Radio frequency power consumption processing method and device, equipment and storage medium

By detecting the target state of the terminal device and adjusting the parameters of the RF component according to the mapping relationship, the problem of effectively reducing RF power consumption in various scenarios is solved, and more efficient communication and longer battery life is achieved.

CN120034939APending Publication Date: 2025-05-23GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP LTD
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Patent Information

Application Number
CN202510130745.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-05
Publication Date
2025-05-23

AI Technical Summary

Technical Problem

Effectively reducing RF power consumption in various scenarios is an urgent problem to be solved. The existing technology reduces power consumption through power backing in power saving mode. However, in the relatively complete base station environment of domestic operators, weak signal scenarios account for less than 10%, so the traditional solution is not perfect enough.

Method used

By detecting the current target status of the terminal device, indicating the working mode or usage scenario, and according to the mapping relationship between the preset state and the preset RF calibration parameters, the devices in the RF component are controlled to operate according to the target RF calibration parameters, thereby reducing RF power consumption in each scenario.

Benefits of technology

It realizes effective reduction of RF power consumption in various scenarios, improves communication quality, extends battery life, and enhances the adaptability of the equipment in various environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention discloses a radio frequency power consumption processing method and device, equipment and a storage medium. In the technical scheme of the invention, the terminal equipment firstly detects a current target state, the target state is used for indicating a working mode or a use scene of the terminal equipment, the working mode comprises a power saving mode or a normal electric quantity mode, and the use scene comprises a standby scene or a non-standby scene; a device in a radio frequency assembly of the terminal device is controlled to operate according to the target radio frequency calibration parameter, the target radio frequency calibration parameter corresponds to the target state, the mapping relation between the preset state and the preset radio frequency calibration parameter is stored in the terminal device, and the target state is one of the preset states. According to the radio frequency power consumption processing method, the device in the radio frequency component of the terminal equipment is controlled to operate according to the target radio frequency calibration parameter based on the current target state of the terminal equipment, so that the radio frequency power consumption can be effectively reduced in various scenes.
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Description

Technical Field

[0001] The embodiments of the present application relate to the technical field of terminal equipment, and relate to but are not limited to a method and apparatus, device, and storage medium for processing radio frequency power consumption. Background Art

[0002] In the current RF design of related technologies, the RF module of a general terminal device will adjust and optimize the transmission of RF signals according to a preset set of calibration parameters, such as the corresponding voltage and calibration bias at each power point. In the power saving mode of a mobile terminal, the battery power is usually low, and the device needs to reduce the RF power consumption by backing off the power to extend the battery life.

[0003] However, the solution of reducing RF power consumption through power back-off is usually applicable to weak signal scenarios. At present, domestic operators have relatively complete base station deployment, and the signal quality of mobile terminals is relatively good. Weak signal scenarios account for less than 10%, that is, the time of calling high power accounts for less than 10% of the user's use of the terminal. Therefore, the solution of using power back-off in power saving mode to reduce power consumption is not perfect.

[0004] Therefore, how to effectively reduce RF power consumption in various scenarios is an urgent problem to be solved. Summary of the invention

[0005] The method, device, equipment, and storage medium for processing radio frequency power consumption provided in the embodiments of the present application can effectively reduce radio frequency power consumption in various scenarios. The method, device, equipment, and storage medium for processing radio frequency power consumption provided in the embodiments of the present application are implemented as follows:

[0006] The method for processing radio frequency power consumption provided in an embodiment of the present application is applied to a terminal device, and the method includes: detecting a current target state of the terminal device, where the target state is used to indicate an operating mode or a usage scenario of the terminal device, where the operating mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario; controlling a device in a radio frequency component of the terminal device to operate according to a target radio frequency calibration parameter, where the target radio frequency calibration parameter corresponds to the target state, and a mapping relationship between a preset state and a preset radio frequency calibration parameter is stored in the terminal device, and the target state is one of the preset states.

[0007] The RF power consumption processing device provided in the embodiment of the present application is applied to a terminal device, and the device includes: a detection module, which is used to detect the current target state of the terminal device, and the target state is used to indicate the working mode or usage scenario of the terminal device, and the working mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario; a control module, which is used to control the device in the RF component of the terminal device to operate according to the target RF calibration parameters, and the target RF calibration parameters correspond to the target state. The terminal device stores a mapping relationship between a preset state and a preset RF calibration parameter, and the target state is one of the preset states.

[0008] The computer device provided in the embodiment of the present application includes a memory and a processor, wherein the memory stores a computer program that can be run on the processor, and when the processor executes the program, the method described in the embodiment of the present application is implemented.

[0009] The computer-readable storage medium provided in the embodiment of the present application stores a computer program thereon, and when the computer program is executed by a processor, the method provided in the embodiment of the present application is implemented.

[0010] The computer program product provided in the embodiments of the present application includes a computer program, and when the computer program is executed by a processor, the method provided in the embodiments of the present application is implemented.

[0011] In the method, device, equipment, and storage medium for processing RF power consumption provided in the embodiments of the present application, the terminal device first detects the current target state of the terminal device, and the target state is used to indicate the working mode or usage scenario of the terminal device. The working mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario. Then, the device in the RF component of the terminal device is controlled to operate according to the target RF calibration parameters. The target RF calibration parameters correspond to the target state. The terminal device stores a mapping relationship between the preset state and the preset RF calibration parameters. The target state is one of the preset states. In the method for processing RF power consumption, by controlling the devices in the RF component of the terminal device to operate according to the target RF calibration parameters based on the current target state of the terminal device, the RF power consumption can be effectively reduced in various scenarios. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] The drawings herein are incorporated into the specification and constitute a part of the specification. These drawings illustrate embodiments consistent with the present application and are used together with the specification to illustrate the technical solution of the present application.

[0013] Figure 1 A schematic diagram of the system architecture of a terminal device provided for one embodiment of the present application;

[0014] Figure 2 A schematic diagram of an implementation flow of a method for processing radio frequency power consumption provided in one embodiment of the present application;

[0015] Figure 3 A schematic diagram of an embodiment of the present application providing a transmission power and voltage that satisfies the APT calibration principle;

[0016] Figure 4 A schematic diagram of an embodiment of the present application providing a transmission power and voltage that satisfies the ET calibration principle;

[0017] Figure 5 A schematic diagram of an implementation flow of a method for processing radio frequency power consumption provided in another embodiment of the present application;

[0018] Figure 6 A schematic diagram of an embodiment of the present application providing a normal power mode and a power saving mode in which the transmit power and voltage meet the APT calibration principle;

[0019] Figure 7 A schematic diagram of the ET calibration principle between the transmit power and voltage in the normal power mode and the power saving mode provided by an embodiment of the present application;

[0020] Figure 8 A schematic diagram of an implementation flow of a method for processing radio frequency power consumption provided in yet another embodiment of the present application;

[0021] Fig. 9 A schematic diagram of a circuit structure related to radio frequency signal processing in a terminal device provided in one embodiment of the present application;

[0022] Fig.10 A schematic diagram of the relationship between memories in a terminal device provided in one embodiment of the present application;

[0023] Fig.11 A structural schematic diagram of a device for processing radio frequency power consumption provided by one embodiment of the present application;

[0024] Fig.12 A structural schematic diagram of a computer device provided for one embodiment of the present application. DETAILED DESCRIPTION

[0025] In order to make the purpose, technical solution and advantages of the embodiments of the present application clearer, the specific technical solution of the present application will be further described in detail below in conjunction with the drawings in the embodiments of the present application. The following embodiments are used to illustrate the present application, but are not used to limit the scope of the present application.

