power amplifier, radio frequency switch, filter, duplexer, low noise amplifier.

[0064] Exemplarily, in some embodiments, the method further includes: constructing a radio frequency device database; wherein the radio frequency device database includes: the first control parameter corresponding to different radio frequency devices; and the obtaining of the first control parameter of at least two radio frequency devices in the target radio frequency channel template includes: obtaining the first control parameter corresponding to the radio frequency device from the radio frequency device database.

[0065] By constructing the radio frequency device database, the first control parameter of the radio frequency device can be stored, and when the first control parameter of a certain radio frequency device is needed, it is not necessary to recheck the manual of the corresponding device, but can directly call from the radio frequency device database, which is conducive to improving the parameter configuration efficiency of the radio frequency channel.

[0066] ​Step 203: obtaining the combination relationship of the at least two radio frequency devices in the target radio frequency channel template based on the combination relationship of the different radio frequency device types and the radio frequency device type of each radio frequency device.

[0067] Here, the position of the radio frequency device type in the combination relationship of the radio frequency device types is replaced by the corresponding radio frequency device, and the combination relationship of the radio frequency devices is obtained. For example, in actual application, the radio frequency device can be represented by a radio frequency device model, and the combination relationship of the radio frequency devices can be represented by the combination relationship of the radio frequency device models.

[0068] Step 204: generating the second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template and the first control parameter of each radio frequency device.

[0069] Here, the combination relationship of the radio frequency devices in this radio frequency channel configuration is obtained according to the target radio frequency channel template, and the second control parameter for the radio frequency channel can be automatically generated by combining the first control parameter of the radio frequency devices in the radio frequency channel template. Here, the second control parameter is the control parameter for the radio frequency channel. For example, in actual application, the second control parameter can be the non-volatile memory (NV) logic control parameter of the radio frequency channel. In actual application, the second control parameter is input into the prepared radio frequency channel to realize the control of the radio frequency channel.

[0070] Here, the execution subject of steps 201 to 204 can be the processor of the parameter configuration device of the radio frequency channel.

[0071] The technical solution of the present application directly obtains the corresponding target radio frequency channel template from the radio frequency channel template library according to the configuration requirements of the radio frequency channel, obtains the first control parameter of the radio frequency devices in the radio frequency channel template and the combination relationship of the radio frequency devices in the template, and automatically generates the second control parameter of the radio frequency channel. The automatic configuration of the radio frequency channel control parameter can be realized, and the efficiency of the radio frequency channel parameter configuration is improved.

[0072] In order to better reflect the purpose of the present application, on the basis of the embodiments of the present application, further example is given. Figure 3 The third flowchart of the parameter configuration method of the radio frequency channel in the embodiments of the present application is shown.

[0073] As shown in the figure, the parameter configuration method of the radio frequency channel can specifically include: Figure 3

[0074] ​Step 301: obtaining a target radio frequency channel template corresponding to a configuration requirement of the radio frequency channel from a radio frequency channel template library based on the configuration requirement, wherein the radio frequency channel template library comprises at least one radio frequency channel template, and the radio frequency channel template comprises a radio frequency device type and a combination relationship of different radio frequency device types;

[0075] Exemplarily, in some embodiments, the radio frequency device type at least comprises one of the following: a radio frequency chip, a power amplifier, a radio frequency switch, a filter, a duplexer, and a low noise amplifier.

[0076] Step 302: obtaining a first control parameter of at least two radio frequency devices in the target radio frequency channel template based on the radio frequency device type of each radio frequency device in the target radio frequency channel template;

[0077] Here, the radio frequency device type corresponds to one or more radio frequency devices. The first control parameter of the radio frequency device determined according to the radio frequency device type can be for an optional radio frequency device or determined according to a preset selection strategy. Exemplarily, the preset selection strategy can be to select a radio frequency device with the best performance or newly listed in the radio frequency device type.

