Communication equipment debugging method and system, computer equipment and storage medium

By automatically obtaining and detecting and adjusting parameters, an efficient and accurate Ramp curve is generated, which solves the problems of low debugging efficiency and low accuracy in the existing technology, and realizes efficient and precise debugging of communication equipment.

CN120343692APending Publication Date: 2025-07-18ANYSMART TECH CO LTD
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Patent Information

Application Number
CN202510537881.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

In the prior art, power amplifier power Ramp curve debugging for communication devices such as mobile phones is low efficiency and low accuracy. Manual point-by-point debugging cannot ensure the consistency and accuracy of the Ramp curve.

Method used

The preset instrument automatically obtains the adjustment parameters of the equipment to be debugged under the preset debugging parameters, organizes the target characteristic curve, adapts to the inconsistent feedback under the debugging parameters and the mutual influence between adjustment points, and uses the main control program to control the preset instrument and program control power, and conducts strong testing and data detection to generate efficient and accurate Ramp curves.

Benefits of technology

The debugging and generation efficiency and accuracy of the Ramp curve are improved, and the local optimal but overall non-optimal situation is avoided, ensuring the fitness and accuracy of the generated Ramp curve under the current debugging parameters.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a communication equipment debugging method, a communication equipment debugging system, computer equipment and a computer readable storage medium. The method comprises the following steps: controlling a preset instrument to operate according to preset debugging parameters under the condition that to-be-debugged equipment is started to operate; adjusting parameters of the to-be-debugged equipment are obtained according to a preset instrument; and determining a target characteristic curve of the to-be-debugged equipment according to the adjustment parameters. According to the communication equipment debugging method provided by the embodiment of the invention, the adjustment parameter data of the to-be-debugged equipment can be automatically obtained under the preset debugging parameters through the preset detection instrument, and the whole target characteristic curve of the to-be-debugged equipment under the current debugging parameters is sorted out based on the collected adjustment parameter data; the whole target characteristic curve is adapted for the debugging parameters from the whole perspective through the automatic debugging process, and compared with a manual point-by-point debugging scheme in the prior art, the debugging generation efficiency and accuracy of the target characteristic curve are effectively improved.
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Description

Technical Field

[0001] This application relates to the technical field of communication devices, and particularly relates to a communication device debugging method, a communication device debugging system, a computer device, and a computer-readable storage medium. Background Art

[0002] In the current related technologies, for the method of debugging the Ramp curve formed by the power of the power amplifier of communication devices such as mobile phones, generally, each adjustment point on the Ramp curve is manually debugged one by one. This is too inefficient when facing a large number of Ramp curves and a large number of adjustment points under multiple signal formats and multiple signal frequency bands supported by the current device. Moreover, the feedback trend of the power of the above-mentioned power amplifier on the Ramp curve is not consistent under different voltage or other debugging parameter conditions, and there may also be mutual influence between different adjustment points on the Ramp curve. When dealing with the above situation by manual individual debugging, the accuracy of the Ramp curve cannot be guaranteed. Summary of the Invention

[0003] This application provides a communication device debugging method, a communication device debugging system, a computer device, and a computer-readable storage medium.

[0004] The communication device debugging method involved in the embodiments of this application includes:

[0005] According to the preset debugging parameters, when the device to be debugged starts to run, control the preset instrument to run;

[0006] Obtain the adjustment parameters of the device to be debugged according to the preset instrument;

[0007] Determine the target characteristic curve of the device to be debugged according to the adjustment parameters.

[0008] In this way, the communication device debugging method in the embodiments of this application can automatically obtain the adjustment parameter data of the device to be debugged by the preset detection instrument under the preset debugging parameters, and further sort out the entire target characteristic curve of the device to be debugged under the current debugging parameters based on the collected adjustment parameter data. Through the automated debugging process, adapt to the inconsistent feedback of the entire target characteristic curve caused by the debugging parameters or the mutual influence between the adjustment points on the target characteristic curve from the overall perspective of the target characteristic curve. Compared with the manual point-by-point debugging scheme in the current related technologies, it effectively improves the debugging generation efficiency and accuracy of the target characteristic curve.