[0026] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art to which this application belongs. The terms used herein are only for the purpose of describing the embodiments of this application and are not intended to limit this application.

[0027] In the following description, reference is made to “some embodiments”, which describe a subset of all possible embodiments, but it will be understood that “some embodiments” may be the same subset or different subsets of all possible embodiments and may be combined with each other without conflict.

[0028] It should be pointed out that the terms "first\second\third" involved in the embodiments of the present application are used to distinguish similar or different objects, and do not represent a specific ordering of the objects. It can be understood that "first\second\third" can be interchanged in a specific order or sequence where permitted, so that the embodiments of the present application described here can be implemented in an order other than that illustrated or described here.

[0029] In the current RF design of related technologies, the RF module of a general terminal device will adjust and optimize the transmission of RF signals according to a preset set of calibration parameters. Calibration parameters usually include power point (RF signal under different power output states), voltage, and bias current (bias), which are determined at the factory based on device characteristics and test standards. Among them, the voltage and calibration bias at different power points refer to the fact that the RF module will require different voltage supply and bias settings under different power outputs. When the power output is higher, a higher voltage and appropriate bias adjustment are required to ensure signal strength and transmission quality; while the voltage and bias are reduced accordingly when the power output is low to reduce power consumption. These calibration parameters can ensure the signal quality and stability of the RF module in different working scenarios. For example, in different network environments, such as areas with low signal strength or high interference areas, these parameters can be automatically adjusted to ensure that the RF signal can achieve the expected effect in various situations.

[0030] In the power saving mode of a mobile terminal, the battery power is usually low, and the device needs to extend the battery life by reducing power consumption. To achieve this goal, the optimization solution currently adopted by many terminal manufacturers is to dynamically adjust the output power of the RF module according to the current battery voltage level. That is, when the battery voltage decreases, the RF module automatically reduces its power output, thereby reducing power consumption and extending battery life. Reducing RF power helps to extend the battery life of the device, but it may also affect the communication quality or transmission distance, because the strength of the RF signal is proportional to the power output.

[0031] For example, taking the B41 frequency band, and 3.4V-4V as the battery voltage in normal scenarios, and 3.2V-3.4V as the voltage for triggering the power saving mode, it is assumed that the maximum transmission power of the B41 frequency band in normal scenarios is 25dbm. After switching to the power saving mode, the new power configuration is called. At this time, the B41 power can be customized to fall back to 23dbm, thereby reducing the RF current in weak signal scenarios where the RF current is relatively large, thereby improving the terminal's battery life.

[0032] However, the solution of reducing RF power consumption through power back-off is usually applicable to weak signal scenarios. Big data shows that domestic operators have relatively complete base station deployment, the signal quality of mobile terminals is good, and weak signal scenarios account for less than 10%, that is, the time of calling high power accounts for less than 10% of the user's use of the terminal. Therefore, the solution of using power back-off in power saving mode to reduce power consumption is not perfect.

[0033] Therefore, how to effectively reduce RF power consumption in various scenarios is an urgent problem to be solved.

[0034] In view of this, an embodiment of the present application provides a method for processing radio frequency power consumption, which is applied to a terminal device, and the method specifically includes: detecting the current target state of the terminal device, the target state is used to indicate the working mode or usage scenario of the terminal device, the working mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario; controlling the device in the radio frequency component of the terminal device to operate according to the target radio frequency calibration parameters, the target radio frequency calibration parameters correspond to the target state, and the terminal device stores a mapping relationship between a preset state and a preset radio frequency calibration parameter, and the target state is one of the preset states. In the method for processing radio frequency power consumption, by controlling the device in the radio frequency component of the terminal device to operate according to the target radio frequency calibration parameters based on the current target state of the terminal device, the radio frequency power consumption can be effectively reduced in various scenarios.

[0035] It should be understood that the terminal device involved in the embodiments of the present application may be a mobile phone, a tablet computer, a laptop computer, a PDA, a mobile internet device (MID), a wearable device, a virtual reality (VR) device, an augmented reality (AR) device, a smart screen, an artificial intelligence (AI) speaker, a headset, a terminal in industrial control, a terminal in self driving, a terminal in remote medical surgery, a terminal in a smart grid, a terminal in transportation safety, a terminal in a smart city, a terminal in a smart home, a personal digital assistant (PDA), etc., and the embodiments of the present application are not limited to this.

[0036] For example, Figure 1 A schematic diagram of the system architecture of a terminal device provided in one embodiment of the present application. Figure 1 As shown, the terminal device includes components such as a processor 110, a memory 120, a transceiver 130, a display unit 140, an input unit 150, a sensor 160, and a power module 170.

[0037] The processor 110 is the control center of the terminal device, and uses various interfaces and lines to connect various parts of the entire terminal device. By running or executing software programs and / or modules stored in the memory 120, and calling data stored in the memory 120, the processor 110 performs various functions of the terminal device and processes data, thereby monitoring the terminal device as a whole. Optionally, the processor 110 may include one or more processing units; optionally, the processor 110 may integrate an application processor, which mainly processes operating devices, user interfaces, and application programs, etc. Of course, other processors may also be included, which are not listed here one by one.

[0038] The memory 120 can be used to store software programs and modules. The processor 110 executes various functional applications and data processing of the terminal device by running the software programs and modules stored in the memory 120. The memory 120 mainly includes a program storage area and a data storage area, wherein the program storage area can store operating devices, at least one application required for a function (such as a sound playback function, an image playback function, etc.), etc.; the data storage area can store data created according to the use of the terminal device (such as audio data, a phone book, etc.), etc. In addition, the memory 120 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one disk storage device, a flash memory device, or other volatile solid-state storage devices.

[0039] The transceiver 130 can provide wireless communication solutions for terminal devices, including wireless local area networks (WLAN) (such as wireless fidelity (Wi-Fi) networks), Bluetooth (BT), global navigation satellite system (GNSS), frequency modulation (FM), near field communication (NFC), infrared (IR), etc. The transceiver 130 can be one or more devices integrating at least one communication processing module, for example, an antenna and a baseband processor are integrated into the transceiver 130, or an antenna and a modem processor are integrated into the transceiver 130, etc., which are not limited here.

[0040] The display unit 140 can be used to display information input by the user or information provided to the user and various menus of the terminal device. The display unit 140 can be configured in the form of a liquid crystal display (LCD), an organic light-emitting diode (OLED), etc., which is not limited here.

