Fishing camera interaction method, device, fishing camera and storage medium

Through the self-test and status recognition of the fishing camera in standby state, the problem of insufficient equipment status monitoring caused by relying on smart terminal applications in the prior art is solved, timely equipment warning and automated management are realized, and the fishing experience and video quality are improved.

CN120017975BActive Publication Date: 2025-08-29SHENZHEN CHASING INNOVATION TECH CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202510458814.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-08-29
Estimated Expiration
2045-04-14

AI Technical Summary

Technical Problem

Existing phishing cameras rely on dedicated applications of smart terminals, resulting in a lack of automated device status monitoring, where device abnormal states cannot be captured in real time and converted into perceived early warning signals.

Method used

The fishing camera conducts self-checking during standby state, identify low battery, full hard disk or equipment failure status, and determines differentiated warning methods by identifying the status type, including sound, light and screen display, to achieve timely warning.

Benefits of technology

Improve the automation and early warning efficiency of equipment status monitoring, so that users can deal with equipment problems in a timely manner, avoid affecting the fishing experience, and ensure the video quality and stable equipment operation.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120017975B_ABST
    Figure CN120017975B_ABST
Patent Text Reader

Abstract

This application relates to the field of smart device interaction technology and provides a fishing camera interaction method, device, fishing camera, and storage medium. This application overcomes the limitations of traditional architectures that rely on dedicated applications to trigger detection by enabling the fishing camera to perform self-tests while in standby mode. Upon detecting a specific state (low battery, full hard drive, or device failure), the application identifies the state type and determines the alert method, achieving differentiated early warnings. Furthermore, upon detecting a specific state, a timely alert can be issued, improving early warning efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the field of smart device interaction technology, and in particular to a fishing camera interaction method, device, fishing camera and storage medium. Background Art

[0002] Fishing cameras have gained widespread adoption in the fishing industry to enhance both the fun and success rate of fishing. These cameras use underwater cameras to capture real-time information about fish activity, bait tracking, and hook bites. Using wireless transmission technology, they stream the video to smart devices (such as mobile phones and tablets) for visualization, addressing the pain point of traditional "blind fishing."

[0003] However, existing fishing cameras rely on dedicated applications on smart terminals to achieve functional control, resulting in a lack of automated equipment status monitoring. Abnormal equipment conditions cannot be captured in real time and converted into perceptible warning signals. Summary of the Invention

[0004] In view of the above, it is necessary to propose a fishing camera interaction method, device, fishing camera and storage medium, aiming to solve the technical problem that existing fishing cameras lack equipment status monitoring and cannot provide timely warnings due to their reliance on dedicated applications of smart terminals.

[0005] A first aspect of the present application provides a fishing camera interaction method, the method comprising:

[0006] Performing a self-check when the fishing camera is in standby mode, and identifying a state type of the specific state when a specific state is detected;

[0007] determining a warning method according to the status type;

[0008] Providing a warning according to the warning method;

[0009] The specific state is one of a low power state, a hard disk full state, and a device failure state, and the low power state refers to a state where the power is lower than a preset power threshold.

[0010] Optionally, when the specific state is the hard disk full state, the method further includes:

[0011] Detect whether the user has selected a target screen recording interaction mode from among multiple preset screen recording interaction modes;

[0012] When it is detected that the user has selected the target screen recording interaction mode, the recording time of each video file in the storage space is obtained;

[0013] Record and automatically overwrite the earliest recording file.

[0014] Optionally, the method further includes:

[0015] Real-time sensing of the amount of light entering the underwater environment and acquisition of underwater environment data;

[0016] determining a light input threshold according to the underwater environment data;

[0017] Determining whether the amount of light entering the underwater environment is less than the light entering threshold;

[0018] When the amount of light entering the underwater environment is less than the light entering threshold, light compensation is automatically performed.

