Information display method and device, electronic equipment and readable storage medium

By displaying the attitude adjustment information of the target satellite on the electronic device and guiding users to adjust the equipment angle to align the satellite, the problem of low stability of satellite communication is solved and the connection success rate and stability is improved.

CN120034241APending Publication Date: 2025-05-23VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
CN202510190295.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-20
Publication Date
2025-05-23

AI Technical Summary

Technical Problem

The stability of satellite communications is low, resulting in a low connection success rate.

Method used

In the case of searching or connecting to the target satellite, determine attitude adjustment information, including pitch angle and azimuth angle, by displaying this information, instructing the user to adjust the angle of the electronic device to ensure that the antenna is accurately aligned with the target satellite.

Benefits of technology

By accurately aligning the target satellite, the connection success rate and stability with the target satellite are improved, and the stability of satellite communication is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an information display method and device, electronic equipment and a readable storage medium, and belongs to the technical field of information display. The method comprises the following steps: determining attitude adjustment information under the condition that a target satellite is searched or connected to the target satellite; the attitude adjustment information is used for indicating a user to adjust the angle of the electronic equipment relative to the target satellite, and the angle comprises at least one of a pitch angle and an azimuth angle; and displaying the posture adjustment information.
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Description

Technical Field

[0001] The present application belongs to the field of information display technology, and specifically relates to an information display method, device, electronic device and readable storage medium. Background Art

[0002] The essence of communication is the transmission of information, which is an indispensable basic function in modern society. However, in extreme environments, such as remote mountainous areas, deserts, oceans or disaster sites, traditional mobile communication networks are often unable to cover, resulting in users being unable to communicate with the outside world. In order to solve this problem, satellite communication technology came into being. Satellite communication uses satellites in the Earth's orbit as relay stations, which can cover the entire world, including areas that traditional communication networks cannot reach, providing users with the possibility of staying in touch with the outside world in extreme environments.

[0003] Currently, the stability of satellite communications is still relatively low. Summary of the invention

[0004] The purpose of the embodiments of the present application is to provide an information display method, device, electronic device and readable storage medium, which can solve the problem of low stability of satellite communications.

[0005] In a first aspect, an embodiment of the present application provides an information display method, the method comprising:

[0006] In the case of searching for or connecting to the target satellite, determining attitude adjustment information; the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: a pitch angle and an azimuth angle;

[0007] The posture adjustment information is displayed.

[0008] In a second aspect, an embodiment of the present application provides an information display device, the device comprising:

[0009] A determination module, configured to determine attitude adjustment information when a target satellite is searched or connected; the attitude adjustment information is used to instruct a user to adjust an angle of the electronic device relative to the target satellite, the angle comprising at least one of the following: a pitch angle and an azimuth angle;

[0010] A display module is used to display the posture adjustment information.

[0011] In a third aspect, an embodiment of the present application provides an electronic device, which includes a processor and a memory, wherein the memory stores programs or instructions that can be run on the processor, and when the program or instructions are executed by the processor, the steps of the method described in the first aspect are implemented.

[0012] In a fourth aspect, an embodiment of the present application provides a readable storage medium, on which a program or instruction is stored, and when the program or instruction is executed by a processor, the steps of the method described in the first aspect are implemented.

[0013] In a fifth aspect, an embodiment of the present application provides a chip, comprising a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is used to run a program or instruction to implement the method described in the first aspect.

[0014] In a sixth aspect, an embodiment of the present application provides a computer program product, which is stored in a storage medium and is executed by at least one processor to implement the method described in the first aspect.

[0015] In an embodiment of the present application, by determining attitude adjustment information when searching for or connecting to a target satellite, the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: pitch angle and azimuth angle. By displaying the attitude adjustment information, the user can refer to the angle of the electronic device to ensure that the antenna of the electronic device can be accurately aimed at the target satellite, thereby improving the connection success rate and stability with the target satellite and improving the stability of satellite communications. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a flow chart of an information display method provided by an embodiment of the present application;

[0017] Figure 2 is a schematic diagram of a calibration interface provided in an embodiment of the present application;

[0018] Figure 3 is a schematic diagram of a satellite search interface provided in an embodiment of the present application;

[0019] Figure 4 is a schematic diagram of a deviation angle provided in an embodiment of the present application;

[0020] Figure 5 is a schematic diagram of first posture adjustment information provided by an embodiment of the present application;

[0021] Figure 6 is a schematic diagram of second posture adjustment information provided by an embodiment of the present application;

[0022] Figure 7 is a schematic diagram of posture adjustment information provided by an embodiment of the present application;

[0023] Figure 8 is a schematic diagram of a satellite communication interface provided in an embodiment of the present application;

[0024] Fig. 9 is a schematic diagram of a reconnection interface provided in an embodiment of the present application;

[0025] Fig.10 is a schematic diagram of another satellite communication interface provided in an embodiment of the present application;

[0026] Fig.11 is a structural diagram of an information display device provided in an embodiment of the present application;

[0027] Fig.12 It is one of the hardware structure diagrams of the electronic device according to the embodiment of the present application;

[0028] Fig.13 This is the second schematic diagram of the hardware structure of the electronic device according to the embodiment of the present application. DETAILED DESCRIPTION

[0029] The following will be combined with the drawings of the embodiments of the present application to clearly describe the technical solutions of the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present application belong to the scope of protection of this application.

[0030] The terms "first", "second", etc. in the specification and claims of this application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the data used in this way can be interchangeable under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described here, and the objects distinguished by "first", "second", etc. are generally of one type, and the number of objects is not limited. For example, the first object can be one or more. In addition, "and / or" in the specification and claims represents at least one of the connected objects, and the character " / " generally indicates that the objects associated with each other are in an "or" relationship.

[0031] The information display method provided in the embodiment of the present application can be applied to at least the following application scenarios, which are described below.

[0032] In modern society, mobile phone signals have become an indispensable means of communication in people's daily lives. However, in some extreme environments, such as remote mountainous areas, oceans, deserts, polar regions, etc., the coverage of mobile phone signals is limited or even completely unavailable. In these cases, satellite communications have become an important alternative.

[0033] Satellite communications can achieve global signal coverage. No matter where you are on the earth, as long as there is a satellite signal receiving device, you can communicate. Satellite communications are not affected by factors such as terrain and weather, and can maintain stable communication capabilities in extreme environments. Satellite communications can be used not only for voice calls, but also for data transmission, Internet access, navigation and positioning, and many other purposes.

[0034] Satellite phones can provide reliable communication services in remote mountainous areas, deserts, oceans and other areas where mobile phone signals cannot reach. In emergency situations such as natural disasters and accidents, satellite communications can provide rescue workers with timely communication methods and help coordinate rescue operations. In scientific expeditions conducted in extreme environments such as polar regions and deep seas, satellite communications are an important means for scientists to keep in touch with the outside world.

[0035] Satellite communications rely on direct signal transmission to and from satellites, so users need to be in an open, unobstructed area outdoors. Here are some specific requirements:

[0036] Obstacles such as buildings, trees, and hills can block satellite signals, so users should try to choose an open area to avoid any possible obstructions. Electromagnetic interference sources may also affect the reception and transmission of satellite signals, so users should try to stay away from these interference sources. In order to ensure the success rate and stability of satellite connection, users need to maintain a specific holding posture when using satellite communication services.

[0037] In response to the problems arising in the related art, the embodiments of the present application provide an information display method, device, electronic device and readable storage medium, which can solve the problem of low connection success rate in satellite communications in the related art.

[0038] The information display method provided by the embodiment of the present application is described in detail below through specific embodiments and their application scenarios in conjunction with the accompanying drawings.

[0039] Figure 1 A flowchart of an information display method provided in an embodiment of the present application.

[0040] like Figure 1 As shown, the information display method may include steps 110 to 120, and the method is applied to an information display device, as shown below:

[0041] Step 110, when the target satellite is searched or connected, determine attitude adjustment information; the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: pitch angle, azimuth angle.