[0009] In some embodiments, the step of according to the preset debugging parameters, when the device to be debugged starts to run, control the preset instrument to run includes:

[0010] In response to the startup of the main control program, a preset tool program is called;

[0011] According to the tool program, when the device to be debugged starts to run, the preset instrument is controlled to run, where the debugging parameters are included in the main control program.

[0012] In this way, the present application can control the operation of the preset instrument by controlling a dedicated tool program through the main control program.

[0013] In some embodiments, the controlling the preset instrument to run when the device to be debugged starts to run according to the preset debugging parameters further includes:

[0014] In response to the operation of the main control program, the programmable power supply is controlled to adjust the working voltage, where the programmable power supply is used to supply power to the device to be debugged;

[0015] The device to be debugged is controlled to start running at the working voltage.

[0016] In this way, the present application can also control the debugging parameters when the device to be debugged is working based on the operation of the main control program, so as to implement debugging of the device to be debugged under different debugging parameters.

[0017] In some embodiments, the obtaining the adjustment parameters of the device to be debugged according to the preset instrument includes:

[0018] According to the tool program, the device to be debugged is controlled to perform a strong emission test;

[0019] When the strong emission test is being performed, according to the tool program, the preset instrument is controlled to obtain the adjustment parameters of the device to be debugged.

[0020] In this way, the present application can obtain the adjustment parameters of the device to be debugged by using the preset instrument when performing the strong emission test, prepare data for generating the Ramp curve, and at the same time complete the high-intensity usage test of the preset instrument, improving the test efficiency.

[0021] In some embodiments, the adjustment parameter is the output power of the power amplifier of the device to be debugged.

[0022] In some embodiments, the determining the target characteristic curve of the device to be debugged according to the adjustment parameter includes:

[0023] According to the main control program, the adjustment parameter is detected;

[0024] When the adjustment parameter meets the preset detection standard, according to the adjustment parameter, the target characteristic curve of the device to be debugged is determined.

[0025] Thus, before generating the Ramp curve, the present application can first detect the obtained adjustment parameters to ensure the fitness and accuracy of the generated Ramp curve under the current debugging parameters.

[0026] In some embodiments, the method further includes:

[0027] In the case where the adjustment parameters do not meet the preset detection criteria, according to the preset debugging parameters, when the device to be debugged starts to run, control the preset instrument to run.

[0028] Thus, when it is detected that the adjustment parameters do not meet the detection criteria, the present application can also re-acquire data to ensure the fitness and accuracy of the generated Ramp curve under the current debugging parameters.

[0029] The communication device debugging system in the embodiments of the present application includes a control device, a preset instrument, and a device to be debugged;

[0030] Wherein the control device is used to control the preset instrument to run according to the preset debugging parameters when the device to be debugged starts to run;

[0031] The control device is further used to obtain the adjustment parameters of the device to be debugged according to the preset instrument;

[0032] The control device is further used to determine the target characteristic curve of the device to be debugged according to the adjustment parameters.

[0033] The computer device in the embodiments of the present application includes a memory and a processor. The memory stores a computer program. When the computer program is executed by the processor, the above method is implemented.

[0034] The computer-readable storage medium in the embodiments of the present application stores a computer program. When the computer program is executed by one or more processors, the above method is implemented.

[0035] Additional aspects and advantages of the embodiments of the present application will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the embodiments of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] The above and / or additional aspects and advantages of the present application will become apparent and be readily understood from the following description of the embodiments in conjunction with the drawings, wherein:

[0037] Figure 1 is one of the flow diagrams of the communication device debugging method in the embodiments of the present application;

[0038] Figure 2This is the second flowchart of the communication device debugging method in the embodiments of the present application;

[0039] Figure 3 This is the third flowchart of the communication device debugging method in the embodiments of the present application;

[0040] Figure 4 This is the fourth flowchart of the communication device debugging method in the embodiments of the present application;

[0041] Figure 5 This is the fifth flowchart of the communication device debugging method in the embodiments of the present application;

[0042] Figure 6 This is the module structure diagram of the communication device debugging system in the embodiments of the present application.