[0041] The input unit 150 can be used to receive input digital or character information, and to generate key signal input related to the user settings and function control of the terminal device. Specifically, the input unit 150 can collect the user's operations on or near it, and drive the corresponding connection device according to a pre-set program. In addition, the input unit 150 may include a touch panel, which can be implemented in various types such as resistive, capacitive, infrared, and surface acoustic wave. In addition to the touch panel, the input unit 150 may also include other input devices. Specifically, other input devices may include, but are not limited to, one or more of function keys (such as volume control keys, switch keys, etc.), trackballs, joysticks, etc.

[0042] The terminal device may also include at least one sensor 160, such as a gyroscope sensor, a motion sensor, and other sensors. The motion sensor may include an acceleration sensor for detecting the magnitude of acceleration in all directions, and the magnitude and direction of gravity when stationary, which may be used for applications that identify the posture of the terminal device, such as horizontal and vertical screen switching, related games, magnetometer posture calibration, etc. As for other sensors that may be configured in the terminal device, such as a pressure gauge, a barometer, a hygrometer, a thermometer, an infrared sensor, a fingerprint sensor, etc., they will not be described in detail here.

[0043] The terminal device also includes a power module 170 for supplying power to various components. Optionally, the power module 170 can be logically connected to the processor 110 through a power management device, so that functions such as charging, discharging, and power consumption management can be managed through the power management device.

[0044] Although not shown, the terminal device may further include a camera. Optionally, the camera may be located at the front or rear of the terminal device, which is not limited in the embodiment of the present application.

[0045] It is to be understood that the structure illustrated in the embodiments of the present application does not constitute a specific limitation on the terminal device. In other embodiments of the present application, the terminal device may include more or fewer components than shown in the figure, or combine certain components, or split certain components, or arrange the components differently. The components shown in the figure may be implemented in hardware, software, or a combination of software and hardware.

[0046] In order to make the purpose and technical solution of this application clearer and more intuitive, the following will be combined with the accompanying drawings and embodiments to describe in detail the method and device, equipment, and storage medium for processing radio frequency power consumption provided by the embodiments of this application. It should be understood that the specific embodiments described herein are only used to explain this application and are not used to limit this application.

[0047] Please refer to Figure 2 , is a schematic diagram of an implementation flow of a method for processing radio frequency power consumption provided by an embodiment of the present application. The method can be applied to Figure 1 The terminal equipment shown, such as Figure 2 As shown, the method may include the following steps 201 and 202:

[0048] Step 201, detecting the current target state of the terminal device, the target state is used to indicate the working mode or usage scenario of the terminal device, the working mode includes power saving mode or normal power mode, and the usage scenario includes standby scenario or non-standby scenario.

[0049] In some embodiments, the terminal device can collect relevant information through a variety of sensors or software services, such as battery status, user activity detection, application status, wireless communication status and location service status, etc., wherein the battery status includes the current power level, charging status, battery health, etc.; user activity detection includes whether the device is operated by the user (such as touching the screen, clicking a button, etc.); the application status includes the number and activity status of foreground applications or background applications; the wireless communication status includes the activity status of Wi-Fi, Bluetooth, mobile data connection, etc.; the location service status includes whether the Global Positioning System (GPS) or base station positioning is enabled, which may affect the network connection strategy.

[0050] Furthermore, based on the above information collected, the current target state of the terminal device is determined. For example, if the terminal device is low on battery, it may enter a power saving mode; if the device has sufficient battery, it may be in a normal power mode; if the terminal device is off or the user is not actively using the device, it may be in a standby mode; if the user is actively using the terminal device, it is identified as a non-standby mode.

[0051] Optionally, when the terminal device is in power saving mode, the device usually gives priority to extending battery life, so it will reduce unnecessary resource consumption, such as reducing screen brightness, turning off unnecessary wireless communications, reducing processor frequency, etc.; the system needs to confirm whether the device is in power saving mode, usually by reading the battery power of the device, the battery health of the device, and whether specific power saving functions are enabled. When the terminal device has enough power, the device can maintain a normal performance level and process without paying too much attention to battery consumption. At this time, the system can allow more background tasks to be executed, higher network activity, etc. When the terminal device is in a standby scenario, the device is usually in a low-activity state, such as the screen is turned off, the application is in the background, and there are no active tasks. When the terminal device is in a non-standby scenario, the device is usually in a high-activity state, such as the user is interacting with the device, playing a video or making a call, etc. At this time, the system should allow the device to consume more power to ensure a smooth user experience.

[0052] Step 202, control the devices in the RF component of the terminal device to operate according to the target RF calibration parameters, the target RF calibration parameters correspond to the target state, the terminal device stores a mapping relationship between the preset state and the preset RF calibration parameters, and the target state is one of the preset states.

[0053] It should be understood that the RF component is the part of the terminal device that is responsible for receiving and sending wireless signals, and usually includes hardware devices such as RF circuits, antennas, power amplifiers (PA), filters, etc. The quality of RF performance directly affects the wireless communication quality of the device. During use, the RF component may be affected by environmental factors, hardware aging, etc., resulting in performance changes. In order to ensure that the device can consistently provide the expected performance, the RF component usually needs to be calibrated.

[0054] In some embodiments, the RF component of the terminal device may include multiple devices, and in the same terminal device state, each device corresponds to its own RF calibration parameters. The terminal device stores a mapping relationship between a preset state and a preset RF calibration parameter, wherein the preset RF calibration parameters include RF calibration parameters corresponding to all devices, and the RF calibration parameters may include transmit power and voltage, etc. For example, the transmit power and voltage of some devices meet the average power tracking (Average power tracking, APT) calibration principle, and the transmit power and voltage of some devices meet the envelope tracking (Envelope tracking, ET) calibration principle.

[0055] It should be understood that the APT calibration principle usually refers to adjusting the supply voltage of the RF power amplifier according to the output power of the RF power amplifier through an algorithm, that is, different transmission powers use different calibration supply voltages. Specifically, high power uses high voltage, and low power reasonably reduces the working voltage to obtain higher efficiency and thus reduce power consumption.

[0056] The principle of ET calibration is to make the RF power amplifier always work in saturation state, and control the output power by adjusting the power supply voltage of the RF power amplifier. Compared with APT, ET technology is more like on-demand customization, allowing the power supply voltage of the power amplifier to change with the envelope of the input signal. Envelope tracking can improve the energy efficiency of the RF power amplifier and track the required power.

[0057] As an example, assuming that the terminal device is in normal power mode, the target RF calibration parameters include transmit power and voltage. The schematic diagram of the transmit power and voltage satisfying the APT calibration principle is as follows: Figure 3 As shown in the figure, different transmission powers use different voltages. High power uses high voltage, and low power reasonably reduces the working voltage, that is, uses low voltage. The schematic diagram of the transmission power and voltage that meet the ET calibration principle is as follows Figure 4As shown, the voltage varies with the transmit power envelope.