[0042] Target satellite: refers to the specific satellite that the user wants to communicate with through the electronic device. Usually, there are multiple satellites in orbit in satellite communication, and the user needs to select one of them as the communication target.

[0043] Attitude adjustment information: refers to the angle adjustment information of the electronic device relative to the target satellite, usually including the pitch angle and azimuth angle. The pitch angle refers to the angle between the electronic device and the horizontal plane, and the azimuth angle refers to the horizontal angle of the electronic device relative to the true north direction.

[0044] Pitch angle: The tilt angle of an electronic device relative to the horizontal plane. When the pitch angle is positive, the electronic device is tilted upward; when it is negative, the electronic device is tilted downward.

[0045] Azimuth: The horizontal rotation angle of an electronic device relative to the true north. The azimuth usually takes true north as 0 degrees and increases in a clockwise direction.

[0046] When the electronic device searches for or connects to the target satellite, it will detect the current attitude of the electronic device through built-in sensors such as gyroscopes, accelerometers or magnetometers. Then, the electronic device will calculate the difference between the current attitude and the attitude required by the target satellite, and generate attitude adjustment information to prompt the user how to adjust the angle of the electronic device to align with the satellite.

[0047] By displaying attitude adjustment information, users can refer to it to adjust the angle of the electronic device to ensure that the antenna of the electronic device can be accurately aimed at the target satellite, thereby improving the signal reception quality, ensuring the stability and reliability of communication, and improving the stability of satellite communications.

[0048] In a possible embodiment, before step 110, the following steps may also be included:

[0049] When the accuracy value of the magnetic sensor of the electronic device is greater than a preset accuracy value, searching for the target satellite;

[0050] When the accuracy value of the magnetic sensor of the electronic device is less than or equal to the preset accuracy value, a magnetic induction calibration interface is displayed; the magnetic induction calibration interface is used to indicate the calibration of the magnetic induction accuracy value of the electronic device.

[0051] Magnetic sensor: A sensor used to measure the strength of a magnetic field, typically used to detect the direction and azimuth of an electronic device. In electronic devices, magnetic sensors are often used in conjunction with sensors such as gyroscopes and accelerometers to determine the attitude of the electronic device.

[0052] Magnetic sensor accuracy value: refers to the accuracy and reliability of the magnetic sensor measurement results. The higher the accuracy value, the more accurate the magnetic field data measured by the sensor; the lower the accuracy value, the greater the error in the measurement result.

[0053] Preset accuracy value: refers to the threshold value of magnetic sensor accuracy set by the electronic device. If the current magnetic sensor accuracy value is greater than the threshold value, the sensor data is considered reliable; if it is less than the threshold value, the sensor data is considered unreliable and needs to be calibrated.

[0054] Magnetic induction calibration interface: refers to a graphical user interface displayed on an electronic device for calibrating a magnetic sensor, which usually includes calibration prompts, operation steps, and progress indicators.

[0055] Magnetic induction accuracy calibration: refers to readjusting the measurement parameters of the magnetic sensor through specific operations to improve its measurement accuracy.

[0056] The electronic device reads the data of the magnetic sensor in real time and calculates its accuracy value. The calculation of the accuracy value is usually based on the stability of the sensor data, the noise level, and the consistency with other sensor data. By judging the current magnetic sensor accuracy value, the electronic device can determine whether the sensor data is reliable and decide whether to perform subsequent satellite searches or sensor calibration.

[0057] If the current magnetic sensor accuracy value is higher than the preset accuracy value, it means that the sensor data is reliable, and the electronic device can directly use the magnetic sensor data to calculate the azimuth and start searching for the target satellite. Ensure that the satellite search is performed when the sensor data is reliable, and improve the accuracy and efficiency of the search.

[0058] If the current magnetic sensor accuracy value is lower than the preset accuracy value, it means that the sensor data is unreliable, and the electronic device will display the magnetic induction calibration interface, prompting the user to recalibrate the magnetic sensor through specific operations. During the calibration process, the electronic device will record the changes in sensor data and adjust its internal parameters to improve accuracy. By calibrating the magnetic sensor, the accuracy of its measurement data is ensured, thereby improving the reliability of subsequent satellite searches and attitude adjustments.

[0059] When the current magnetic sensor accuracy value is less than the preset accuracy value, a magnetic induction calibration interface is displayed, for example, the following prompt message is displayed: "The magnetic sensor accuracy is insufficient, please calibrate to avoid magnetic field interference"; "The current magnetic field sensing capability is weak, it is recommended to recalibrate the device."

[0060] For example, the following prompt information is displayed: "Please rotate the device horizontally 360 degrees to ensure that the electronic device can sense magnetic fields in all directions"; "Please draw an "8" shape in the air with the electronic device to reset the magnetic induction". After the user completes the calibration operation, the electronic device re-acquires the accuracy value of the magnetic sensor.

[0061] If the calibration is successful, the accuracy value is restored to the preset accuracy value or above, and the following prompt message is displayed: "Calibration successful, the electronic device has resumed normal use." If the calibration fails, the accuracy value is still less than or equal to the preset accuracy value, and the following prompt message is displayed: "Calibration failed, please try again."

[0062] like Figure 2 As shown in Figure 1, the electronic device detects the user's tilting motion through the built-in accelerometer and gyroscope, and maps the tilt angle to the motion trajectory of the ball. The user controls the position of the ball on the ring by tilting the device, making it roll along the ring. Through this interactive method, the user can intuitively feel the tilting motion of the device and complete the magnetic induction reset operation.

[0063] like Figure 2 As shown in Figure 2, when the ball rolls along the ring, the position of the ball is detected in real time, and the color of the ring changes dynamically according to the rolling progress. For example, the color of the ring can gradually change from gray to green to indicate the progress of the operation. Through the color change, the user can clearly understand the progress of the current operation, which enhances the intuitiveness and fun of the interaction.

[0064] like Figure 2 c, after the ball rolls one circle, it is determined that the magnetic induction reset has been completed and the satellite search begins: When the ball rolls one circle, it will be determined that the user has completed the magnetic induction reset operation. At this time, the electronic device will start the satellite search function and try to establish a connection with the target satellite. Ensure that the electronic device can accurately align with the satellite after the magnetic sensor is calibrated, thereby improving the success rate and stability of the satellite connection.

[0065] Through the dynamic ball rolling design, users can intuitively feel the tilting action of the electronic device, making the operation process more interesting and intuitive. Users do not need complicated operating instructions, they can complete the magnetic induction reset by simply tilting the device, which lowers the operation threshold. The dynamic change of the ring color provides users with real-time operation progress feedback to help users understand the current status. The color change design makes the interface more vivid and enhances user participation and satisfaction.

[0066] By completing the magnetic induction reset, the magnetic sensor data of the electronic device is ensured to be accurate, thereby improving the accuracy of satellite alignment. After the calibration is completed, the satellite search is immediately started to ensure that the electronic device attempts to connect in the best condition, thereby improving the connection success rate.

[0067] By guiding the user to tilt the device to make the ball roll along the ring, combined with the dynamic feedback of the ring's color change, the magnetic induction reset operation can be completed intuitively and efficiently. This design not only enhances the user's interactive experience, but also simplifies the operation process, ensuring that the device can accurately search and connect to satellites after calibration.

[0068] By evaluating the accuracy of the magnetic sensor in real time, the electronic device can avoid using unreliable sensor data, thereby improving the accuracy of subsequent operations. When the sensor data is unreliable, the electronic device can take timely measures to avoid communication failure or performance degradation caused by sensor errors.

[0069] When the sensor data is reliable, the electronic device can quickly and accurately calculate the azimuth, thereby efficiently searching for the target satellite. Users do not need to perform additional calibration operations and can directly enter the satellite search step, simplifying the operation process. Through the calibration operation, the electronic device can eliminate sensor errors and ensure the accuracy of subsequent attitude adjustments and satellite searches. The magnetic induction calibration interface provides clear prompts and operation steps to help users quickly complete calibration and improve user experience.