[0043] Among them: 11, control device; 12, device to be debugged; 13, preset instrument; 14, programmable power supply. Specific Embodiments

[0044] The following details the embodiments of the present application. The examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the embodiments of the present application and should not be construed as a limitation to the embodiments of the present application.

[0045] Please refer to Figure 1 , the communication device debugging method in the embodiments of the present application includes:

[0046] 01: According to the preset debugging parameters, when the device to be debugged 12 starts to run, control the preset instrument 13 to run;

[0047] 02: According to the preset instrument 13, obtain the adjustment parameters of the device to be debugged 12;

[0048] 03: According to the adjustment parameters, determine the target characteristic curve of the device to be debugged 12.

[0049] In some embodiments, the adjustment parameter is the output power of the power amplifier of the device to be debugged 12.

[0050] The computer device in the embodiments of the present application can implement the above communication device debugging method. The computer device includes a memory and a processor. The memory stores a computer program. The processor is used to control the preset instrument 13 to run according to the preset debugging parameters when the device to be debugged 12 starts to run, and is used to obtain the adjustment parameters of the device to be debugged 12 according to the preset instrument 13, and is used to determine the target characteristic curve of the device to be debugged 12 according to the adjustment parameters.

[0051] Specifically, the communication device debugging method in the embodiments of the present application is mainly used to debug and determine a Ramp curve (corresponding to the target characteristic curve) with a series of power amplifier (PA) powers (hereinafter referred to as PA power, corresponding to the above adjustment parameters) as control words for the device 12 to be debugged. Generally, the above-mentioned Ramp curve is an array of rising and falling edge waveforms formed by a series of PA power control words according to the requirements of the transmit power time characteristic (PowerVersusTime, PVT) template in the GSM communication standard. In some examples, the Ramp curve mainly affects five radio frequency indicators of the 2G network, namely phase error, power, switch spectrum, modulation spectrum, and PVT. And generally, a set of Ramp curves requires 20 adjustment points to be debugged and adjusted. When debugging the device 12 to be debugged according to the 3GPP protocol, there are a total of 15 sets of Ramp curves from PCL5 to PCL19 for each frequency band, and there are 4 frequency bands to be debugged. Such a huge workload cannot guarantee the debugging efficiency if adjusted one by one manually. In addition, for the above adjustment points, the influence of each adjustment point on the above radio frequency indicators is also different. For example, the 7th, 8th, and 9th points have the greatest influence on the phase error, the 10th point has the most obvious influence on power and PVT, and the 11th to 15th points have the most obvious influence on the switch spectrum, etc. When adjusting one by one manually, it may result in a locally optimal but globally non-optimal situation. In addition, it may also occur that after adjusting a certain adjustment point, it will interfere with other adjustment points, which will waste a lot of time. Therefore, the method of obtaining the PA power of the device 12 to be debugged by an automated method and directly generating the Ramp curve as a whole can effectively avoid the above situations. On the one hand, it improves the efficiency of the debugging and generation process of the Ramp curve through the automated process. On the other hand, it generates the Ramp curve as a whole to avoid the situation of local optimality as much as possible and ensure the accuracy of the Ramp curve.

[0052] First of all, during the above debugging process, when the device 12 to be debugged starts to run under the preset debugging parameters, the preset instrument 13 is controlled to run, aiming to obtain the PA power of the device 12 to be debugged through the measurement of the running state of the device 12 to be debugged by the preset instrument 13. The above debugging parameters include voltage, current, or other working environment parameters, and these working environment parameters can correspond to different frequency bands and different frequency bands corresponding to each set of Ramp curves under the 3GPP protocol, etc. According to the situation described in the above embodiments, different working environment parameters will have a greater impact on the generated Ramp curve. Therefore, the debugging parameters need to be controlled to remain unchanged for each measurement.