[0058] In some embodiments, the terminal device searches for a mapping relationship between a preset state stored internally and the RF calibration parameters based on the target state, determines the RF calibration parameters required in the state, and adjusts the devices in the RF component based on the target RF calibration parameters so that the RF performance of the device reaches a predetermined target, ensuring the signal quality and communication stability of the device in the state, thereby improving communication quality and reducing power consumption.

[0059] In this embodiment, the terminal device first detects the current target state, which is used to indicate the working mode or usage scenario of the terminal device. The working mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario; the device in the RF component of the terminal device is controlled to operate according to the target RF calibration parameters, the target RF calibration parameters correspond to the target state, and the terminal device stores a mapping relationship between the preset state and the preset RF calibration parameters, and the target state is one of the preset states. In the method for processing RF power consumption, by controlling the device in the RF component of the terminal device to operate according to the target RF calibration parameters based on the current target state of the terminal device, the RF power consumption can be effectively reduced in various scenarios.

[0060] Based on the above embodiments, Figure 5 A schematic diagram of the implementation flow of a method for processing radio frequency power consumption provided in another embodiment of the present application is shown in FIG. Figure 5 As shown, the method may include the following steps 501 to 503:

[0061] Step 501, detecting the current target state of the terminal device, the target state is used to indicate the working mode or usage scenario of the terminal device, the working mode includes power saving mode or normal power mode, and the usage scenario includes standby scenario or non-standby scenario.

[0062] In some embodiments, the terminal device can collect relevant information through a variety of sensors or software services, such as battery status, user activity detection, application status, wireless communication status and location service status, etc., where the battery status includes the current power level, charging status, battery health, etc.; user activity detection includes whether the device is operated by the user (such as touching the screen, clicking a button, etc.); application status includes the number and activity status of foreground applications or background applications; wireless communication status includes the activity status of Wi-Fi, Bluetooth, mobile data connection, etc.; location service status includes whether GPS or base station positioning is enabled, which may affect the network connection strategy.

[0063] Furthermore, based on the above information collected, the current target state of the terminal device is determined. For example, if the terminal device is low on battery, it may enter a power saving mode; if the device has sufficient battery, it may be in a normal power mode; if the terminal device is off or the user is not actively using the device, it may be in a standby mode; if the user is actively using the terminal device, it is identified as a non-standby mode.

[0064] Step 502: Determine target radio frequency calibration parameters according to the target state and the mapping relationship between the preset state and the preset radio frequency calibration parameters.

[0065] In some embodiments, the RF component of the terminal device may include multiple devices, and in the same terminal device state, each device corresponds to its own RF calibration parameters. The terminal device stores a mapping relationship between a preset state and a preset RF calibration parameter, wherein the preset RF calibration parameters include RF calibration parameters corresponding to all devices, and the RF calibration parameters may include transmit power and voltage, etc. For example, the transmit power and voltage of some devices meet the APT calibration principle, and the transmit power and voltage of some devices meet the ET calibration principle.

[0066] In some embodiments, the terminal device searches for a mapping relationship between a preset state and a radio frequency calibration parameter stored internally according to a target state, and determines that the radio frequency calibration parameters required in the state are target radio frequency calibration parameters.

[0067] In a possible implementation, when the target state indicates that the terminal device is in power saving mode or standby scenario, the target radio frequency calibration parameters are determined according to the minimum radio frequency transmission standard specified in the preset communication protocol, that is, when the terminal device is in power saving mode or standby scenario, the target radio frequency calibration parameters only need to meet the minimum radio frequency transmission standard of the communication protocol to ensure the necessary functions of the terminal device such as emergency calls and emergency Internet access, and to reduce radio frequency power consumption as much as possible. Optionally, the target radio frequency calibration parameters include transmission power and voltage.

[0068] As an example, see Figure 6 , which is a schematic diagram of satisfying the APT calibration principle between the transmit power and voltage in the normal power mode and the power saving mode provided by an embodiment of the present application, such as Figure 6 As shown, in normal power mode, high power uses high voltage, and low power reasonably reduces the working voltage; in power saving mode, the voltage under the same transmission power is smaller than that in normal power mode, and the corresponding voltage in power saving mode meets the minimum standard specified by the communication protocol.

[0069] As another example, see Figure 7 , which is a schematic diagram of satisfying the ET calibration principle between the transmit power and voltage in the normal power mode and the power saving mode provided by an embodiment of the present application, such as Figure 7 As shown, in normal power mode, the voltage changes with the transmit power envelope; in power saving mode, the voltage still changes with the transmit power envelope, but the voltage at the same transmit power is mostly smaller than that in normal power mode. In some special positions, such as the peak and valley values ​​of the transmit power, the voltage may be equal.

[0070] In another possible implementation, when the target state indicates that the terminal device is in normal power mode or non-standby scenario, the target state may correspond to multiple sets of RF calibration parameters, and the terminal device can determine the target RF calibration parameters from the multiple sets of RF calibration parameters according to its current needs.

[0071] In some embodiments, the terminal device can first obtain current usage requirements, which include at least one of network usage requirements and battery life usage requirements, and then determine target RF calibration parameters from multiple sets of RF calibration parameters corresponding to the target state based on the current usage requirements, and the target RF calibration parameters correspond to the current usage requirements.

[0072] Optionally, when the current usage demand is a network usage demand, the target RF calibration parameter is determined to be a RF calibration parameter among multiple sets of RF calibration parameters whose transmission power is greater than a preset power threshold. That is to say, when the current usage demand is a network usage demand, such as a scenario in which the user plays games, the user needs to use normal power to ensure that the network is not affected, so the target RF calibration parameter is determined to be a RF calibration parameter among multiple sets of RF calibration parameters whose transmission power is greater than a preset power threshold.

[0073] Optionally, when the current usage requirement is a battery life usage requirement, the target RF calibration parameter is determined to be a RF calibration parameter among multiple sets of RF calibration parameters whose transmit power is less than or equal to a preset power threshold; that is, when the current usage requirement is a battery life usage requirement, the user wants the battery life to be longer, so the target RF calibration parameter is a RF calibration parameter among multiple sets of RF calibration parameters whose transmit power is less than or equal to the preset power threshold, so as to reduce power consumption and extend battery usage time.

[0074] Step 503: When the current RF calibration parameters of the components in the RF assembly are different from the target RF calibration parameters, the target RF calibration parameters are called to configure the components in the RF assembly.

[0075] In some embodiments, the current RF calibration parameters refer to the actual RF performance values ​​of the devices in the RF assembly under the current working state, and the performance may have changed after a period of operation or due to environmental changes. Therefore, it is necessary to first compare the current RF calibration parameters with the target RF calibration parameters. If there is a difference between the two, it means that the devices in the RF assembly need to be adjusted or reconfigured to ensure that they work in the best state.