[0078] Exemplarily, in some embodiments, the radio frequency device type at least comprises one of the following: a radio frequency chip, a power amplifier, a radio frequency switch, a filter, a duplexer, and a low noise amplifier.

[0079] Exemplarily, in some embodiments, the method further comprises: constructing a radio frequency device database; wherein the radio frequency device database comprises: the first control parameter corresponding to different radio frequency devices; and the obtaining of the first control parameter of the at least two radio frequency devices in the target radio frequency channel template comprises: obtaining the first control parameter corresponding to the radio frequency device from the radio frequency device database.

[0080] Step 303: obtaining a combination relationship of the at least two radio frequency devices in the target radio frequency channel template based on the combination relationship of the different radio frequency device types and the radio frequency device type of each radio frequency device;

[0081] Here, the position of the radio frequency device type in the combination relationship of the radio frequency device type is replaced by the corresponding radio frequency device, so as to obtain the combination relationship of the radio frequency device. Exemplarily, in actual application, the radio frequency device can be represented by a radio frequency device model, and the combination relationship of the radio frequency device can be represented by the combination relationship of the radio frequency device model.

[0082] Step 304: generating a second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template and the first control parameter of each radio frequency device;

[0083] Step 305: preparing the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template;

[0084] For example, in practical application, the preparation of the radio frequency channel according to the combination relationship of the radio frequency devices can be realized by printing the PCB circuit board. In practical application, one or more prepared radio frequency channels can be combined to obtain a communication module.

[0085] Step 306: writing the second control parameter of the radio frequency channel into the prepared radio frequency channel;

[0086] Step 307: connecting the prepared radio frequency channel to the calibration tester to verify the correctness of the second control parameter;

[0087] Here, the calibration tester can verify the second control parameter, and when the verification fails on the calibration tester, it indicates that the second control parameter is incorrect.

[0088] Step 308: determining that the verification fails, and checking whether the first control parameter of the radio frequency device in the target radio frequency channel template is correct;

[0089] Here, the checking of whether the first control parameter is correct can be realized by comparing the first control parameter obtained in step 303 with the control parameter in the latest manual of the radio frequency device.

[0090] Step 309: determining that the first control parameter of the radio frequency device is incorrect, and correcting the first control parameter of the incorrect radio frequency device;

[0091] Step 310: correcting the second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the corrected first control parameter of the incorrect radio frequency device.

[0092] Here, the correction of the second control parameter of the radio frequency channel based on the position and the corrected first control parameter of the incorrect radio frequency device can be the correction of the control parameter corresponding to the position in the second control parameter according to the position of the radio frequency device with parameter error in the radio frequency channel.

[0093] For example, in some embodiments, the correction of the second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the corrected first control parameter of the incorrect radio frequency device includes: determining the position of the incorrect radio frequency device in the radio frequency channel based on the combination relationship of the at least two radio frequency devices; and correcting the second control parameter of the radio frequency channel based on the position and the corrected first control parameter of the incorrect radio frequency device.

[0094] Exemplarily, in some embodiments, the method further comprises: correcting the first control parameter corresponding to the faulty radio frequency device in the radio frequency device database; wherein the radio frequency device database comprises the first control parameters corresponding to different radio frequency devices; and the radio frequency device database is used to obtain the first control parameters of at least two radio frequency devices in the target radio frequency path template.

[0095] By correcting the corresponding control parameter of the faulty radio frequency device in the radio frequency device database when the first control parameter of the radio frequency device is faulty, timely updating of the radio frequency device database can be realized, which helps to obtain the updated first control parameter when the radio frequency device database is used to obtain the first control parameter of the radio frequency device next time, and helps to improve the accuracy of radio frequency path parameter configuration.

[0096] Here, the execution subject of steps 301 to 310 can be a processor of a parameter configuration device of a radio frequency path.