[0053] Further, the specific way to obtain the PA power is to obtain the PA power of the device 12 to be debugged in the running state through the preset instrument 13, where the above-mentioned preset instrument 13 can be Agilent 8960 or other measuring instruments that can be used to obtain the PA power of the device. Optionally, the above-mentioned preset instrument 13 can be remotely controlled through a computer device, so that the user can control the operation of the instrument only by controlling the operation of the computer device, thereby remotely obtaining the PA power of the device 12 to be debugged.

[0054] Finally, in the case where the PA power data of the machine to be debugged during the measurement time period is obtained through the preset instrument 13, the obtained PA power data is processed by a computer or other computing devices, and a series of PA power data is processed into a complete Ramp curve, that is, the Ramp curve corresponding to the current debugging parameters is obtained.

[0055] In this way, the communication device debugging method in the embodiment of the present application can automatically obtain the adjustment parameter data of the device 12 to be debugged under the preset debugging parameters through the preset detection instrument, and further sort out the entire target characteristic curve of the device 12 to be debugged under the current debugging parameters based on the collected adjustment parameter data. Through the automated debugging process, the adaptation of the debugging parameters to the inconsistent feedback of the entire target characteristic curve or the mutual influence between the adjustment points on the target characteristic curve is carried out from the overall perspective of the target characteristic curve. Compared with the manual point-by-point debugging scheme in the current related technologies, the debugging generation efficiency and accuracy of the target characteristic curve are effectively improved.

[0056] Please refer to Figure 2 , in some embodiments, step 01 includes:

[0057] 011: In response to the start of the main control program, call the preset tool program;

[0058] 012: According to the tool program, when the device 12 to be debugged starts to run, control the preset instrument 13 to run, where the debugging parameters are included in the main control program.

[0059] In some embodiments, the processor is further configured to call the preset tool program in response to the start of the main control program, and to control the preset instrument 13 to run according to the tool program when the device 12 to be debugged starts to run.

[0060] Specifically, based on the above embodiments, regarding the method of controlling the operation of the preset instrument 13, for example, the user can call the tool program used during debugging through the main control program pre-configured on the computer device, so as to realize the start and stop control of the test on the device 12 to be debugged, and the control of the operating state of the preset instrument 13. Optionally, the user can call the Pandora debugging tool program through the main control program. Among them, the above-mentioned Pandora debugging tool program is a tool for radio frequency debugging of some chip platforms and the operation of some electronic devices. The radio frequency debugging functions include debugging of radio frequency signal formats such as GSM, TDSCDMA, WCDMA, LTE, WIFI, BT, FM, GPS, and reading and writing of device serial numbers.

[0061] Next, when the main control program is started, the main control program calls and loads the above-mentioned Pandora debugging tool program and controls the start of the tool program. Next, when the device 12 to be debugged is in the start-up and running state, the Pandora debugging tool program controls the operation of the preset instrument 13 to obtain the real-time PA power of the device 12 to be debugged. It should be noted that the start of the preset instrument 13 does not necessarily need to wait until the device 12 to be debugged is started up. The start of the preset instrument 13 and the start of the device 12 to be debugged can be executed simultaneously.

[0062] Further exemplarily, it should be noted that for the debugging parameters during the debugging of the device 12 to be debugged, generally, the main control program is used for control. Before the device 12 to be debugged starts running, the main control program first calls the debugging parameters corresponding to the current adjustment process. When generating a Ramp curve during the subsequent debugging of the device 12 to be debugged, the device 12 to be debugged starts running under the working environment conditions corresponding to the above-mentioned debugging parameters.

[0063] In this way, the present application can control the operation of the preset instrument 13 by controlling a dedicated tool program through the main control program.

[0064] Please refer to Figure 3 , in some embodiments, step 01 further includes:

[0065] 013: In response to the operation of the main control program, control the programmable power supply 14 to adjust the working voltage,

[0066] wherein the programmable power supply 14 is used to supply power to the device 12 to be debugged;

[0067] 014: Control the device 12 to be debugged to start running at the working voltage.

[0068] In some embodiments, the processor is further configured to control the programmable power supply 14 to adjust the working voltage in response to the operation of the main control program, and to control the device under test 12 to start running at the working voltage.