[0076] For example, in the RF module of a mobile phone, if the received signal quality does not meet expectations (for example, the signal strength is too weak or the frequency is offset), RF calibration will be automatically performed to ensure that the device can achieve the best call quality or data transmission rate in a specific operating frequency band and mode.

[0077] In a possible implementation, when the current RF calibration parameters of the components in the RF component are the same as the target RF calibration parameters, the components in the RF component are kept running according to the current RF calibration parameters.

[0078] In this embodiment, the current target state of the terminal device is first detected, and the target state is used to indicate the working mode or use scenario of the terminal device. The working mode includes power saving mode or normal power mode, and the use scenario includes standby scenario or non-standby scenario. Then, according to the mapping relationship between the target state and the preset state and the preset RF calibration parameter, the target RF calibration parameter is determined. When the current RF calibration parameter of the device in the RF component is different from the target RF calibration parameter, the target RF calibration parameter is called to configure the device in the RF component. In the RF power consumption processing method, the terminal device can adjust its working state according to the current target state (such as power saving mode, normal power mode, standby scenario or non-standby scenario). This ability to automatically adjust according to the scene changes ensures that the device can optimize performance in different occasions; in the power saving mode, the method may sacrifice certain RF performance to achieve the purpose of extending battery life. By adjusting certain devices in the RF component, such as reducing the amplifier gain and adjusting the frequency response, the device can maintain low power consumption without a strong signal; in the normal power mode, the RF component will provide higher performance as needed, thereby ensuring that the device provides better connection quality when it is under high load (such as calls, data transmission, etc.). By dynamically adjusting according to the target state and target RF calibration parameters, this method can effectively balance the performance and power consumption of the device, adapt to different usage scenarios, improve communication quality, extend battery life, and enhance the device's adaptability in various environments, thereby effectively reducing RF power consumption in various scenarios.

[0079] Based on the above embodiments, Figure 8 A schematic diagram of an implementation flow of a method for processing radio frequency power consumption provided in another embodiment of the present application is shown in FIG. Figure 8 As shown, the method may include the following steps 801 to 805:

[0080] Step 801, detecting the current target state of the terminal device, the target state is used to indicate the working mode or usage scenario of the terminal device, the working mode includes power saving mode or normal power mode, and the usage scenario includes standby scenario or non-standby scenario.

[0081] In some embodiments, the terminal device can collect relevant information through a variety of sensors or software services, such as battery status, user activity detection, application status, wireless communication status and location service status, etc., where the battery status includes the current power level, charging status, battery health, etc.; user activity detection includes whether the device is operated by the user (such as touching the screen, clicking a button, etc.); application status includes the number and activity status of foreground applications or background applications; wireless communication status includes the activity status of Wi-Fi, Bluetooth, mobile data connection, etc.; location service status includes whether GPS or base station positioning is enabled, which may affect the network connection strategy.

[0082] Furthermore, based on the above information collected, the current target state of the terminal device is determined. For example, if the terminal device is low on battery, it may enter a power saving mode; if the device has sufficient battery, it may be in a normal power mode; if the terminal device is off or the user is not actively using the device, it may be in a standby mode; if the user is actively using the terminal device, it is identified as a non-standby mode.

[0083] Step 802, control the devices in the RF component of the terminal device to operate according to the target RF calibration parameters, the target RF calibration parameters correspond to the target state, the terminal device stores a mapping relationship between the preset state and the preset RF calibration parameters, and the target state is one of the preset states.

[0084] It should be understood that the RF component is the part of the terminal device that is responsible for receiving and sending wireless signals, and usually includes hardware devices such as RF circuits, antennas, PAs, filters, etc. The quality of RF performance directly affects the wireless communication quality of the device. During use, RF components may be affected by environmental factors, hardware aging, etc., resulting in performance changes. In order to ensure that the device can consistently provide the expected performance, RF components usually need to be calibrated.

[0085] In some embodiments, the RF component of the terminal device may include multiple devices, and in the same terminal device state, each device corresponds to its own RF calibration parameters. The terminal device stores a mapping relationship between a preset state and a preset RF calibration parameter, wherein the preset RF calibration parameters include RF calibration parameters corresponding to all devices, and the RF calibration parameters may include transmit power and voltage, etc. For example, the transmit power and voltage of some devices meet the APT calibration principle, and the transmit power and voltage of some devices meet the ET calibration principle.

[0086] In some embodiments, the terminal device searches for a mapping relationship between a preset state stored internally and the RF calibration parameters based on the target state, determines the RF calibration parameters required in the state, and adjusts the devices in the RF component based on the target RF calibration parameters so that the RF performance of the device reaches a predetermined target, ensuring the signal quality and communication stability of the device in the state, thereby improving communication quality and reducing power consumption.

[0087] Step 803: Obtain the actual current radio frequency power consumption of the terminal device.

[0088] In some embodiments, for radio frequency signals, the terminal device includes a performance detection circuit for detecting the transmission power and the quality of the radio frequency signal; and also includes a current detection circuit that can detect the current consumed by the PA in real time. For example, please refer to Fig. 9 , is a schematic diagram of a circuit structure related to radio frequency signal processing in a terminal device provided in an embodiment of the present application, such as Fig. 9 As shown, the circuit structure includes a performance detection circuit, an ET / APT detection circuit, a current detection circuit, a transceiver, a PA and an adjustable tuner, wherein the baseband signal passes through the performance detection circuit to obtain the power transmitted by the terminal device and the quality of the RF signal; after the baseband signal passes through the transceiver, it is amplified in the power amplifier and finally sent to the adjustable tuner (Tuner), which is an electronic device or circuit that can adjust its operating frequency or impedance as needed to adapt to different signal conditions and application requirements; the baseband signal can also pass through the ET / APT detection circuit and then to the current detection circuit, which can also detect the current consumed by the PA in real time. Through the data collection of the circuit structure, the actual RF power consumption of the terminal device can be finally obtained.

[0089] Optionally, when the terminal device is stationed on the network and starts to make a call or surf the Internet, the terminal software will send a specific amount of power according to the requirements of the base station. Furthermore, the terminal device adjusts the relationship between voltage and transient power in envelope tracking in real time through the envelope fluctuation coefficient based on the PA current and signal quality data of the RF signal obtained in real time, so that the voltage and power have a nonlinear corresponding relationship and can be adjusted in real time, ultimately achieving a balance between performance, current and RF PA efficiency.

[0090] Step 804, updating the target RF calibration parameters according to the difference between the actual RF power consumption and the preset expected RF power consumption, wherein the expected RF power consumption is determined according to the target RF calibration parameters and the attribute information of the device in the RF component in the terminal device, and the attribute information is used to indicate at least one of the gain, noise figure and bandwidth of the device in the RF component.

[0091] In some embodiments, the expected RF power consumption is determined based on the target RF calibration parameters and the device attribute information of the RF components in the terminal device, wherein the gain in the device attribute information generally affects the received or transmitted signal strength, and the gain of the RF component determines the amplification factor of the signal; the noise factor of the RF device refers to the amount of noise introduced by the device, which affects the quality of the signal, and a higher noise factor may cause signal loss; the bandwidth defines the frequency range that the device can handle, which directly affects the transmission rate and signal quality of the system. The actual RF power consumption is the real power consumption measured by the RF components in the terminal device, which is the actual power consumption when the device is working normally.