[0019] Optionally, determining the light input threshold according to the underwater environment data includes:

[0020] Obtaining water depth, water clarity and water flow speed from the underwater environment data;

[0021] Determining the light input threshold according to the water depth, the water clarity, and the water flow speed;

[0022] The light input threshold is calculated using the following formula:

[0023] ;

[0024] Indicates the light input threshold. Indicates the basic light input threshold. is the water depth influencing factor, is a factor affecting water clarity. is the water velocity influencing factor;

[0025] The water depth influencing factor is determined according to the water depth, the water clarity influencing factor is determined according to the water clarity, and the water flow velocity influencing factor is determined according to the water flow velocity.

[0026] Optionally, the automatically performing light compensation includes:

[0027] Controlling the fill light to operate at a first power and / or a first illumination range to perform a first level of light compensation;

[0028] After every preset recording time period, increasing the first power to a second power and / or increasing the first irradiation range to a second irradiation range;

[0029] The fill light is controlled to operate at the second power and / or the second illumination range to perform a second level of light compensation.

[0030] Optionally, the method further includes:

[0031] During the light compensation process, the amount of light entering the underwater environment is sensed in real time and underwater environment data is obtained;

[0032] When the amount of light entering the underwater environment is greater than the light entering threshold, the fill light is automatically turned off.

[0033] Optionally, the method further includes:

[0034] When a power-on signal is detected, the recording function is automatically turned on and recording starts automatically after the preset recording time period.

[0035] A second aspect of the present application provides a fishing camera interaction device, the device comprising:

[0036] A self-check module, configured to perform a self-check when the fishing camera is in standby mode, and identify a state type of the specific state when a specific state is detected;

[0037] A determination module, configured to determine a warning method according to the status type;

[0038] An alarm module, configured to issue an alarm according to the alarm method;

[0039] The specific state is one of a low power state, a hard disk full state, and a device failure state, and the low power state refers to a state where the power is lower than a preset power threshold.

[0040] A third aspect of the present application provides a fishing camera, which includes a processor and a memory, wherein the processor is configured to implement the fishing camera interaction method when executing a computer program stored in the memory.

[0041] A fourth aspect of the present application provides a computer-readable storage medium having a computer program stored thereon. When the computer program is executed by a processor, the fishing camera interaction method is implemented.

[0042] This application overcomes the limitations of traditional architectures that rely on dedicated applications to trigger detection by enabling the fishing camera to perform self-tests while in standby mode. When a specific state—low battery, full hard drive, or device failure—is detected, the application identifies the state type and determines the alert method, achieving differentiated early warnings. Furthermore, when a specific state is detected, a timely warning is issued, improving early warning efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0043] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, a brief introduction will be given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.

[0044] Figure 1 A flowchart of the fishing camera interaction method provided by the prior art;

[0045] Figure 2 A flowchart of the fishing camera interaction method provided in an embodiment of the present application;

[0046] Figure 3 A schematic diagram of the structure of the fishing camera interaction device provided in an embodiment of the present application;

[0047] Figure 4 This is a schematic diagram of the structure of a fishing camera provided in an embodiment of the present application. DETAILED DESCRIPTION

[0048] In order to more clearly understand the above-mentioned objectives, features and advantages of the present application, the present application is described in detail below in conjunction with the accompanying drawings and specific embodiments. In the absence of conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.

[0049] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art in the art of this application. The terms used herein in the specification of this application are only for the purpose of describing the embodiments in an optional embodiment and are not intended to limit this application.

[0050] Fishing cameras have gained widespread adoption in the fishing industry to enhance both the fun and success rate of fishing. These cameras use underwater cameras to capture real-time information about fish activity, bait tracking, and hook bites. Using wireless transmission technology, they stream the video to smart devices (such as mobile phones and tablets) for visualization, addressing the pain point of traditional "blind fishing."

[0051] However, existing fishing cameras rely on dedicated applications on smart terminals to implement function control. Figure 1As shown, during the preparation phase, the user triggers a connection request between the fishing camera and the dedicated application. The device then checks for power, faults, and a full hard drive. Only when the battery is sufficient, faults are correct, and the device can store new recordings can the application be connected for basic setup. This preparation is not only tedious and tedious, but can also be overlooked or omitted, leading to unnecessary complications. For example, if a user discovers a low battery or other operational issue after setting out, they may be forced to interrupt their fishing trip and return. Alternatively, if the user checks the device before departure, they may delay their departure and recording due to inadequate preparation, negatively impacting their fishing experience.