[0070] By judging the current magnetic sensor accuracy value and deciding whether to perform satellite search or sensor calibration based on the result, the reliability of satellite communication and user experience can be effectively improved, ensuring that electronic devices can perform satellite search when sensor data is reliable, and improving accuracy through calibration operations when sensor data is unreliable, thereby providing a solid foundation for subsequent attitude adjustment and communication functions.

[0071] In a possible embodiment, when the target satellite is not found, a re-search control and search prompt information are displayed on the satellite communication interface;

[0072] The search prompt information is used to prompt the user to move to an open outdoor area.

[0073] Re-search control: An interactive element that allows the user to restart the satellite search process by clicking or touching the Re-search control.

[0074] Search prompt information: refers to the text or graphic information displayed in the satellite communication interface, which is used to provide users with relevant suggestions or guidance for searching satellites.

[0075] Open outdoor areas: areas without buildings, trees, or other obstacles that block the view are generally better suited for satellite communications because the signal can be transmitted more directly to the satellite.

[0076] When the electronic device attempts to search for a target satellite but fails, it detects the search failure and displays a re-search control and a search prompt message in the satellite communication interface. The re-search control allows the user to manually trigger a re-search, while the search prompt message provides suggestions to the user, such as moving to an open outdoor area to improve signal reception conditions.

[0077] By providing re-search controls and search prompt information, users can quickly understand the reasons for search failure and take corresponding measures based on the prompts, such as moving location, thereby improving the success rate of subsequent searches.

[0078] The search prompt information will generate corresponding suggestions based on the reason for the search failure. Prompting users to move to an open outdoor area is to reduce signal obstruction and ensure that electronic devices can directly receive satellite signals. By prompting users to move to an open outdoor area, signal reception conditions can be effectively improved and the success rate of searching for target satellites can be increased.

[0079] like Figure 3 As shown in a, the satellite network signal strength is displayed to remind users to stay in an open area outdoors as much as possible to avoid foreign objects blocking the signal in their line of sight. During the process of searching for satellites, the electronic device will detect and display the satellite network signal strength in real time. At the same time, the user will be reminded through text or icons to stay in an open area outdoors as much as possible and avoid foreign objects blocking the signal in their line of sight. By displaying the signal strength in real time and providing environmental suggestions, users can understand the current signal reception conditions and adjust the device position according to the prompts, thereby improving the search success rate.

[0080] During the satellite search process, the electronic device will display the search progress through icons and animation effects. For example, a rotating radar icon can be displayed to indicate that the electronic device is searching for satellites; or a gradually filling progress bar can be displayed to indicate the search progress. Users can intuitively understand the status of the search process and enhance the interactive experience.

[0081] When the electronic device successfully searches for the target satellite, it will detect the search success status and guide the user to perform satellite alignment operations. For example, it will display attitude adjustment information to prompt the user to adjust the pitch angle and azimuth angle of the device. By guiding the user to perform satellite alignment, it ensures that the device antenna is accurately aligned with the satellite, thereby improving the communication quality.

[0082] If the search fails, you can click the "Search again" control to search again. When the electronic device fails to successfully search for the target satellite, it will detect the search failure state and display the "Search again" control. The user can restart the search process by clicking the "Search again" control. The user can manually trigger the re-search operation to improve the flexibility and success rate of the search.

[0083] Real-time display of signal strength and environmental suggestions helps users understand the current status and take corresponding measures. By prompting users to adjust the device position, signal obstruction is reduced and the search success rate is improved. Through icons and dynamic effects, users can intuitively understand the status of the search process and enhance the interactive experience. Dynamic effects make the interface more vivid and enhance user participation.

[0084] Improve communication quality by guiding users to align satellites and ensuring that the device antenna is accurately aligned with the satellite. Provide clear attitude adjustment information to help users quickly complete alignment operations. Users can manually trigger re-search operations as needed, improving operational flexibility and control. By providing the option to re-search, users can quickly resolve issues and avoid confusion caused by search failures.

[0085] Users can manually trigger a re-search as needed, without waiting for automatic retry, which improves the flexibility and control of operations. After a search fails, users can quickly start a new search process through the re-search control to reduce waiting time. Search prompts provide users with specific suggestions to help them understand the reasons for search failure and take effective measures.

[0086] By prompting users to move to an open outdoor area, signal obstruction can be reduced, satellite signal reception quality can be improved, and search success rates can be increased. By providing clear prompt information, users can quickly resolve issues and avoid confusion or dissatisfaction caused by search failures.

[0087] In the event that the target satellite is not found, the re-search control and search prompt information are displayed on the satellite communication interface to provide users with operational flexibility and clear guidance. The re-search control allows users to manually trigger a re-search, while the search prompt information helps users improve signal reception conditions, which not only improves the search success rate, but also enhances the user experience, making satellite communication operations more convenient and efficient.

[0088] In a possible embodiment, the posture adjustment information includes at least one of the following: first posture adjustment information, second posture adjustment information;

[0089] The first attitude adjustment information is determined according to a first deviation angle of the electronic device relative to the target satellite, and the first deviation angle is determined according to a pitch angle of the electronic device relative to the target satellite;

[0090] The second attitude adjustment information is determined based on a second deviation angle of the electronic device relative to the target satellite, and the second deviation angle is determined based on an azimuth angle of the electronic device relative to the target satellite.

[0091] First deviation angle: refers to the difference between the current pitch angle of the electronic equipment and the required pitch angle of the target satellite.

[0092] Second deviation angle: refers to the difference between the current azimuth of the electronic device and the required azimuth of the target satellite.

[0093] First posture adjustment information: refers to prompt information generated according to the first deviation angle, and is used to guide the user to adjust the pitch angle of the electronic device.

[0094] Second posture adjustment information: refers to prompt information generated according to the second deviation angle, used to guide the user to adjust the azimuth angle of the electronic device.

[0095] like Figure 4 As shown in the figure, the best alignment posture includes: the ball is located at the center of the circle, and the satellite is displayed in the sector area. When the electronic device is in the best alignment posture, the ball in the user interface is located at the center of the ring, indicating that the pitch angle and azimuth angle of the device have been adjusted to the best state. At the same time, the icon of the target satellite is displayed in the sector area, indicating the relative position of the satellite. Through the position of the ball and satellite icon, the user can intuitively judge whether the device is in the best alignment posture, thereby ensuring the quality of signal reception.

[0096] The direction of the mobile phone signal is upward: the ball moves upward, and the upward movement distance A1 corresponds to the deviation angle α1:

[0097] When the electronic device signal direction is upward, it means that the pitch angle of the device needs to be adjusted downward. At this time, the ball will move upward, and the moving distance A1 is proportional to the deviation angle α1. The user needs to tilt the device downward to make the ball return to the center of the circle.

[0098] Through the movement of the ball, the user can intuitively understand the pitch angle deviation of the device and adjust the device angle according to the prompts.

[0099] The direction of the mobile phone signal is downward: the ball moves downward, and the downward movement distance A2 corresponds to the deviation angle α2:

[0100] When the electronic device signal direction is downward, it means that the pitch angle of the device needs to be adjusted upward. At this time, the ball will move downward, and the moving distance A2 is proportional to the deviation angle α2. The user needs to tilt the device upward to make the ball return to the center of the circle.

[0101] Through the movement of the ball, the user can intuitively understand the pitch angle deviation of the device and adjust the device angle according to the prompts.

[0102] The direction of the mobile phone signal is biased to the left: the satellite is displayed on the right, and the rightward shift arc B1 corresponds to the deviation angle β1:

[0103] When the electronic device's signal direction is to the left, it means that the device's azimuth needs to be adjusted to the right. At this time, the icon of the target satellite will be displayed on the right, and the rightward shift arc B1 is proportional to the deviation angle β1. The user needs to rotate the device to the right to return the satellite icon to the sector area.

[0104] Through the changes in the position of the satellite icon, users can intuitively understand the azimuth deviation of the device and adjust the device angle according to the prompts.