[0092] Furthermore, the terminal device updates the target RF calibration parameters according to the difference between the actual RF power consumption and the preset expected RF power consumption. For example, if the actual RF power consumption is lower than the expected RF power consumption, the gain may need to be increased; otherwise, the gain may need to be reduced. If the noise factor is too high, adjustments may be required to reduce the noise and thus improve the signal quality. Bandwidth adjustment may affect the transmission capability of the signal, and the adjustment can optimize the match between RF power consumption and bandwidth. By adjusting the calibration parameters of the RF components, the actual RF power consumption of the terminal device is made as close as possible to the expected RF power consumption, thereby optimizing the performance of the device, reducing energy consumption, and ensuring communication quality. This process relies on the device attribute information of the RF components and achieves precise power consumption control through repeated calibration and measurement processes.

[0093] Step 805: synchronously update the target radio frequency calibration parameters stored in the backup area memory.

[0094] It should be noted that the terminal device includes a working area memory and a backup area memory. The working area memory is used to store the target RF calibration parameters, and the backup area memory is used to back up the data stored in the working area memory so that it can be restored and used later when a problem occurs in the working area memory.

[0095] In some embodiments, after the terminal device updates the target radio frequency calibration parameters in the previous step, it should also synchronously update the target radio frequency calibration parameters stored in the backup area memory.

[0096] In some embodiments, Qualcomm non-volatile (NV) memory is usually divided into two parts, one is static NV and the other is dynamic NV; static NV is uniformly configured by each mobile terminal, and there is no difference. This is integrated into the hardware terminal with the software version upgrade and is not easily lost. Dynamic NV is calibrated for production. Due to differences in motherboard components, it is necessary to calibrate the hardware path according to each hardware feature and store the corresponding path information in Qualcomm non-volatile read-only memory (NVROM).

[0097] For example, please refer to Fig.10 , is a schematic diagram of the relationship between memories in a terminal device provided by an embodiment of the present application, such as Fig.10 As shown, the RF calibration parameters and production parameters are stored in the NV working area of ​​Qualcomm NVROM, that is, the working area memory mentioned above, and the static NV files and dynamic NV list files are stored in the NV backup area through preset tools, that is, the backup area memory mentioned above; the data in the NV working area of ​​Qualcomm NVROM can be backed up to the NV backup area, and the data in the NV backup area can be restored to the NV working area of ​​Qualcomm NVROM.

[0098] In this embodiment, the terminal device first detects the current target state, where the target state is used to indicate the working mode or usage scenario of the terminal device, where the working mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario. Then, the devices in the RF component of the terminal device are controlled to operate according to the target RF calibration parameters, where the target RF calibration parameters correspond to the target state. Furthermore, the actual RF power consumption of the terminal device is obtained, and the target RF calibration parameters are updated according to the difference between the actual RF power consumption and the preset expected RF power consumption. Finally, the target RF calibration parameters stored in the backup area memory are synchronously updated. The terminal device adjusts the RF calibration parameters according to the detected target state (such as working mode and usage scenario). By distinguishing different working modes (such as power saving mode and normal power mode) and usage scenarios (such as standby state or non-standby state), the RF power consumption of the device can be managed more accurately, thereby optimizing energy consumption without affecting the performance of the device; by obtaining the current actual RF power consumption in real time and comparing it with the preset expected RF power consumption, the target RF calibration parameters can be dynamically updated. This feedback mechanism helps the device maintain the best RF performance and power consumption balance in different usage environments; the updated RF calibration parameters not only help to improve the working efficiency of the RF components, but also extend the battery life by reducing unnecessary power consumption. In power saving mode, the device can meet the communication needs with the lowest energy consumption; in normal power mode, the device can give full play to the RF performance. In addition, synchronizing the updated RF calibration parameters to the backup area memory can ensure that the device can quickly return to the best working state after restarting or restoring factory settings, reducing performance degradation or energy efficiency waste caused by lost configuration; this adaptive RF calibration mechanism can adjust the working state of the device according to different scenarios and needs, reduce users' concerns about battery life, and provide more stable communication quality.

[0099] In summary, the method for processing radio frequency power consumption in the embodiment of the present application can better adapt to the needs of terminal devices in different working modes and usage scenarios, not only improving radio frequency performance, but also effectively reducing energy consumption, which has a positive effect on extending the service life of the device. It can also be achieved that lower calibration voltages and powers can be called at each power point, achieving a good power consumption experience in the power saving mode.

[0100] It should be noted that in order to pursue the actual user experience, the current terminal equipment will optimize the RF performance parameters as much as possible, so that users can get a better experience regardless of the strong and weak field scenarios. Therefore, in the actual debugging process, the RF performance priority will be placed in the first place. The processing method of RF power consumption in the embodiment of the present application is based on targeted RF power consumption optimization in various scenarios of the mobile terminal, and multiple sets of calibration parameters need to be imported. For example, two sets of calibration parameters are taken as an example, one set is configured according to normal RF debugging, and the other set is for the purpose of optimizing power consumption, reducing the calibration voltage, so as to achieve the effect of reducing power consumption. Among them, by using two sets of corresponding calibration parameters, it can be defined to select corresponding RF calibration parameters in two scenarios to optimize RF power consumption, such as in the normal power mode scenario, the power calibration bias and voltage with better RF performance optimization are called; in the power saving mode scenario, the power calibration bias and voltage that the RF performance meets the communication protocol are called. In addition, the processing method of RF power consumption can also be extended to more scene categories, such as scene use without mobile network demand or long battery life mode scene, etc., which is not limited in this application.

[0101] It should be understood that, although the steps in the above-mentioned flowcharts are displayed in sequence according to the indication of the arrows, these steps are not necessarily executed in sequence according to the order indicated by the arrows. Unless there is a clear explanation in this article, the execution of these steps is not strictly limited in order, and these steps can be executed in other orders. Moreover, at least a part of the steps in the above-mentioned flowcharts may include multiple sub-steps or multiple stages, and these sub-steps or stages are not necessarily executed at the same time, but can be executed at different times, and the execution order of these sub-steps or stages is not necessarily to be carried out in sequence, but can be executed in turn or alternately with other steps or at least a part of the sub-steps or stages of other steps.

[0102] Based on the foregoing embodiments, an embodiment of the present application provides a device for processing radio frequency power consumption, which includes the modules included and the units included in the modules, and can be implemented by a processor; of course, it can also be implemented by a specific logic circuit; in the implementation process, the processor can be a central processing unit, a microprocessor, a digital signal processor or a field programmable gate array, etc.