[0069] Specifically, based on the above embodiments, regarding the operation of the device under test 12 under preset debugging parameters, for example, when the main control program starts running, the main control program controls and adjusts the working voltage of the programmable power supply 14 by using the connection relationship between the computer device where it is located and the programmable power supply 14. Among them, the connection between the computer device and the programmable power supply 14 can be realized through a GPIB cable, which can provide a hardware basis for controlling the working voltage of the programmable power supply 14. In addition, the main function of the programmable power supply 14 is to supply power to the device under test 12, so as to provide debugging parameters related to voltage for the device under test 12. Generally speaking, the programmable power supply 14 connected through the GPIB cable can at least provide debugging parameters for the device under test 12 within a total of three voltage ranges: high voltage, conventional voltage, and low voltage. The demarcation thresholds between the above three voltage ranges can be adjusted according to common knowledge or the characteristics of the device under test 12 itself, and the present application does not make specific limitations.

[0070] In this way, the present application can also control the debugging parameters when the device under test 12 is working based on the operation of the main control program, so as to debug the device under test 12 under different debugging parameters.

[0071] Please refer to Figure 4 , in some embodiments, step 02 includes:

[0072] 021: Control the device under test 12 to perform a strong emission test according to the tool program;

[0073] 022: When the strong emission test is being performed, control the preset instrument 13 to obtain the adjustment parameters of the device under test 12 according to the tool program.

[0074] In some embodiments, the processor is configured to control the device under test 12 to perform a strong emission test according to the tool program, and to control the preset instrument 13 to obtain the adjustment parameters of the device under test 12 according to the tool program when the strong emission test is being performed.

[0075] Specifically, on the basis of the above-described embodiments, the device 12 to be debugged is debugged to generate a Ramp curve under corresponding debugging parameters. Exemplarily, while performing a forced emission test on the device 12 to be debugged, the preset instrument 13 is controlled to obtain the real-time PA power of the device 12 to be debugged during the forced emission test, and the obtained real-time PA power is used to generate a Ramp curve under the corresponding debugging parameters. Among them, the forced emission test is a test method for evaluating the performance and reliability of a device under extreme conditions or high-intensity usage by simulating such conditions. Its purpose is generally to ensure that the device can still operate normally in a harsh environment, and potential design or manufacturing defects can be discovered during the forced emission test. In this way, on the one hand, data can be obtained through the preset instrument 13 to prepare data for generating the corresponding Ramp curve, and on the other hand, the device 12 to be debugged can be subjected to high-intensity usage detection before leaving the factory through the forced emission test. Two test purposes are completed simultaneously through a single test process to improve the efficiency of the device test process. After the forced emission test is completed, the device 12 to be debugged transmits the test result data of the forced emission test to the computer device based on the data transmission channels such as the injected USB established between it and the computer device on which the main control program is deployed.

[0076] In this way, the present application can obtain the adjustment parameters of the device 12 to be debugged by using the preset instrument 13 during the forced emission test, prepare data for generating the Ramp curve, and simultaneously complete the high-intensity usage test for the preset instrument 13 to improve the test efficiency.

[0077] Please refer to Figure 5 , in some embodiments, step 03 includes:

[0078] 031: Detect the adjustment parameters according to the main control program;

[0079] 032: When the adjustment parameters meet the preset detection criteria, determine the target characteristic curve of the device 12 to be debugged according to the adjustment parameters.

[0080] In some embodiments, the processor is further configured to detect the adjustment parameters according to the main control program, and to determine the target characteristic curve of the device 12 to be debugged according to the adjustment parameters when the adjustment parameters meet the preset detection criteria.

[0081] Specifically, on the basis of the above-described embodiments, when the preset instrument 13 obtains the PA power (corresponding to the adjustment parameters) of the device 12 to be debugged during the forced emission test, exemplarily, the computer device on which the main control program is deployed obtains, through the Pandora debugging tool program, the power measurement data measured by the preset instrument 13 for the device 12 to be debugged from the preset instrument 13, and the above-mentioned power measurement data corresponds to the PA power of the device 12 to be debugged obtained during the forced emission test.