[0105] The direction of the mobile phone signal is biased to the right: the satellite is displayed on the left, and the leftward shift arc B1 corresponds to the deviation angle β2:

[0106] When the electronic device's signal direction is biased to the right, it means that the device's azimuth needs to be adjusted to the left. At this time, the target satellite icon will be displayed on the left, and the leftward shift arc B1 is proportional to the deviation angle β2. The user needs to rotate the device to the left to return the satellite icon to the sector area.

[0107] Through the changes in the position of the satellite icon, users can intuitively understand the azimuth deviation of the device and adjust the device angle according to the prompts.

[0108] When the electronic device is in the best alignment posture, the signal reception strength is the greatest and the communication quality is the best. Through the position of the ball and the satellite icon, the user can intuitively judge whether the device is aligned, reducing the complexity of manual adjustment. The movement distance of the ball corresponds to the deviation angle, and the user can intuitively understand the deviation of the device's posture. Through the dynamic movement of the ball, the user can adjust the device angle in real time to enhance the interactive experience.

[0109] The change in the position of the satellite icon helps users understand the deviation of the azimuth of the electronic device and adjust the device angle according to the prompt. Through the change in the position of the satellite icon, users can accurately adjust the azimuth of the device to ensure that the antenna is pointed at the satellite.

[0110] By matching the ball's moving distance and the satellite icon's position change with the device's pitch and azimuth deviation angles, users can intuitively understand the device's attitude deviation and adjust the device angle according to the prompts. This not only improves the signal reception quality, but also simplifies user operations, enhances the interactive experience, and ensures that electronic devices can quickly and accurately complete alignment operations in satellite communications.

[0111] The electronic device measures the current pitch angle through a built-in sensor and compares it with the pitch angle required by the target satellite to calculate a first deviation angle. Then, the electronic device generates first attitude adjustment information based on the first deviation angle, prompting the user how to adjust the pitch angle of the electronic device, such as "tilt up 10 degrees" or "tilt down 5 degrees".

[0112] By displaying the first attitude adjustment information, the user can accurately adjust the pitch angle of the electronic device to ensure that the antenna of the electronic device is aligned with the target satellite, thereby improving the signal reception quality.

[0113] The electronic device detects the position and attitude of the mobile phone in real time through the built-in sensor, and dynamically displays the relative position changes between the mobile phone and the satellite in the user interface. At the same time, the electronic device obtains the longitude and latitude information of the mobile phone through the GPS module and displays the last updated time. By displaying the position change, direction indication, longitude and latitude information and update time in real time, the user can fully understand the current status and position of the device and adjust the electronic device according to the prompts.

[0114] like Figure 5 As shown in a, the mobile phone signal is biased to the left, guiding the user to turn the phone to the right to move the satellite to the sector-shaped area. When the electronic device detects that the signal direction is biased to the left, it means that the azimuth of the device needs to be adjusted to the right. At this time, a direction indication will be displayed, such as a right-pointing arrow, prompting the user to turn the phone to the right to move the satellite icon to the sector-shaped area. Through the direction indication, the user can quickly adjust the azimuth of the device to ensure that the antenna is aligned with the satellite.

[0115] like Figure 5 As shown in Figure b, the mobile phone signal is biased to the right, guiding the user to turn the phone to the left to move the satellite to the sector-shaped area. When the electronic device detects that the signal direction is biased to the right, it means that the azimuth of the electronic device needs to be adjusted to the left. At this time, the user interface will display a direction indicator, prompting the user to turn the phone to the left to move the satellite icon to the sector-shaped area. Through the direction indicator, the user can quickly adjust the azimuth of the device to ensure that the antenna is aligned with the satellite.

[0116] The electronic device measures the current azimuth through a built-in sensor and compares it with the azimuth required by the target satellite to calculate a second deviation angle. Then, the electronic device generates second attitude adjustment information based on the second deviation angle, prompting the user how to adjust the azimuth of the electronic device, such as "rotate 15 degrees to the left" or "rotate 20 degrees to the right".

[0117] By displaying the second attitude adjustment information, the user can accurately adjust the azimuth of the electronic device to ensure that the antenna of the electronic device is aimed at the target satellite, thereby improving the signal reception quality.

[0118] like Figure 6 As shown in a, the direction of the mobile phone signal is upward, guiding the user to tilt the phone downward and move the ball to the center of the circle. When the electronic device detects that the signal direction is upward, it means that the pitch angle of the device needs to be adjusted downward. At this time, the user interface will display a direction indicator, prompting the user to tilt the phone downward to move the ball to the center of the circle. With the direction indicator, the user can quickly adjust the pitch angle of the device to ensure that the antenna is aligned with the satellite.

[0119] like Figure 6As shown in Figure b, the direction of the mobile phone signal is downward, guiding the user to tilt the phone upward and move the ball to the center of the circle: When the electronic device detects that the signal direction is downward, it means that the pitch angle of the device needs to be adjusted upward. At this time, the user interface will display a direction indicator, prompting the user to tilt the phone upward to move the ball to the center of the circle. Through the direction indicator, the user can quickly adjust the pitch angle of the device to ensure that the antenna is aligned with the satellite.

[0120] like Figure 7 As shown, if both the first deviation angle and the second deviation angle exist at the same time, guidance is provided according to the deviation that is recognized first. When the electronic device detects both left-right and front-back deviations at the same time, guidance is provided according to the deviation that is recognized first. For example, if the left deviation is recognized first, the user is guided to turn the phone to the right; if the downward deviation is recognized first, the user is guided to tilt the phone upward. By giving priority to the deviation that is recognized first, the user can be guided to adjust the device more efficiently and the operation complexity can be reduced.

[0121] Step 120: display the posture adjustment information.

[0122] By calculating the first deviation angle and providing specific adjustment prompts, users can accurately adjust the pitch angle of the electronic device to ensure that the antenna is aligned with the target satellite. The first attitude adjustment information prompts users in an intuitive way how to adjust the electronic device, reducing the complexity and time cost of manual adjustment. Accurate pitch angle adjustment helps maximize signal reception strength and reduce the possibility of communication interruption or signal loss.

[0123] By calculating the second deviation angle and providing specific adjustment prompts, users can accurately adjust the azimuth of the electronic device to ensure that the antenna is aligned with the target satellite. The second attitude adjustment information prompts users in an intuitive way how to adjust the electronic device, reducing the complexity and time cost of manual adjustment. Accurate azimuth adjustment helps maximize signal reception strength and reduce the possibility of communication interruption or signal loss.

[0124] By determining the first deviation angle and the second deviation angle according to the pitch angle and azimuth angle respectively, and displaying the corresponding attitude adjustment information, it can help users accurately adjust the angle of the electronic device, ensure that the antenna is aimed at the target satellite, improve the signal reception quality, and enhance the reliability of satellite communications and user experience.

[0125] In a possible embodiment, the following steps are also included:

[0126] receiving a first input to a satellite communication control;

[0127] In response to the first input, a satellite communication interface or a floating window is displayed.

[0128] Satellite Communications Widget: An interactive element in the user interface that allows the user to turn the satellite communications feature on or off by clicking or touching the widget.

[0129] Satellite communication interface: refers to a graphical user interface displayed on an electronic device specifically for satellite communication, which usually includes functional modules such as attitude adjustment information, signal strength, and connection status.

[0130] Floating window: refers to a small window that floats on the screen of an electronic device, usually displayed in a semi-transparent or non-full-screen form. Users can view or operate the content in the floating window without switching to the main interface.

[0131] First input: refers to the operation performed by the user on the satellite communication control, such as clicking, touching or voice command, which is used to trigger the start of the satellite communication function.

[0132] When the user clicks or touches the satellite communication control, the electronic device detects this input operation and triggers the start of the satellite communication function. Subsequently, the electronic device loads and displays the satellite communication interface, which may include attitude adjustment information, signal strength, target satellite list, etc. The attitude adjustment information is calculated and displayed in real time through the built-in sensor of the electronic device to help the user adjust the angle of the electronic device to align with the satellite. By displaying the satellite communication interface, the user can intuitively view the attitude information, signal status, etc. of the current electronic device, and adjust the angle of the electronic device according to the prompts, so as to quickly establish a connection with the target satellite.