[0097] The technical scheme of the present application can realize automatic configuration of the control parameter of the radio frequency path by directly obtaining the corresponding target radio frequency path template from the radio frequency path template library according to the configuration requirement of the radio frequency path, obtaining the first control parameter of the radio frequency device in the radio frequency path template and the combination relationship of the radio frequency device in the template, and automatically generating the second control parameter of the radio frequency path, thereby improving the efficiency of radio frequency path parameter configuration; by verifying and automatically correcting the second control parameter by the calibration comprehensive tester, the condition that the second control parameter is incorrect due to the faulty first control parameter of the radio frequency device can be effectively avoided, and the accuracy of radio frequency path parameter configuration is improved.

[0098] Figure 4 The technical scheme of the present application can realize automatic configuration of the control parameter of the radio frequency path by directly obtaining the corresponding target radio frequency path template from the radio frequency path template library according to the configuration requirement of the radio frequency path, obtaining the first control parameter of the radio frequency device in the radio frequency path template and the combination relationship of the radio frequency device in the template, and automatically generating the second control parameter of the radio frequency path, thereby improving the efficiency of radio frequency path parameter configuration; by verifying and automatically correcting the second control parameter by the calibration comprehensive tester, the condition that the second control parameter is incorrect due to the faulty first control parameter of the radio frequency device can be effectively avoided, and the accuracy of radio frequency path parameter configuration is improved.

[0099] The radio frequency path template module 401 is used to generate a radio frequency path template, wherein the template distinguishes between uplink and downlink. The radio frequency path template is composed of various discrete radio frequency devices, including a transiver, a power amplifier (PA), a radio frequency switch (Switch), a filter (Filter), a duplexer (Duplexer), a low noise amplifier (LNA), etc. Although the radio frequency paths of the same frequency band of different 5G modules are not the same, they are all composed of these radio frequency devices. This module distinguishes different combinations of these radio frequency devices into different types of radio frequency path templates for selection.

[0100] A radio frequency device database module 402, which is a database of various radio frequency devices, different manufacturers, and different models of the latest logic control tables. When the radio frequency path is built and the specific model of the radio frequency device is determined, the device-related control parameters can be directly imported from the database.

[0101] An NV logic parameter automatic generation module 403, which generates the NV logic control parameters of the radio frequency path by simultaneously interfacing with the device database and the radio frequency device database module.

[0102] A database self-correction module 404, which is used to write the NV logic control parameters of the radio frequency path into the module after generation, and connect the module to the calibration comprehensive tester to verify the correctness of the parameters. When the calibration comprehensive test fails, the radio frequency device database will be automatically checked, and the new data will be updated to the radio frequency device database module.

[0103] Figure 5 A fourth flowchart of the parameter configuration method of the radio frequency path in the embodiments of the present application. The method is realized by the parameter configuration system of the radio frequency path described above. As shown in the figure, the method comprises the following steps: Figure 5

[0104] Step 501: determining a radio frequency path template according to configuration requirements;

[0105] Here, the radio frequency path template includes two radio frequency device types and a combination relationship of at least two radio frequency device types. This step is performed by the radio frequency path template module 401.

[0106] Step 502: determining radio frequency devices in the radio frequency path template;

[0107] Specifically, at least two radio frequency devices and the combination relationship between at least two radio frequency devices are determined according to the two radio frequency device types and at least two radio frequency device types. This step is performed by the radio frequency path template module 401.

[0108] Step 503: obtaining first control parameters of the radio frequency devices from the radio frequency device database;

[0109] This step is performed by the NV logic parameter automatic generation module 403.

[0110] Step 504: generating NV logic control parameters (equivalent to the second control parameters in the present application);

[0111] Specifically, the NV logic control parameters are generated based on the first control parameters of the radio frequency devices and the radio frequency path template. This step is performed by the NV logic parameter automatic generation module 403.

[0112] Step 505: writing the NV logic control parameters into the prepared radio frequency path; ​

[0113] The step is performed by the NV logic parameter automatic generation module 403. Here, the prepared radio frequency channel is prepared according to the combination relationship of the radio frequency devices in the radio frequency channel template.