[0082] Next, the main control program performs data accuracy detection on the acquired power measurement data. The above data accuracy detection process is based on a preset detection standard, and determines whether the power measurement data meets the preset detection standard by the difference between the power measurement data and the above preset detection standard. The main purpose of the above detection process is to pre-detect the accuracy of the acquired data, so as to avoid the accuracy problem of the generated Ramp curve when generating the Ramp curve directly without detection.

[0083] Therefore, based on the above example, if it is detected according to the above preset detection standard that the power measurement data acquired by the preset instrument 13 all meet the above preset detection standard, then it means that the Ramp curve generated according to the acquired power measurement data can accurately describe the radio frequency indexes such as the phase error, power, switch spectrum, modulation spectrum, and PVT of the device under test 12 under the corresponding debugging parameters, so as to ensure that the generated Ramp curve hardly needs to be re-debugged, thereby realizing high-efficiency and accurate debugging to determine the Ramp curve corresponding to the device under test 12.

[0084] In this way, the present application can first detect the obtained adjustment parameters before generating the Ramp curve to ensure the fitness and accuracy of the generated Ramp curve under the current debugging parameters.

[0085] Furthermore, in some embodiments, the communication device debugging method further includes:

[0086] 033: In the case where the adjustment parameters do not meet the preset detection standard, according to the preset debugging parameters, when the device under test 12 starts to run, control the preset instrument 13 to run.

[0087] In some embodiments, the processor is further configured to, in the case where the adjustment parameters meet the preset detection standard, determine the target characteristic curve of the device under test 12 according to the adjustment parameters, and to, in the case where the adjustment parameters do not meet the preset detection standard, control the preset instrument 13 to run when the device under test 12 starts to run according to the preset debugging parameters.

[0088] Specifically, based on the above embodiments, if it is detected according to the above preset detection criteria that some or all of the power measurement data obtained by the preset instrument 13 do not meet the above preset detection criteria, it means that the Ramp curve generated based on the obtained power measurement data cannot accurately describe the radio frequency indicators such as the phase error, power, switch spectrum, modulation spectrum, and PVT of the device under test 12 under the corresponding debugging parameters. At this time, exemplarily, when the main control program detects that some or all of the above power measurement data do not meet the above preset detection criteria, the obtained data will be discarded, and the system will return to the initial step to re-determine the debugging parameters, re-control the device under test 12 to start running according to the debugging parameters, and re-control the preset instrument 13 to measure the device under test 12, so as to ensure the accuracy of the generated Ramp curve.

[0089] In this way, the present application can also re-acquire data when it is detected that the adjustment parameters do not meet the detection criteria, so as to ensure the adaptability and accuracy of the generated Ramp curve under the current debugging parameters.

[0090] The communication device debugging system in the embodiment of the present application includes a control device 1111, a preset instrument 13, and a device under test 12;

[0091] Among them, the control device 1111 is used to control the preset instrument 13 to run when the device under test 12 starts to run according to the preset debugging parameters.

[0092] The control device 1111 is also used to obtain the adjustment parameters of the device under test 12 according to the preset instrument 13.

[0093] The control device 1111 is also used to determine the target characteristic curve of the device under test 12 according to the adjustment parameters.

[0094] In some embodiments, the communication device debugging system further includes a programmable power supply 14, and the programmable power supply 14 is controlled by the main control program running on the control device 1111 to adjust the working voltage to supply power to the device under test 12.

[0095] Specifically, please refer to Figure 6 , Figure 6The structure of the communication device debugging system in the above embodiments is modularly shown. The communication device debugging system can implement the communication device debugging method in the above embodiments. Among them, the main control system and the tool program in the above embodiments are both deployed on the control device 1111. During the debugging process of the device 12 to be debugged, the tool program controls the preset instrument 13 to start running, the main control program provides the debugging parameters during the debugging process, and further the tool program controls to implement the forced transmission test for the device 12 to be debugged. Finally, when the power measurement data (corresponding to the adjustment parameters) obtained by the preset instrument 13 is transmitted back to the control device 1111, the main control program converts the obtained power measurement data into a corresponding Ramp curve (corresponding to the target characteristic curve).