[0133] When the user clicks or touches the satellite communication control, the electronic device detects the input operation and triggers the start of the satellite communication function. Subsequently, the electronic device displays the attitude adjustment information in the form of a floating window. The floating window floats above the screen in the form of a small window. The user can continue to operate other applications while viewing the attitude adjustment information in the floating window. The design of the floating window provides greater operational flexibility. The user can view the attitude adjustment information in real time without switching the main interface, and adjust the angle of the electronic device according to the prompts, thereby improving the user experience.

[0134] In a possible embodiment, step 120 may specifically include the following steps:

[0135] The attitude adjustment information is displayed on the satellite communication interface or the floating window.

[0136] The satellite communication interface centrally displays attitude adjustment information, signal strength, target satellite list, etc., to help users fully understand the current communication status. Users can complete electronic equipment adjustment, satellite selection and communication function operations in one interface, reducing operation steps and improving efficiency. The intuitive interface design and real-time information feedback enable users to quickly get started and complete satellite communication operations.

[0137] The floating window allows users to view posture adjustment information while performing other operations, avoiding frequent interface switching and improving the convenience of multitasking. The floating window is usually displayed in the form of a small window, which does not take up too much screen space and is suitable for use when the screen space is limited. Users can move or close the floating window as needed, and flexibly adjust the interface layout to meet personalized needs.

[0138] By responding to the start input of the satellite communication control, displaying the satellite communication interface or floating window can provide users with intuitive attitude adjustment information to help users quickly aim at the target satellite. The satellite communication interface provides comprehensive information display and operation functions, which is suitable for scenarios that require centralized operation; the floating window provides higher flexibility and multi-tasking capabilities, which is suitable for scenarios that require other operations at the same time. Both designs can effectively improve the convenience of satellite communication and user experience.

[0139] In a possible embodiment, after step 120, the following steps may also be included:

[0140] When connected to the target satellite, communication function options are displayed on the satellite communication interface, and the satellite communication function options include at least one of the following: a telephone option, a message option, and a professional rescue hotline option.

[0141] Satellite communication function options: refers to the communication functions that users can select after successfully connecting to the target satellite, such as voice calls, data transmission, video communication, etc.

[0142] Telephone option: refers to the function option of making voice calls via satellite.

[0143] Messaging options: refers to the function options of sending and receiving text messages via satellite.

[0144] Professional rescue hotline option: refers to the functional option of connecting to professional rescue services such as emergency rescue, medical assistance, etc. via satellite.

[0145] Satellite communication interface: refers to a graphical user interface displayed on an electronic device specifically for satellite communication, which usually includes functional modules such as attitude adjustment information, connection status identification information, and satellite signal identification information.

[0146] Connection status identification information: refers to the identification used to display the connection status between the electronic device and the target satellite, such as "connected", "connecting", "not connected", etc.

[0147] Satellite signal identification information: refers to the identification used to display the satellite signal strength, usually expressed in the form of an icon or a numerical value.

[0148] When the electronic device successfully connects to the target satellite, the electronic device will establish a communication link with the satellite. At this time, the electronic device will detect the satellite's signal and confirm the connection status. Once the connection is successful, the electronic device will display the available satellite communication function options, and the user can select the corresponding function according to their needs.

[0149] After the satellite communication function options are displayed, users can choose different communication services according to actual needs, such as voice calls, data transmission, video communication, etc. This provides users with a flexible communication method to meet the needs of different application scenarios.

[0150] By adjusting the pitch and azimuth of the electronic equipment, the antenna is accurately aligned with the satellite, thereby maximizing the signal reception strength and reducing the possibility of communication interruption or signal loss. The display of attitude adjustment information can guide users to quickly and accurately adjust the electronic equipment, reducing the complexity and time cost of manual adjustment.

[0151] Provide diversified communication services: Users can choose different communication functions according to their needs to meet various communication needs such as voice, data, video, etc. After successfully connecting to the satellite, the electronic device automatically displays the available communication function options, which simplifies the user operation process and improves the user experience.

[0152] By displaying the satellite communication interface, users can intuitively view the attitude information, connection status and signal strength of the current electronic device, and adjust the angle of the electronic device according to the prompts to ensure the stability and reliability of communication.

[0153] Users can choose different communication functions such as phone, information, professional rescue hotline, etc. according to their needs to meet the needs of various application scenarios. The display of communication function options simplifies the user operation process, allowing users to quickly select the required services and improve user experience. The satellite communication interface centrally displays attitude adjustment information, connection status identification information and satellite signal identification information to help users fully understand the current communication status.

[0154] Users can adjust electronic devices, check connection status, and operate communication functions in one interface, reducing operation steps and improving efficiency. By displaying posture adjustment information and signal strength in real time, users can adjust the angle of electronic devices in time to ensure the stability and reliability of communication.

[0155] like Figure 8 As shown in a, during the connection process, the electronic device will detect the posture of the mobile phone in real time.

[0156] like Figure 8As shown in Figure b, if attitude deviation is detected, the user will be redirected through the interface prompt to adjust the device angle to realign it with the satellite. Real-time detection and redirection ensure that the device always maintains the best alignment attitude during the connection process, thereby improving the connection success rate.

[0157] like Figure 8 c, the following prompt message is displayed: "Satellite communication distance is far, it may take a long time, please wait patiently."

[0158] like Figure 8 As shown in Figure d, when the electronic device successfully establishes a connection with the target satellite, the connection success status will be displayed. If the user maintains the alignment posture when the connection is successful, it will be prompted "Connection Successful"; if the posture deviates after the connection is successful, the deviation status will be displayed and the user will be prompted to readjust the device angle. By displaying the connection success status and deviation status, the user can understand the current connection status and adjust the device angle according to the prompts to ensure communication quality.

[0159] After the connection is successful, the function portal will be displayed at the bottom of the user interface, and users can quickly enter the relevant application by clicking on these portals. By providing function portals, users can quickly access common functions and improve the convenience of operation. After the user enters the relevant application through the function portal, the user interface will automatically shrink from the full screen or panel state to the floating window state, floating above the screen. The floating window state allows users to continue to view the connection status or perform other operations without switching to the main interface, improving multi-tasking capabilities.

[0160] Through real-time detection and redirection, it ensures that electronic devices always maintain the best alignment posture during the connection process, reducing the possibility of connection interruption. Clear guidance information helps users quickly adjust the device angle and improves the convenience of operation. By displaying the connection success status and offset status, users can understand the current connection status and adjust the device angle according to the prompts. After the connection is successful, the device posture will continue to be detected to ensure that the communication quality is not affected by the offset. Through the function entrance, users can quickly access commonly used functions and reduce the number of operation steps. Provide a variety of functional options, such as calls, messages, outdoor survival skills, SOS flash lights, etc., to meet the different needs of users.

[0161] The floating window state allows users to continue to check the connection status or perform other operations without switching to the main interface, improving the convenience of multitasking. The floating window is usually displayed in the form of a small window, which does not take up too much screen space and is suitable for use when the screen space is limited.

[0162] During the connection process, by detecting the phone's attitude deviation in real time and redirecting the user to align with the satellite, it can ensure that the device always maintains the best alignment attitude and improve the connection success rate. After the connection is successful, by displaying the connection success status, providing function entrances, and automatically retracting to a floating window state, users can quickly access common functions and continue to view the connection status, improving operational convenience and multi-tasking capabilities. This design not only enhances the stability and functionality of satellite communications, but also significantly improves the user experience.

[0163] By displaying the communication function options on the satellite communication interface, users can be provided with a variety of communication services to meet different application needs. By displaying the satellite communication interface, users can intuitively understand the current communication status and adjust the angle of electronic equipment according to the prompts to ensure the stability and reliability of communication. These two steps together improve the convenience, functionality and user experience of satellite communications.