[0114] Step 506: Verify the correctness of the parameters on the calibration comprehensive measuring instrument;

[0115] The step is performed by the database self-correction module 404. Specifically, the second control parameter of the radio frequency channel is verified using the calibration comprehensive measuring instrument.

[0116] Step 507: If the verification fails, check the first control parameter of the radio frequency device in the radio frequency device database; if the verification passes, end.

[0117] The step is performed by the database self-correction module 404

[0118] Step 508: Correct the first control parameter of the radio frequency device in the database, and return to step 503;

[0119] The step is performed by the database self-correction module 404.

[0120] The technical scheme of the present application directly obtains the corresponding target radio frequency channel template from the radio frequency channel template library according to the configuration requirements of the radio frequency channel, obtains the first control parameter of the radio frequency device in the radio frequency channel template, and automatically generates the second control parameter of the radio frequency channel according to the combination relationship of the radio frequency device in the radio frequency channel template and the first control parameter of the radio frequency device. The technical scheme can realize automatic configuration of the radio frequency channel control parameter, improve the efficiency of radio frequency channel parameter configuration, and effectively avoid the situation that the second control parameter is incorrect due to incorrect first control parameter of the radio frequency device, thereby improving the accuracy of radio frequency channel parameter configuration.

[0121] Figure 6 The present application is a schematic diagram of the composition structure of the parameter configuration device of the radio frequency channel in the embodiment, which shows an implementation device of a radio frequency channel parameter configuration method. The device 60 specifically includes:

[0122] The acquisition module 601 is configured to acquire a target radio frequency channel template corresponding to a configuration requirement of a radio frequency channel from a radio frequency channel template library based on the configuration requirement. The radio frequency channel template library includes at least one radio frequency channel template, and the radio frequency channel template includes at least two radio frequency devices.

[0123] The acquisition module 601 is further configured to acquire the first control parameter of the at least two radio frequency devices in the target radio frequency channel template and the combination relationship of the at least two radio frequency devices.

[0124] The processing module 602 is configured to generate a second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template and the first control parameter of each radio frequency device.

[0125] In some embodiments, the radio frequency channel template comprises a radio frequency device type and a combination relationship of different radio frequency device types; the acquisition module 601 is configured to acquire the first control parameter of at least two radio frequency devices in the target radio frequency channel template based on the radio frequency device type of each radio frequency device in the target radio frequency channel template; and obtain the combination relationship of the at least two radio frequency devices in the target radio frequency channel template based on the combination relationship of the different radio frequency device types and the radio frequency device type of each radio frequency device.

[0126] In some embodiments, the radio frequency device type at least comprises one of the following: a radio frequency chip, a power amplifier, a radio frequency switch, a filter, a duplexer, and a low noise amplifier.

[0127] In some embodiments, the processing module 602 is further configured to construct a radio frequency device database; wherein the radio frequency device database comprises: the first control parameter corresponding to different radio frequency devices; and the acquisition module 601 is configured to acquire the first control parameter corresponding to the radio frequency device from the radio frequency device database.

[0128] In some embodiments, the processing module 602 is further configured to prepare a radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template; write the second control parameter of the radio frequency channel into the radio frequency channel; connect the radio frequency channel to a calibration instrument to verify the correctness of the second control parameter; determine whether the verification fails, check whether the first control parameter of the radio frequency device in the target radio frequency channel template is correct; correct the first control parameter of the erroneous radio frequency device; and correct the second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the first control parameter of the corrected erroneous radio frequency device.

[0129] In some embodiments, the processing module 602 is further configured to correct the first control parameter corresponding to the erroneous radio frequency device in the radio frequency device database; wherein the radio frequency device database comprises: the first control parameter corresponding to different radio frequency devices; and the radio frequency device database is used to acquire the first control parameter of at least two radio frequency devices in the target radio frequency channel template.