[0103] Fig.11 A structural schematic diagram of a device for processing radio frequency power consumption provided by an embodiment of the present application is shown as follows: Fig.11 As shown, the RF power consumption processing device 1100 includes a detection module 1101 and a control module 1102, wherein:

[0104] A detection module 1101 is used to detect the current target state of the terminal device, where the target state is used to indicate the working mode or usage scenario of the terminal device, where the working mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario; a control module 1102 is used to control the devices in the RF component of the terminal device to operate according to target RF calibration parameters, where the target RF calibration parameters correspond to the target state, and a mapping relationship between a preset state and a preset RF calibration parameter is stored in the terminal device, where the target state is one of the preset states.

[0105] In some embodiments, the control module 1102 is specifically used to: determine the target RF calibration parameters according to the target state and the mapping relationship; when the current RF calibration parameters of the devices in the RF component are different from the target RF calibration parameters, call the target RF calibration parameters to configure the devices in the RF component; when the current RF calibration parameters of the devices in the RF component are the same as the target RF calibration parameters, keep the devices in the RF component running according to the current RF calibration parameters.

[0106] In some embodiments, when the target state indicates that the terminal device is in the power saving mode or the standby scenario, the target radio frequency calibration parameter is determined according to a minimum radio frequency transmission standard specified in a preset communication protocol.

[0107] In some embodiments, the target RF calibration parameters include transmit power and voltage.

[0108] In some embodiments, when the target state indicates that the terminal device is in the normal power mode or the non-standby scenario, the target state corresponds to multiple sets of radio frequency calibration parameters;

[0109] The device further includes: an acquisition module and a determination module. The acquisition module is used to acquire the current usage requirement of the terminal device, wherein the current usage requirement includes at least one of a network usage requirement and a battery life usage requirement; and the determination module is used to determine the target radio frequency calibration parameter from the multiple groups of radio frequency calibration parameters corresponding to the target state according to the current usage requirement, wherein the target radio frequency calibration parameter corresponds to the current usage requirement.

[0110] In some embodiments, the determination module is specifically used to: when the current usage requirement is the network usage requirement, determine the target RF calibration parameter to be the RF calibration parameter among the multiple sets of RF calibration parameters whose transmission power is greater than a preset power threshold; when the current usage requirement is the battery life usage requirement, determine the target RF calibration parameter to be the RF calibration parameter among the multiple sets of RF calibration parameters whose transmission power is less than or equal to the preset power threshold.

[0111] In some embodiments, the apparatus further includes: an update module. The acquisition module is further used to acquire the actual current RF power consumption of the terminal device; and the update module is used to update the target RF calibration parameter according to the difference between the actual RF power consumption and the preset expected RF power consumption, wherein the expected RF power consumption is determined according to the target RF calibration parameter and the attribute information of the device in the RF component in the terminal device, wherein the attribute information is used to indicate at least one of the gain, noise coefficient and bandwidth of the device in the RF component.

[0112] In some embodiments, the terminal device includes a working area memory and a backup area memory, the working area memory is used to store the target radio frequency calibration parameters; the update module is also used to synchronously update the target radio frequency calibration parameters stored in the backup area memory.

[0113] The description of the above device embodiment is similar to the description of the above method embodiment, and has similar beneficial effects as the method embodiment. For technical details not disclosed in the device embodiment of the present application, please refer to the description of the method embodiment of the present application for understanding.

[0114] It should be noted that in the embodiments of this application Fig.11 The division of modules in the RF power consumption processing device shown is schematic and is only a logical function division. There may be other division methods in actual implementation. In addition, each functional unit in each embodiment of the present application may be integrated into a processing unit, or may exist physically separately, or two or more units may be integrated into one unit. The above-mentioned integrated unit may be implemented in the form of hardware or in the form of a software functional unit. It may also be implemented in the form of a combination of software and hardware.

[0115] It should be noted that in the embodiment of the present application, if the above method is implemented in the form of a software function module and sold or used as an independent product, it can also be stored in a computer-readable storage medium. Based on such an understanding, the technical solution of the embodiment of the present application can be essentially or partly embodied in the form of a software product that contributes to the relevant technology. The computer software product is stored in a storage medium, including several instructions to enable an electronic device to execute all or part of the methods described in each embodiment of the present application. The aforementioned storage medium includes: various media that can store program codes, such as a U disk, a mobile hard disk, a read-only memory (ROM), a magnetic disk or an optical disk. In this way, the embodiment of the present application is not limited to any specific combination of hardware and software.

[0116] The embodiment of the present application provides a computer device, which may be a server, and its internal structure diagram may be as follows: Fig.12 As shown. The computer device includes a processor, a memory and a network interface connected through a system bus. Among them, the processor of the computer device is used to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system, a computer program and a database. The internal memory provides an environment for the operation of the operating system and the computer program in the non-volatile storage medium. The database of the computer device is used to store data. The network interface of the computer device is used to communicate with an external terminal through a network connection. When the computer program is executed by the processor, the above method is implemented.

[0117] An embodiment of the present application provides a computer-readable storage medium on which a computer program is stored. When the computer program is executed by a processor, the steps in the method provided in the above embodiment are implemented.

[0118] An embodiment of the present application provides a computer program product including instructions, which, when executed on a computer, enables the computer to execute the steps of the method provided in the above method embodiment.

[0119] Those skilled in the art will understand that Fig.12 The structure shown in the figure is only a block diagram of a part of the structure related to the solution of the present application, and does not constitute a limitation on the computer device to which the solution of the present application is applied. The specific computer device may include more or fewer components than those shown in the figure, or combine certain components, or have a different arrangement of components.

[0120] In one embodiment, the RF power consumption processing device provided in the present application can be implemented in the form of a computer program, and the computer program can be used in the following manner: Fig.12The computer device shown in the figure can be run. The memory of the computer device can store various program modules constituting the above-mentioned device. The computer program composed of various program modules enables the processor to execute the steps of the method of each embodiment of the present application described in this specification.

[0121] It should be noted here that the description of the above storage medium and device embodiments is similar to the description of the above method embodiments, and has similar beneficial effects as the method embodiments. For technical details not disclosed in the storage medium, storage medium and device embodiments of this application, please refer to the description of the method embodiments of this application for understanding.

[0122] It should be understood that "one embodiment" or "an embodiment" or "some embodiments" mentioned throughout the specification means that specific features, structures or characteristics related to the embodiment are included in at least one embodiment of the present application. Therefore, "in one embodiment" or "in one embodiment" or "in some embodiments" appearing throughout the specification may not necessarily refer to the same embodiment. In addition, these specific features, structures or characteristics can be combined in one or more embodiments in any suitable manner. It should be understood that in various embodiments of the present application, the size of the sequence number of the above-mentioned processes does not mean the order of execution, and the execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiment of the present application. The above-mentioned sequence numbers of the embodiments of the present application are only for description and do not represent the advantages and disadvantages of the embodiments. The above description of each embodiment tends to emphasize the differences between the various embodiments, and the same or similar aspects can be referenced to each other. For the sake of brevity, this article will not repeat them.