[0052] It can be seen that the existing fishing cameras lack automated equipment status monitoring due to their reliance on dedicated applications on smart terminals, and abnormal equipment conditions cannot be captured in real time and converted into perceptible warning signals.

[0053] In order to solve the above-mentioned technical problems, the embodiments of the present application provide a fishing camera interaction method, device, fishing camera and storage medium.

[0054] The fishing camera interaction method provided in the embodiment of the present application is executed by the fishing camera, and accordingly, the fishing camera interaction device runs in the fishing camera.

[0055] Example 1

[0056] Figure 1 1 is a flowchart of the fishing camera interaction method provided in Example 1 of the present application. The fishing camera interaction method specifically includes the following steps.

[0057] S21 , performing a self-check when the fishing camera is in standby mode, and identifying a state type of the specific state when a specific state is detected.

[0058] During standby mode, the fishing camera's internal sensors and detection circuits will periodically or based on trigger conditions to self-check its status. Specific status refers to abnormal or special conditions that may occur during standby mode, such as low battery, full hard drive, or device failure.

[0059] The built-in battery detection circuit obtains the remaining battery power of the fishing camera in real time and compares it with the preset battery threshold. If the remaining battery power is lower than the preset threshold, it is judged as low battery state.

[0060] The system reads the remaining space on a storage device (such as an SD card or internal hard drive) to determine whether the storage space is full. If the remaining space is insufficient or full, the hard drive is considered full.

[0061] The fishing camera uses built-in sensors and detection circuits to detect faults in various components. For example, it checks whether the camera is damaged or the transmission line is unobstructed. If a fault is found, it is determined to be a device failure.

[0062] After detecting a specific state, the system identifies the type of state. For example, if the fishing camera is in a low-battery state, it identifies the low-battery state type; if the hard drive is full, it identifies the hard drive full state type; and if the fishing camera is in a device failure state, it identifies the device failure state type.

[0063] S22: Determine a warning method according to the status type.

[0064] Determine the appropriate alert method based on the status type received. Different status types correspond to different alert methods to ensure that users can accurately understand and take appropriate measures.

[0065] For example, when the battery is low, the user can be alerted through sound (such as a beep) or light (such as a flashing LED). The remaining battery life and charging reminder can also be displayed on the device screen to remind the user to charge promptly. When the hard drive is full, a prompt message (such as "Storage Full") can be displayed on the device screen, and the user can be alerted through sound or light. In addition, some old video files can be automatically deleted to free up storage space, or the user can be prompted to manually delete unnecessary files. In the event of a device failure, the user can be alerted through sound or light, and a fault message (such as "Camera Failure" or "Transmission Line Interrupted") can be displayed on the device screen. At the same time, the device can attempt to automatically repair the problem or prompt the user to manually repair it.

[0066] S23, issuing an alert according to the alert method.

[0067] Warning methods may include but are not limited to sound, light, screen display, etc. By issuing warnings to users, users can be reminded to deal with equipment problems in a timely manner to avoid affecting their fishing experience.

[0068] The built-in speaker emits a sound of a specific frequency and volume to alert the user. The sound alert can be set to continuous or intermittent to distinguish different status types. The built-in LED light emits a specific color and flashing frequency to attract the user's attention. Different status types can correspond to different light colors and flashing frequencies. The device displays corresponding prompts or fault information on the screen to provide users with a more intuitive understanding of the device status. On-screen alerts can include text, images, and animations.

[0069] The fishing camera's self-check during standby mode allows for timely detection and resolution of device issues, preventing interruptions to the fishing experience due to issues like device failure, low battery, or full storage. Users can enjoy their fishing while maintaining a constant eye on the device's status and ability to handle any issues. Timely alerts allow users to quickly identify and resolve device issues, avoiding unnecessary trouble caused by neglect or oversight. For example, if the battery is low, users can recharge before departure; if a system error or storage is full, users can perform repairs or cleanup operations before departure.

[0070] In order to prevent the user from forgetting to start the recording function before fishing and missing important scenes, the method may further include:

[0071] When a power-on signal is detected, the recording function is automatically turned on and recording starts automatically after the preset recording time period.