[0164] In a possible embodiment, the above-mentioned step of displaying communication function options on the satellite communication interface when connected to the target satellite may specifically include the following steps:

[0165] When connected to the target satellite, satellite communication function options matching the current signal strength value of the target satellite are displayed with first display parameters, and satellite communication function options not matching the current signal strength value of the target satellite are displayed with second display parameters.

[0166] First display parameter: used to display the display settings of the communication function options that match the current signal strength, such as color, brightness, font size, etc.

[0167] Second display parameter: A display setting used to display communication function options that do not match the current signal strength, usually different from the first display parameter to distinguish between available and unavailable functions.

[0168] Signal strength value: refers to the communication signal strength between the device and the satellite, usually measured in decibel milliwatts (dBm).

[0169] The electronic device establishes a communication connection with the target satellite through the antenna and modem to obtain the current signal strength value. According to the current signal strength value, the satellite communication interface dynamically adjusts the displayed communication function options.

[0170] The first display parameter is used to display function options that match the current signal strength, indicating that these functions can be used normally under the current signal strength. The second display parameter is used to display function options that do not match the current signal strength, indicating that these functions may not be used normally or have poor performance under the current signal strength.

[0171] By distinguishing between available and unavailable function options, users can quickly identify which functions can be used under current signal conditions, avoid trying to use unavailable functions, and improve user experience. Electronic devices can dynamically adjust available function options based on signal strength, avoiding trying to use high-bandwidth or high-latency sensitive functions when the signal is weak, thereby saving resources and power. By clearly distinguishing between available and unavailable functions, users can reduce communication failures or data loss caused by poor signals and improve communication reliability.

[0172] Therefore, by dynamically adjusting the display parameters of the satellite communication interface, available and unavailable communication function options are displayed according to the current signal strength value, thereby optimizing the user experience, saving resources and improving the reliability of communication. When the electronic device successfully connects to the target satellite, it will detect the connection status and display the available communication function options in the satellite communication interface so that the user can select the corresponding communication service according to their needs.

[0173] In a possible embodiment, when the electronic device is inconsistent with the first state, prompt information is displayed, where the prompt information is used to prompt the electronic device to be adjusted to the first state, where the first state includes: a horizontal screen state or a vertical screen state.

[0174] The first state: can be a landscape state, displaying in a horizontal direction; or a portrait state, displaying in a vertical direction.

[0175] Prompt information: a visual or auditory prompt displayed on the screen of an electronic device, used to guide the user to adjust the device to the first state.

[0176] Horizontal screen state: The long side of the electronic device screen is parallel to the ground, usually used for watching videos, playing games, etc.

[0177] Portrait mode: The short side of the electronic device screen is parallel to the ground, usually used for browsing web pages, reading texts, etc.

[0178] When the electronic device detects that the phone is in landscape mode, the user interface will display a prompt message, such as "Please align the phone in portrait mode", prompting the user to adjust the phone to portrait mode. By prompting the user to adjust the screen orientation, the electronic device is ensured to perform satellite alignment operations in the correct posture. For example, in portrait mode, the device's sensor data is more accurate, which helps improve alignment accuracy.

[0179] By giving priority to the deviations that are identified first, users can be guided to adjust the device more efficiently, reducing operation time. Clear guidance information helps users complete adjustments quickly and reduces operation complexity. By prompting users to adjust the screen direction, ensure that the device performs satellite alignment operations in the correct posture.

[0180] The electronic device detects the current orientation state of the device in real time through a built-in sensor, such as an accelerometer or a gyroscope. The electronic device compares the detected current state of the device with the preset first state to determine whether they are consistent. If they are inconsistent, the display of prompt information is triggered. The prompt information guides the user to adjust the device to a state suitable for the current usage scenario, thereby improving the convenience and comfort of operation.

[0181] In a possible embodiment, when the target satellite is not connected, the reconnection control and connection failure prompt information are displayed on the satellite communication interface.

[0182] Reconnection control: refers to an interactive element in the user interface that the user can click or touch to retry connecting to the target satellite.

[0183] Connection failure prompt information: refers to the text or graphic information displayed in the satellite communication interface, which is used to prompt the user the reason for the connection failure or provide relevant suggestions.

[0184] Satellite communication interface: refers to a graphical user interface displayed on an electronic device specifically for satellite communication, which usually includes information such as connection status, signal strength, and function options.

[0185] When an electronic device attempts to connect to a target satellite but fails, it detects the connection failure and displays a reconnection control and a connection failure prompt message in the satellite communication interface. The reconnection control allows the user to manually trigger the reconnection operation, while the connection failure prompt message provides the user with the reason for the connection failure or suggestions, such as "Weak signal, please move to an open area" or "Connection timed out, please try again."

[0186] like Fig. 9 As shown, when the target satellite is not connected, the "Reconnect" control and the connection failure prompt message "Satellite connection timeout" are displayed on the satellite communication interface.

[0187] By displaying reconnection controls and connection failure prompt information, users can quickly understand the cause of the connection failure and take appropriate measures based on the prompts, thereby improving the connection success rate.

[0188] Users can manually trigger reconnection as needed, without waiting for automatic retry, improving operational flexibility and control. After a connection fails, users can quickly start a new connection attempt through the reconnection control to reduce waiting time. Connection failure prompts provide users with specific failure reasons or suggestions to help users understand the problem and take effective measures.

[0189] By prompting users to adjust the position of their electronic devices or retry the connection, the connection conditions can be effectively improved and the connection success rate can be increased. By providing clear prompt information, users can quickly solve the problem and avoid confusion or dissatisfaction caused by connection failure.

[0190] In the case of not connecting to the target satellite, the reconnection control and connection failure prompt information can provide users with operational flexibility and clear guidance by displaying the reconnection control and connection failure prompt information on the satellite communication interface. The reconnection control allows users to manually trigger the reconnection operation, while the connection failure prompt information helps users understand the reason for the connection failure and take corresponding measures, which not only improves the connection success rate, but also enhances the user experience and makes satellite communication operations more convenient and efficient.

[0191] In addition, if Fig.10 As shown in the figure, after the connection is successful, the electronic device will continue to detect the posture of the mobile phone. If the posture deviation is detected, but the connection is still maintained, the connection success status will continue to be displayed to ensure that the user can use the communication function normally. By maintaining the successful connection status, the user can continue to use the satellite communication function to avoid communication interruption caused by posture deviation.

[0192] After the connection is successful, the function portals will be displayed at the bottom of the user interface, and users can quickly enter related applications by clicking on these portals. Even if the device posture is offset, these function portals are still available. By providing function portals, users can quickly access commonly used functions and improve the convenience of operation.

[0193] When the electronic device's posture is offset, the user will be guided through the interface prompt to adjust the device angle to realign it with the satellite. The prompt information may include text, icons, or dynamic effects. By prompting the user to perform satellite alignment, the device is ensured to be realigned to the optimal posture, thereby improving communication quality.

[0194] When the electronic device's attitude shifts, the connection remains successful, ensuring that users can continue to use the satellite communication function. Users do not need to worry about communication interruptions caused by attitude shifts, which increases their confidence in use. Through the function portal, users can quickly access commonly used functions and reduce the number of operation steps.

[0195] Provides a variety of functional options to meet the different needs of users. By prompting users to adjust the device angle, ensure that the device is re-aligned with the satellite, thereby improving communication quality. Clear prompt information helps users quickly complete adjustments and improves operational convenience.

[0196] After the connection is successful, even if the posture of the electronic device shifts, the connection remains successful and the user is allowed to use the shortcut function entrance normally. At the same time, the user will be prompted to align the satellite to ensure that the device is readjusted to the optimal posture. This not only ensures the continuity and functionality of communication, but also improves the user experience through clear prompt information, making satellite communication operations more convenient and efficient.

[0197] In an embodiment of the present application, when a target satellite is searched or connected, attitude adjustment information is determined; the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: pitch angle and azimuth angle; the attitude adjustment information is displayed. By displaying the attitude adjustment information, the user can refer to adjust the angle of the electronic device to ensure that the antenna of the electronic device can accurately align with the target satellite, improve the success rate and stability of the connection with the target satellite, and improve the stability of satellite communication.