[0130] In some embodiments, the processing module 602 is further configured to construct the radio frequency channel template library; wherein the radio frequency channel template library comprises: a corresponding relationship between a configuration requirement and a radio frequency channel template.

[0131] Based on the hardware implementation of each unit in the above-mentioned device for configuring the parameters of the radio frequency path, an embodiment of the present application also provides an electronic device. Figure 7 Schematic diagram of the composition structure of the electronic device in the embodiment of the present application. Figure 7 As shown, the device 70 includes: a processor 701 and a memory 702 configured to store a computer program that can be run on the processor;

[0132] The processor 701 is configured to execute the steps of the method in the aforementioned embodiment when running the computer program.

[0133] Of course, in actual application, Figure 7 As shown, the various components in the electronic device are coupled together via a bus system 703. It is understood that the bus system 703 is used to achieve connection and communication between these components. In addition to the data bus, the bus system 703 also includes a power bus, a control bus, and a status signal bus. However, for the sake of clarity, Figure 7 Various buses are labeled as bus system 703.

[0134] In practical applications, the processor may be at least one of an application-specific integrated circuit (ASIC), a digital signal processing device (DSPD), a programmable logic device (PLD), a field-programmable gate array (FPGA), a controller, a microcontroller, and a microprocessor. It is understood that for different devices, the electronic device used to implement the functions of the processor may also be other, and the embodiments of the present application do not specifically limit this.

[0135] The above-mentioned memory can be a volatile memory (volatile memory), such as a random-access memory (RAM); or a non-volatile memory (non-volatile memory), such as a read-only memory (ROM), a flash memory, a hard disk (HDD) or a solid-state drive (SSD); or a combination of the above types of memory, and provides instructions and data to the processor.

[0136] In an example embodiment, the embodiments of the present application also provide a computer readable storage medium, for example, a memory including a computer program, which can be executed by a processor of an electronic device to complete the steps of the foregoing method.

[0137] It should be understood that the terminology used in the present application is for the purpose of describing particular embodiments only and is not intended to be limiting of the present application. As used in the present application and the appended claims, the singular forms "a," "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms "and / or," "includes" and / or "comprising," or "includes" and / or "comprising," as used herein, specify the presence of stated features, elements, and / or components, but do not preclude the presence or addition of one or more other features, elements, and / or components.

[0138] It should be understood that, although the terms first, second, third, etc. can be used herein to describe various information, these information should not be limited to these terms. These terms are only used to distinguish one piece of information from another piece of information, and do not necessarily indicate a particular order or sequence. For example, without departing from the scope of the present application, the first information can also be referred to as the second information, and similarly, the second information can also be referred to as the first information. The technical solutions described in the embodiments of the present application can be combined arbitrarily without conflict. In the several embodiments provided by the present application, it should be understood that the disclosed methods, devices and equipment can be implemented by other ways. The embodiments described above are only illustrative, for example, the division of units is only a logical function division, and actual implementation can have another division manner, such as: multiple units or components can be combined, or can be integrated into another system, or some features can be ignored or not executed. In addition, the coupling or direct coupling or communication connection between the various components shown or discussed can be indirect coupling or communication connection through some interfaces, devices or units, which can be electrical, mechanical or other forms.

[0139] The units described above as separate components can or can not be physically separate, and the components shown as units can or can not be physical units, i.e. they can be located in one place or distributed on multiple network units; some or all of the units can be selected according to actual needs to achieve the purpose of the embodiments of the present application.

[0140] In addition, each of the function units in each embodiment of the present application can be integrated in one processing unit, or each unit can be a single unit, or two or more units can be integrated in one unit; the integrated unit can be realized in the form of hardware or in the form of hardware plus software function unit.

[0141] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can easily think of changes or replacements within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.