[0072] Users can set the preset recording time period in the settings menu of the fishing camera to adapt to different fishing scenarios and needs.

[0073] During fishing, a fishing camera not only helps users observe the underwater environment in real time, increasing the fun and success rate of fishing, but also allows users to record the wonderful moments of fishing. However, as fishing video recording time increases, the video files recorded by the fishing camera will continue to accumulate, causing the storage space to gradually run out. Therefore, when the hard drive is detected to be full, the method further includes:

[0074] Detect whether the user has selected a target screen recording interaction mode from among multiple preset screen recording interaction modes;

[0075] When it is detected that the user has selected the target screen recording interaction mode, the recording time of each video file in the storage space is obtained;

[0076] Record and automatically overwrite the earliest recording file.

[0077] The fishing camera offers a variety of screen recording interaction modes for users to choose from. Users can select the desired screen recording interaction mode from the preset multiple recording interaction modes through the user interface or the accompanying app. For example, users can choose to stop recording when full or to select loop recording mode.

[0078] While the alert is running, it detects whether the user has selected a target screen recording interaction mode from among multiple preset screen recording interaction modes. The target screen recording interaction mode can be a loop recording mode, and the stop-on-full recording mode is the default mode.

[0079] When the storage space is full, the recording stops and an alert is issued. In this case, the user needs to manually delete some old recording files or transfer them to other storage devices to free up space.

[0080] Loop recording mode means that when the storage space is full, the oldest recorded video file will be automatically overwritten and new video files will be recorded. In loop recording mode, the fishing camera will determine the oldest recorded file based on the recording timestamp or file name of the video file and overwrite it.

[0081] By providing a variety of screen recording interaction modes for users to choose from, it can meet the needs and habits of different users; through the fishing camera's automatic management of storage space, users do not need to worry about insufficient storage space. When the storage space is full, the video files are automatically processed to ensure that users can continue to record new video files, avoiding the regret of missing wonderful moments due to insufficient storage space, and improving the user's fishing experience.

[0082] During fishing activities, using a fishing camera can greatly enhance the fishing experience and record the wonderful moments of fishing. However, due to the special characteristics of the underwater environment, such as insufficient light and turbid water, the quality of underwater video is often affected. Therefore, to ensure the clarity and quality of the video, the method also includes:

[0083] Real-time sensing of the amount of light entering the underwater environment and acquisition of underwater environment data;

[0084] determining a light input threshold according to the underwater environment data;

[0085] Determining whether the amount of light entering the underwater environment is less than the light entering threshold;

[0086] When the amount of light entering the underwater environment is less than the light entering threshold, light compensation is automatically performed.

[0087] The built-in waterproof light sensor can detect the amount of light entering the underwater environment in real time. The underwater light sensing process is continuous, so that the light compensation strategy can be adjusted at any time according to changes in the underwater environment.

[0088] The built-in waterproof pressure sensor can sense water depth, a turbidity sensor (such as the DFR0306) can sense water clarity, and an acoustic Doppler current profiler can sense water velocity. Dual CAN buses can be configured for simultaneous sensor data acquisition.

[0089] The light input threshold is determined based on underwater environmental data (such as water depth, water clarity, water flow speed, etc.) to determine whether light compensation is needed for the fishing camera.

[0090] A fill light is a lamp installed on a fishing camera to provide additional light when the light is insufficient.

[0091] Compare the real-time sensed underwater ambient light level with the determined light level threshold. If the underwater ambient light level is less than the determined light level threshold, the current ambient light level is insufficient and light compensation is required. If the underwater ambient light level is greater than the determined light level threshold, the current ambient light level is sufficient and light compensation is not required.

[0092] Optionally, determining the light input threshold according to the underwater environment data includes:

[0093] Obtaining water depth, water clarity and water flow speed from the underwater environment data;

[0094] The light input threshold is determined according to the water depth, the water clarity and the water flow speed.

[0095] The water depth, water clarity and water flow speed are used as inputs of the preset algorithm or model, and the preset algorithm or model calculates and outputs the light threshold suitable for the current environment. The preset algorithm or model can be a machine learning model trained based on a large amount of experimental data, or a mathematical model derived based on physical principles and empirical formulas.