[0198] The information display method provided in the embodiment of the present application can be executed by an information display device. In the embodiment of the present application, an information display device executing the information display method is taken as an example to illustrate the information display device provided in the embodiment of the present application.

[0199] Fig.11 1 is a block diagram of an information display device provided in an embodiment of the present application, and the device 1100 includes:

[0200] The determination module 1110 is used to determine attitude adjustment information when the target satellite is searched or connected; the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: a pitch angle and an azimuth angle;

[0201] The display module 1120 is used to display the posture adjustment information.

[0202] In a possible embodiment, the posture adjustment information includes at least one of the following: first posture adjustment information, second posture adjustment information;

[0203] The first attitude adjustment information is determined according to a first deviation angle of the electronic device relative to the target satellite, and the first deviation angle is determined according to a pitch angle of the electronic device relative to the target satellite;

[0204] The second attitude adjustment information is determined based on a second deviation angle of the electronic device relative to the target satellite, and the second deviation angle is determined based on an azimuth angle of the electronic device relative to the target satellite.

[0205] In a possible embodiment, the device 1100 further includes:

[0206] A receiving module, configured to receive a first input to a satellite communication control;

[0207] The display module 1120 is further configured to display a satellite communication interface or a floating window in response to the first input.

[0208] In a possible embodiment, the display module 1120 is specifically configured to:

[0209] The attitude adjustment information is displayed on the satellite communication interface or the floating window.

[0210] In a possible embodiment, the device 1100 further includes:

[0211] A search module, configured to search for the target satellite when the accuracy value of the magnetic sensor of the electronic device is greater than a preset accuracy value;

[0212] The display module 1120 is further used to display a magnetic induction calibration interface when the accuracy value of the magnetic sensor of the electronic device is less than or equal to the preset accuracy value; the magnetic induction calibration interface is used to indicate the calibration of the magnetic induction accuracy value of the electronic device.

[0213] In a possible embodiment, the display module 1120 is also used to display communication function options on the satellite communication interface when connected to the target satellite, and the satellite communication function options include at least one of the following: a telephone option, an information option, and a professional rescue hotline option.

[0214] In a possible embodiment, the display module 1120 is specifically configured to:

[0215] When connected to the target satellite, satellite communication function options matching the current signal strength value of the target satellite are displayed with first display parameters, and satellite communication function options not matching the current signal strength value of the target satellite are displayed with second display parameters.

[0216] In a possible embodiment, the display module 1120 is further used to display a prompt message when the electronic device is inconsistent with the first state, and the prompt message is used to prompt the electronic device to be adjusted to the first state, and the first state includes: a horizontal screen state or a vertical screen state.

[0217] In an embodiment of the present application, when a target satellite is searched or connected, attitude adjustment information is determined; the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: pitch angle and azimuth angle; the attitude adjustment information is displayed. By displaying the attitude adjustment information, the user can refer to adjust the angle of the electronic device to ensure that the antenna of the electronic device can accurately align with the target satellite, improve the success rate and stability of the connection with the target satellite, and improve the stability of satellite communication.

[0218] The information display device in the embodiment of the present application can be an electronic device, or a component in the electronic device, such as an integrated circuit or a chip. The electronic device can be a terminal, or it can be other devices other than a terminal. Exemplarily, the electronic device can be a mobile phone, a tablet computer, a laptop computer, a PDA, a vehicle-mounted electronic device, a mobile Internet device (Mobile Internet Device, MID), an augmented reality (augmented reality, AR) / virtual reality (virtual reality, VR) device, a robot, a wearable device, an ultra-mobile personal computer (ultra-mobile personal computer, UMPC), a netbook or a personal digital assistant (personal digital assistant, PDA), etc., and can also be a server, a network attached storage (Network Attached Storage, NAS), a personal computer (personal computer, PC), a television (television, TV), a teller machine or a self-service machine, etc., which is not specifically limited in the embodiment of the present application.

[0219] The information display device of the embodiment of the present application may be a device having an action system. The action system may be an Android action system, an iOS action system, or other possible action systems, which are not specifically limited in the embodiment of the present application.

[0220] The information display device provided in the embodiment of the present application can implement each process implemented in the above method embodiment, and will not be described again here to avoid repetition.

[0221] Alternatively, if Fig.12 As shown, an embodiment of the present application also provides an electronic device 1210, including a processor 1211, a memory 1212, and a program or instruction stored in the memory 1212 and executable on the processor 1211. When the program or instruction is executed by the processor 1211, each step of any of the above-mentioned information display method embodiments is implemented, and the same technical effect can be achieved. To avoid repetition, it will not be repeated here.

[0222] It should be noted that the electronic devices in the embodiments of the present application include the above-mentioned mobile electronic devices and non-mobile electronic devices.

[0223] Fig.13 A schematic diagram of the hardware structure of an electronic device to implement an embodiment of the present application.

[0224] The electronic device 1300 includes but is not limited to: a radio frequency unit 1301, a network module 1302, an audio output unit 1303, an input unit 1304, a sensor 1305, a display unit 1306, a user input unit 1307, an interface unit 1308, a memory 1309, and a processor 1310 and other components.

[0225] Those skilled in the art will appreciate that the electronic device 1300 may also include a power source (such as a battery) for supplying power to each component, and the power source may be logically connected to the processor 1310 through a power management system, thereby implementing functions such as managing charging, discharging, and power consumption management through the power management system. Fig.13 The electronic device structure shown in the figure does not constitute a limitation on the electronic device. The electronic device may include more or fewer components than shown in the figure, or combine certain components, or arrange the components differently, which will not be described in detail here.

[0226] The processor 1310 is used to determine attitude adjustment information when searching for or connecting to a target satellite; the attitude adjustment information is used to instruct a user to adjust an angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: a pitch angle and an azimuth angle;

[0227] The display unit 1306 is used to display the posture adjustment information.

[0228] Optionally, the posture adjustment information includes at least one of the following: first posture adjustment information, second posture adjustment information;

[0229] The first attitude adjustment information is determined according to a first deviation angle of the electronic device relative to the target satellite, and the first deviation angle is determined according to a pitch angle of the electronic device relative to the target satellite;

[0230] The second attitude adjustment information is determined based on a second deviation angle of the electronic device relative to the target satellite, and the second deviation angle is determined based on an azimuth angle of the electronic device relative to the target satellite.

[0231] Optionally, the user input unit 1307 is further configured to receive a first input to the satellite communication control;

[0232] The display unit 1306 is further configured to display a satellite communication interface or a floating window in response to the first input.

[0233] Optionally, the display unit 1306 is further configured to display the attitude adjustment information on the satellite communication interface or the floating window.

[0234] Optionally, the processor 1310 is further configured to search for the target satellite when the accuracy value of the magnetic sensor of the electronic device is greater than a preset accuracy value;

[0235] The display unit 1306 is further used to display a magnetic induction calibration interface when the accuracy value of the magnetic sensor of the electronic device is less than or equal to the preset accuracy value; the magnetic induction calibration interface is used to indicate the calibration of the magnetic induction accuracy value of the electronic device.

[0236] Optionally, the display unit 1306 is further used to display communication function options on the satellite communication interface when connected to the target satellite, and the satellite communication function options include at least one of the following: a telephone option, an information option, and a professional rescue hotline option.

[0237] Optionally, the display unit 1306 is also used to display satellite communication function options that match the current signal strength value of the target satellite with a first display parameter when connected to the target satellite, and to display satellite communication function options that do not match the current signal strength value of the target satellite with a second display parameter.

[0238] Optionally, the display unit 1306 is further used to display a prompt message when the electronic device is inconsistent with the first state, and the prompt message is used to prompt the electronic device to be adjusted to the first state, and the first state includes: a horizontal screen state or a vertical screen state.