[0123] The term "and / or" in this article is only a description of the association relationship of associated objects, indicating that there may be three relationships. For example, object A and / or object B can represent three situations: object A exists alone, object A and object B exist at the same time, and object B exists alone.

[0124] It should be noted that, in this article, the terms "include", "comprises" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the sentence "comprises a ..." does not exclude the existence of other identical elements in the process, method, article or device including the element.

[0125] In the several embodiments provided in the present application, it should be understood that the disclosed devices and methods can be implemented in other ways. The embodiments described above are only schematic. For example, the division of the modules is only a logical function division. There may be other division methods in actual implementation, such as: multiple modules 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, direct coupling, or communication connection between the components shown or discussed can be through some interfaces, and the indirect coupling or communication connection of devices or modules can be electrical, mechanical or other forms.

[0126] The modules described above as separate components may or may not be physically separated, and the components displayed as modules may or may not be physical modules; they may be located in one place or distributed on multiple network units; some or all of the modules may be selected according to actual needs to achieve the purpose of the present embodiment.

[0127] In addition, all functional modules in the embodiments of the present application may be integrated into one processing unit, or each module may be a separate unit, or two or more modules may be integrated into one unit; the above-mentioned integrated modules may be implemented in the form of hardware or in the form of hardware plus software functional units.

[0128] A person skilled in the art can understand that all or part of the steps of implementing the above method embodiment can be completed by hardware related to program instructions, and the aforementioned program can be stored in a computer-readable storage medium. When the program is executed, it executes the steps of the above method embodiment; and the aforementioned storage medium includes: mobile storage devices, read-only memories (ROM), magnetic disks or optical disks, etc., various media that can store program codes.

[0129] Alternatively, if the above-mentioned integrated unit of the present application is implemented in the form of a software function module and sold or used as an independent product, it can also be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the embodiment of the present application can essentially or in other words, the part that contributes to the relevant technology can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including a number of instructions for enabling an electronic device to execute all or part of the methods described in each embodiment of the present application. The aforementioned storage medium includes: various media that can store program codes, such as mobile storage devices, ROMs, magnetic disks, or optical disks.

[0130] The methods disclosed in several method embodiments provided in this application can be arbitrarily combined without conflict to obtain new method embodiments.

[0131] The features disclosed in several product embodiments provided in this application can be arbitrarily combined without conflict to obtain new product embodiments.

[0132] The features disclosed in several method or device embodiments provided in this application can be arbitrarily combined without conflict to obtain new method embodiments or device embodiments.

[0133] The above is only an implementation method of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art who is familiar with the present technical field can easily think of changes or substitutions within the technical scope disclosed in the present application, which should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be based on the protection scope of the claims.

Claims

1. A method for processing radio frequency power consumption, characterized in that: Applied to a terminal device, the method comprises: Detecting a current target state of the terminal device, where the target state is used to indicate an operating mode or a usage scenario of the terminal device, where the operating mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario; The devices in the RF component of the terminal device are controlled to operate according to the target RF calibration parameters, the target RF calibration parameters correspond to the target state, and the terminal device stores a mapping relationship between the preset state and the preset RF calibration parameters, and the target state is one of the preset states.

2. The method according to claim 1, characterized in that The controlling the device in the radio frequency component of the terminal device to operate according to the target radio frequency calibration parameters includes: Determining the target radio frequency calibration parameters according to the target state and the mapping relationship; When the current radio frequency calibration parameters of the device in the radio frequency component are different from the target radio frequency calibration parameters, calling the target radio frequency calibration parameters to configure the device in the radio frequency component; When the current radio frequency calibration parameters of the components in the radio frequency component are the same as the target radio frequency calibration parameters, the components in the radio frequency component are kept running according to the current radio frequency calibration parameters.

3. The method according to claim 1 or 2, characterized in that: In a case where the target state indicates that the terminal device is in the power saving mode or the standby scenario, the target radio frequency calibration parameter is determined according to a minimum radio frequency transmission standard specified in a preset communication protocol.

4. The method according to claim 3, characterized in that: The target radio frequency calibration parameters include transmit power and voltage.

5. The method according to claim 4, characterized in that When the target state indicates that the terminal device is in the normal power mode or the non-standby scenario, the target state corresponds to multiple sets of radio frequency calibration parameters; Before controlling the device in the radio frequency component of the terminal device to operate according to the target radio frequency calibration parameters, the method further includes: Acquire a current usage requirement of the terminal device, where the current usage requirement includes at least one of a network usage requirement and a battery life usage requirement; According to the current usage requirement, the target radio frequency calibration parameter is determined from the multiple groups of radio frequency calibration parameters corresponding to the target state, and the target radio frequency calibration parameter corresponds to the current usage requirement.

6. The method according to claim 5, characterized in that The determining, according to the current use requirement, the target radio frequency calibration parameter from the multiple groups of radio frequency calibration parameters corresponding to the target state includes: In a case where the current usage requirement is the network usage requirement, determining the target radio frequency calibration parameter to be a radio frequency calibration parameter having a transmission power greater than a preset power threshold among the multiple sets of radio frequency calibration parameters; In a case where the current usage requirement is the battery life usage requirement, the target radio frequency calibration parameter is determined to be a radio frequency calibration parameter having a transmission power less than or equal to the preset power threshold among the multiple groups of radio frequency calibration parameters.

7. The method according to claim 1, characterized in that After the device in the radio frequency component of the terminal device is controlled to operate according to the target radio frequency calibration parameters, the method further includes: Obtaining the actual current radio frequency power consumption of the terminal device; The target RF calibration parameters are updated according to the difference between the actual RF power consumption and the preset expected RF power consumption, wherein the expected RF power consumption is determined according to the target RF calibration parameters and the attribute information of the devices in the RF component in the terminal device, and the attribute information is used to indicate at least one of the gain, noise figure and bandwidth of the devices in the RF component.

8. The method according to claim 7, characterized in that The terminal device comprises a working area memory and a backup area memory, wherein the working area memory is used to store the target radio frequency calibration parameters; After updating the target radio frequency calibration parameters, the method further includes: The target radio frequency calibration parameters stored in the backup area memory are synchronously updated.

9. A device for processing radio frequency power consumption, characterized in that: Applied to a terminal device, the device comprises: A detection module, used to detect the current target state of the terminal device, the target state is used to indicate the working mode or usage scenario of the terminal device, the working mode includes a power saving mode or a normal power mode, and the usage scenario includes a standby scenario or a non-standby scenario; A control module is used to control the devices in the RF component of the terminal device to operate according to the target RF calibration parameters, the target RF calibration parameters correspond to the target state, the terminal device stores a mapping relationship between the preset state and the preset RF calibration parameters, and the target state is one of the preset states.

10. A computer device comprising a memory and a processor, wherein the memory stores a computer program that can be run on the processor, characterized in that: When the processor executes the program, the steps of the method according to any one of claims 1 to 8 are implemented.

11. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the method according to any one of claims 1 to 8 is implemented.