[0096] Optional, preset algorithms or models are:

[0097] .

[0098] in, Indicates the light input threshold. It represents the basic light input threshold, which is an initial value determined based on experience or experiments, and represents the light input threshold under ideal conditions (such as shallow water, clear water quality, and no water flow). is the water depth influencing factor, is a factor affecting water clarity. is the water flow velocity factor.

[0099] The water depth impact factor is determined based on the water depth and reflects the effect of water depth on the amount of light entering. The deeper the water, the less light enters, so the water depth impact factor is a function that decreases with increasing water depth.

[0100] The water clarity impact factor is determined based on water clarity and reflects the effect of water quality on the amount of light entering. The more turbid the water, the less light enters, so the water clarity impact factor is a function that decreases as water turbidity increases.

[0101] The water velocity impact factor is determined based on water velocity and reflects the effect of water flow on the amount of light entering. Faster water flow may interfere with or refract light, reducing the amount of light entering. Therefore, the water velocity impact factor decreases as water velocity increases.

[0102] The water depth influencing factor, water clarity influencing factor, and water flow velocity influencing factor can be obtained by fitting experimental data, or can be derived based on physical principles and empirical formulas.

[0103] Optional, ,in, It is a preset number, and its unit is the reciprocal of the water depth unit. Used to adjust the degree to which water depth affects the amount of light entering. The deeper the water, the smaller the water depth impact factor and the smaller the light threshold. For example, at 1 meter underwater, the water depth is 1.

[0104] Optional, ,in, It is a preset number, and its unit is the reciprocal of water turbidity. Used to adjust the degree and shape of the effect of water turbidity on light intake. The more turbid the water, the smaller the water clarity factor and the smaller the light intake threshold. Water turbidity is mapped to a range of [0, 1].

[0105] Optional, ,in, It is a preset number, and its unit is the inverse of water flow velocity. Used to adjust the degree to which water flow speed affects the amount of light entering. The faster the water flow speed, the smaller the water flow speed impact factor and the smaller the light entering threshold.

[0106] The above optional implementation method, by comprehensively considering the three underwater environmental factors of water depth, water clarity and water flow speed, can more accurately determine the threshold of light input, thereby more accurately judging whether light compensation is needed, and improving the accuracy and effectiveness of light compensation. Intelligently adjust the light according to the actual situation of the underwater environment to ensure that the recorded video is clear and of high quality.

[0107] In order to achieve the best light compensation effect, optionally, the automatic light compensation includes:

[0108] Controlling the fill light to operate at a first power and / or a first illumination range to perform a first level of light compensation;

[0109] After every preset recording time period, increasing the first power to a second power and / or increasing the first irradiation range to a second irradiation range;

[0110] The fill light is controlled to operate at the second power and / or the second illumination range to perform a second level of light compensation.

[0111] First, the fill light is controlled to operate at a first power (which can be a lower starting power) and / or a first illumination range (which can be a local or narrow range) to perform a first level of light compensation, aiming to initially increase the light brightness of the shooting area while maintaining low energy consumption.

[0112] After every preset recording time period (e.g., every few minutes or according to specific recording content and needs), the fill light's power is increased to a second power (higher than the first power) and / or the illumination range is increased to a second illumination range (wider than the first illumination range). After adjusting the power and illumination range, the fill light is controlled to operate at the new second power and / or second illumination range to provide a second level of light compensation.

[0113] Level 2 light compensation is more intense and extensive than level 1, effectively boosting light levels across the entire recording area to ensure optimal video quality. Furthermore, by increasing power and / or illumination range at predetermined intervals, this progressively enhances the light compensation effect, better adapting to varying underwater environments and ensuring continuous improvement in video quality while minimizing energy consumption.

[0114] During light compensation, the camera continues to monitor the amount of light entering the underwater environment and acquire underwater environmental data in real time. If the amount of light entering the underwater environment increases above the light threshold, the ambient light is bright enough and no further light compensation is required. At this point, the fill light automatically turns off to avoid unnecessary energy consumption and overheating of the fishing camera.