[0239] In an embodiment of the present application, when a target satellite is searched or connected, attitude adjustment information is determined; the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: pitch angle and azimuth angle; the attitude adjustment information is displayed. By displaying the attitude adjustment information, the user can refer to adjust the angle of the electronic device to ensure that the antenna of the electronic device can accurately align with the target satellite, improve the success rate and stability of the connection with the target satellite, and improve the stability of satellite communication.

[0240] It should be understood that in the embodiment of the present application, the input unit 1304 may include a graphics processor (Graphics Processing Unit, GPU) 13041 and a microphone 13042, and the graphics processor 13041 processes the image data of the static picture or video image obtained by the image capture device (such as a camera) in the video image capture mode or the image capture mode. The display unit 1306 may include a display panel 13061, and the display panel 13061 may be configured in the form of a liquid crystal display, an organic light emitting diode, etc. The user input unit 1307 includes at least one of a touch panel 13071 and other input devices 13072. The touch panel 13071 is also called a touch screen. The touch panel 13071 may include two parts: a touch detection device and a touch controller. Other input devices 13072 may include, but are not limited to, a physical keyboard, a function key (such as a volume control button, a switch button, etc.), a trackball, a mouse, and an action rod, which will not be repeated here. The memory 1309 can be used to store software programs and various data, including but not limited to applications and action systems. The processor 1310 may integrate an application processor and a modem processor, wherein the application processor mainly processes the action system, user pages and application programs, etc., and the modem processor mainly processes wireless communications. It is understandable that the modem processor may not be integrated into the processor 1310.

[0241] The memory 1309 can be used to store software programs and various data. The memory 1309 may mainly include a first storage area for storing programs or instructions and a second storage area for storing data, wherein the first storage area may store an operating system, an application program or instructions required for at least one function (such as a sound playback function, an image playback function, etc.), etc. In addition, the memory 1309 may include a volatile memory or a non-volatile memory, or the memory x09 may include both volatile and non-volatile memories. Among them, the non-volatile memory may be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory. The volatile memory may be a random access memory (RAM), a static random access memory (SRAM), a dynamic random access memory (DRAM), a synchronous dynamic random access memory (SDRAM), a double data rate synchronous dynamic random access memory (DDRSDRAM), an enhanced synchronous dynamic random access memory (ESDRAM), a synchronous link dynamic random access memory (SLDRAM) and a direct memory bus random access memory (DRRAM). The memory 1309 in the embodiment of the present application includes but is not limited to these and any other suitable types of memory.

[0242] The processor 1310 may include one or more processing units; optionally, the processor 1310 integrates an application processor and a modem processor, wherein the application processor mainly processes operations related to an operating system, a user interface, and application programs, and the modem processor mainly processes wireless communication signals, such as a baseband processor. It is understandable that the modem processor may not be integrated into the processor 1310.

[0243] An embodiment of the present application also provides a readable storage medium, on which a program or instruction is stored. When the program or instruction is executed by a processor, the various processes of the above-mentioned information display method embodiment are implemented, and the same technical effect can be achieved. To avoid repetition, it will not be repeated here.

[0244] The processor is the processor in the electronic device described in the above embodiment. The readable storage medium includes a computer readable storage medium, such as a computer read-only memory ROM, a random access memory RAM, a magnetic disk or an optical disk.

[0245] An embodiment of the present application further provides a chip, which includes a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is used to run programs or instructions to implement the various processes of the above-mentioned information display method embodiment, and can achieve the same technical effect. To avoid repetition, it will not be repeated here.

[0246] It should be understood that the chip mentioned in the embodiments of the present application can also be called a system-level chip, a system chip, a chip system or a system-on-chip chip, etc.

[0247] An embodiment of the present application provides a computer program product, which is stored in a storage medium. The program product is executed by at least one processor to implement the various processes of the above-mentioned information display method embodiment and can achieve the same technical effect. To avoid repetition, it will not be repeated here.

[0248] It should be noted that, in this article, the terms "comprise", "include" or any other variant thereof are intended to cover non-exclusive inclusion, so that the process, method, article or device including a series of elements includes not only those elements, but also includes other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, the elements defined by the sentence "comprise one..." do not exclude the presence of other identical elements in the process, method, article or device including the element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of the present application is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in reverse order according to the functions involved, for example, the described method may be performed in an order different from that described, and various steps may also be added, omitted, or combined. In addition, the features described with reference to certain examples may be combined in other examples.

[0249] Through the description of the above implementation methods, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be implemented by means of software plus a necessary general hardware platform, and of course by hardware, but in many cases the former is a better implementation method. Based on such an understanding, the technical solution of the present application, or the part that contributes to the prior art, can be embodied in the form of a computer software product, which is stored in a storage medium (such as ROM / RAM, a disk, or an optical disk), and includes a number of instructions for a terminal (which can be a mobile phone, a computer, a server, or a network device, etc.) to execute the methods described in each embodiment of the present application.

[0250] The embodiments of the present application are described above in conjunction with the accompanying drawings, but the present application is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of the present application, ordinary technicians in this field can also make many forms without departing from the purpose of the present application and the scope of protection of the claims, all of which are within the protection of the present application.

Claims

1. An information display method, characterized in that: The method comprises: In the case of searching for or connecting to the target satellite, determining attitude adjustment information; the attitude adjustment information is used to instruct the user to adjust the angle of the electronic device relative to the target satellite, and the angle includes at least one of the following: a pitch angle and an azimuth angle; The posture adjustment information is displayed.

2. The method according to claim 1, characterized in that The posture adjustment information includes at least one of the following: first posture adjustment information, second posture adjustment information; The first attitude adjustment information is determined according to a first deviation angle of the electronic device relative to the target satellite, and the first deviation angle is determined according to a pitch angle of the electronic device relative to the target satellite; The second attitude adjustment information is determined based on a second deviation angle of the electronic device relative to the target satellite, and the second deviation angle is determined based on an azimuth angle of the electronic device relative to the target satellite.

3. The method according to claim 1, characterized in that The method further comprises: receiving a first input to a satellite communication control; In response to the first input, a satellite communication interface or a floating window is displayed.

4. The method according to claim 3, characterized in that The displaying of the posture adjustment information comprises: The attitude adjustment information is displayed on the satellite communication interface or the floating window.

5. The method according to claim 1, characterized in that The method further comprises: When the accuracy value of the magnetic sensor of the electronic device is greater than a preset accuracy value, searching for the target satellite; When the accuracy value of the magnetic sensor of the electronic device is less than or equal to the preset accuracy value, a magnetic induction calibration interface is displayed; the magnetic induction calibration interface is used to indicate the calibration of the magnetic induction accuracy value of the electronic device.

6. The method according to claim 1, characterized in that After displaying the posture adjustment information, the method further includes: When connected to the target satellite, communication function options are displayed on the satellite communication interface, and the satellite communication function options include at least one of the following: a telephone option, a message option, and a professional rescue hotline option.

7. The method according to claim 6, characterized in that When connected to the target satellite, displaying communication function options on the satellite communication interface includes: When connected to the target satellite, satellite communication function options matching the current signal strength value of the target satellite are displayed with first display parameters, and satellite communication function options not matching the current signal strength value of the target satellite are displayed with second display parameters.

8. The method according to claim 1, characterized in that The method further comprises: When the electronic device is not in the first state, a prompt message is displayed, where the prompt message is used to prompt the electronic device to be adjusted to the first state, where the first state includes: a horizontal screen state or a vertical screen state.

9. An information display device, characterized in that: The device comprises: A determination module, configured to determine attitude adjustment information when a target satellite is searched or connected; the attitude adjustment information is used to instruct a user to adjust an angle of the electronic device relative to the target satellite, the angle comprising at least one of the following: a pitch angle and an azimuth angle; A display module is used to display the posture adjustment information.

10. An electronic device, characterized in that: The method comprises a processor and a memory, wherein the memory stores a program or instruction that can be run on the processor, and when the program or instruction is executed by the processor, the steps of the method according to any one of claims 1 to 8 are implemented.

Citation Information

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