[0096] Further, in terms of providing the adjustment parameters, exemplarily, the control device 1111 and the programmable power supply 14 are connected through a GPIB line. The main control program controls the working voltage of the programmable power supply 14, so as to provide the debugging parameters for the working voltage corresponding to the device 12 to be debugged by controlling the programmable power supply 14, so as to implement the adjustment of the debugging parameters or the working environment conditions corresponding to the Ramp curve.

[0097] The computer device in the embodiment of the present application includes a memory and a processor. The memory stores a computer program. When the computer program is executed by the processor, the above method is implemented.

[0098] The computer-readable storage medium in the embodiment of the present application stores a computer program. When the computer program is executed by one or more processors, the above method is implemented.

[0099] In the description of this specification, the descriptions with reference to terms such as "certain embodiments", "in an example", "exemplarily", etc. mean that the specific features, structures, materials or characteristics described in connection with the embodiments or examples are included in at least one embodiment or example of the present application. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiments or examples. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of the different embodiments or examples.

[0100] Any process or method description, whether in a flowchart or otherwise described herein, can be understood to represent a module, segment, or portion of code including one or more executable instructions for implementing a specific logical function or process. The scope of the preferred embodiments of the present application includes additional implementations, where the functions may be performed in a substantially simultaneous manner or in the reverse order according to the functions involved, rather than in the order shown or discussed. This should be understood by those skilled in the art to which the embodiments of the present application pertain.

[0101] Although the embodiments of the present application have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the present application. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present application.

Claims

1. A communication device debugging method, characterized in that, The method includes: Controlling a preset instrument to run when a device to be debugged starts to operate according to preset debugging parameters; Obtaining adjustment parameters of the device to be debugged according to the preset instrument; Determining a target characteristic curve of the device to be debugged according to the adjustment parameters.

2. The method according to claim 1, wherein The controlling the preset instrument to run when the device to be debugged starts to operate according to the preset debugging parameters includes: Invoking a preset tool program in response to the start of a main control program; Controlling the preset instrument to run when the device to be debugged starts to operate according to the tool program, where the debugging parameters are included in the main control program.

3. The method according to claim 2, wherein The controlling the preset instrument to run when the device to be debugged starts to operate according to the preset debugging parameters further includes: Controlling a programmable power supply to adjust the working voltage in response to the operation of the main control program, where the programmable power supply is used to supply power to the device to be debugged; Controlling the device to be debugged to start operating at the working voltage.

4. The method according to claim 2, wherein The obtaining the adjustment parameters of the device to be debugged according to the preset instrument includes: Controlling the device to be debugged to perform a strong emission test according to the tool program; When the strong emission test is being performed, controlling the preset instrument to obtain the adjustment parameters of the device to be debugged according to the tool program.

5. The method according to claim 4, wherein The adjustment parameter is the output power of a power amplifier of the device to be debugged.

6. The method according to claim 2, wherein The determining the target characteristic curve of the device to be debugged according to the adjustment parameters includes: Detecting the adjustment parameters according to the main control program; When the adjustment parameters meet a preset detection standard, determining the target characteristic curve of the device to be debugged according to the adjustment parameters.

7. The method according to claim 6, wherein The method further includes: When the adjustment parameters do not meet the preset detection standard, controlling the preset instrument to run when the device to be debugged starts to operate according to the preset debugging parameters.

8. A communication device debugging system, characterized in that, The communication device debugging system includes a control device, a preset instrument, and a device to be debugged; where the control device is used to control the preset instrument to run when the device to be debugged starts to operate according to the preset debugging parameters; the control device is further used to obtain the adjustment parameters of the device to be debugged according to the preset instrument; the control device is further used to determine the target characteristic curve of the device to be debugged according to the adjustment parameters.

9. A computer device, characterized in that, The computer device includes a memory and a processor. When the computer program stored in the memory is executed by the processor, the method according to any one of claims 1-7 is implemented.

10. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program. When the computer program is executed by one or more processors, the method according to any one of claims 1-7 is implemented.