Claims

1. A method of parameter configuration for a radio frequency path, characterized by The method comprises: obtaining a target radio frequency channel template corresponding to the configuration requirement from a radio frequency channel template library based on the configuration requirement of the radio frequency channel; wherein the radio frequency channel template library comprises at least one radio frequency channel template, and the radio frequency channel template comprises at least two radio frequency devices; obtaining the first control parameter of the at least two radio frequency devices in the target radio frequency channel template and the combination relationship of the at least two radio frequency devices; generating the second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template and the first control parameter of each radio frequency device; The method further comprises: preparing the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template; writing the second control parameter of the radio frequency channel into the radio frequency channel; connecting the radio frequency channel to a calibration tester to verify the correctness of the second control parameter; determining that the verification fails, checking whether the first control parameter of the radio frequency device in the target radio frequency channel template is correct; determining that the first control parameter of the radio frequency device is incorrect, correcting the first control parameter of the incorrect radio frequency device; correcting the second control parameter of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the first control parameter of the corrected incorrect radio frequency device.

2. The method of claim 1, wherein, The radio frequency channel template comprises a radio frequency device type and a combination relationship of different radio frequency device types; The method further comprises: obtaining the first control parameter of the at least two radio frequency devices in the target radio frequency channel template based on the radio frequency device type of each radio frequency device in the target radio frequency channel template; obtaining the combination relationship of the at least two radio frequency devices in the target radio frequency channel template based on the combination relationship of different radio frequency device types and the radio frequency device type of each radio frequency device.

3. The method of claim 2, wherein, The radio frequency device type at least comprises one of the following: radio frequency chip, power amplifier, radio frequency switch, filter, duplexer, low noise amplifier.

4. The method according to claim 1 or 2, characterized in that, The method further comprises: constructing a radio frequency device database; wherein the radio frequency device database comprises: the first control parameter corresponding to different radio frequency devices; The method further comprises:

5. The method of claim 1, wherein, correcting the first control parameter corresponding to the incorrect radio frequency device in the radio frequency device database; wherein the radio frequency device database comprises the first control parameter corresponding to different radio frequency devices; and the radio frequency device database is used to obtain the first control parameter of the at least two radio frequency devices in the target radio frequency channel template. The method further comprises: constructing the radio frequency channel template library; wherein the radio frequency channel template library comprises: the corresponding relationship between the configuration requirement and the radio frequency channel template.

6. The method of claim 1, wherein, The device comprises:

7. An apparatus for configuring parameters of a radio frequency path, characterized by ​ The acquisition module is configured to acquire a target radio frequency channel template corresponding to a configuration requirement of the radio frequency channel from a radio frequency channel template library based on the configuration requirement, wherein the radio frequency channel template library comprises at least one radio frequency channel template, and the radio frequency channel template comprises at least two radio frequency devices; The acquisition module is further configured to acquire first control parameters of the at least two radio frequency devices in the target radio frequency channel template and a combination relationship of the at least two radio frequency devices; The processing module is configured to generate second control parameters of the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template and the first control parameters of each radio frequency device; The parameter configuration device is further configured to prepare the radio frequency channel based on the combination relationship of the at least two radio frequency devices in the target radio frequency channel template, write the second control parameters of the radio frequency channel into the radio frequency channel, connect the radio frequency channel to a calibration tester to verify the correctness of the second control parameters, determine whether the verification is passed, check whether the first control parameters of the radio frequency devices in the target radio frequency channel template are correct, determine that the first control parameters of the radio frequency devices are incorrect, correct the first control parameters of the incorrect radio frequency devices, correct the second control parameters of the radio frequency channel based on the combination relationship of the at least two radio frequency devices and the first control parameters of the incorrect radio frequency devices.

8. An electronic device, comprising: The device comprises a processor and a memory configured to store a computer program capable of running on the processor, The processor is configured to execute the steps of the method of any one of claims 1-6 when running the computer program.

9. A computer readable storage medium having stored thereon a computer program, characterized in that, The computer program is executed by the processor to implement the steps of the method of any one of claims 1-6.

Citation Information

Patent Citations

  • LoRaWAN gateway configuration method, LoRaWAN gateway device and storage medium

    CN112600714A