[0115] During light compensation, the fill light power and recording time can be adjusted based on actual conditions to balance video quality and energy consumption. Furthermore, the power management module monitors the remaining battery and issues a warning when the battery is low, prompting the user to charge or disable non-essential functions to conserve power.

[0116] In summary, this application has the following beneficial effects:

[0117] 1. Self-tests are performed in standby mode, breaking through the architectural limitations of traditional systems that rely on dedicated applications to trigger tests.

[0118] 2. When a specific state (low battery, full hard drive, or device failure) is detected, the system identifies the state type and determines the alert method, achieving differentiated early warnings. This provides timely warnings when a specific state is detected, improving alert efficiency and enabling users to identify device issues promptly, preventing them from impacting their fishing experience.

[0119] 3. Provide multiple screen recording interaction modes for users to choose from, allowing users to select the appropriate screen recording method according to their needs, improving the usability of the device.

[0120] 4. Alert users through sound or light, so that users can obtain device status information in a timely manner even when it is inconvenient to check the device.

[0121] 5. Provides fault information for users to view, so that users can understand the fault status of the equipment in a timely manner and handle it.

[0122] Example 2

[0123] Figure 3 This is a structural diagram of the fishing camera interaction device provided in Example 2 of the present application.

[0124] In some embodiments, the fishing camera interaction device 30 may include a plurality of functional modules composed of computer program segments. The computer program of each program segment in the fishing camera interaction device 30 may be stored in the memory of the fishing camera and executed by at least one processor to perform (see Figure 2 Description) Functionality for fishing camera interaction.

[0125] In this embodiment, the fishing camera interactive device 30 can be divided into multiple functional modules based on their functions. These modules may include a self-check module 301, a determination module 302, an alert module 303, an activation module 304, a recording module 305, a compensation module 306, and a shutdown module 307. A module, as used herein, refers to a series of computer program segments that can be executed by at least one processor and perform a fixed function, and is stored in a memory. The functions of each module in this embodiment will be described in detail in subsequent embodiments.

[0126] The self-check module 301 is used to perform a self-check when the fishing camera is in standby mode, and to identify the state type of the specific state when a specific state is detected;

[0127] The determining module 302 is configured to determine a warning method according to the status type;

[0128] The warning module 303 is used to issue a warning according to the warning method;

[0129] The start module 304 is used to automatically start the video recording function when a power-on signal is detected, and automatically start recording after a preset video recording time period.

[0130] The recording module 305 is used to detect whether the user has selected a target screen recording interaction mode from a plurality of preset screen recording interaction modes; when it is detected that the user has selected the target screen recording interaction mode, the recording time of each video file in the storage space is obtained; and the video is recorded and automatically overwritten with the video file with the earliest recording time.

[0131] The compensation module 306 is used to sense the amount of light entering the underwater environment in real time and obtain underwater environment data; determine the light entering threshold based on the underwater environment data; judge whether the light entering the underwater environment is less than the light entering threshold; when the light entering the underwater environment is less than the light entering threshold, automatically perform light compensation.

[0132] The closing module 307 is used to sense the amount of light entering the underwater environment and obtain underwater environment data in real time during the light compensation process; when the amount of light entering the underwater environment is greater than the light entering threshold, the fill light is automatically turned off.

[0133] It should be understood that the various variations and specific embodiments of the fishing camera interaction method provided in the above embodiments are also applicable to the fishing camera interaction device in this embodiment. Through the detailed description of the aforementioned fishing camera interaction method, those skilled in the art can clearly understand the implementation process of the fishing camera interaction device in this embodiment. For the sake of brevity of the specification, it will not be described in detail here.

[0134] Example 3

[0135] This embodiment provides a computer-readable storage medium having a computer program stored thereon. When the computer program is executed by a processor, the steps in the above-mentioned fishing camera interaction method embodiment are implemented, such as Figure 2 S21-S23 shown.

[0136] Alternatively, when the computer program is executed by a processor, the functions of each module / unit in the above-mentioned device embodiment are realized, for example Figure 3 Modules 301-307 in.

[0137] Example 4

[0138] See Figure 4 FIG. 4 is a schematic diagram of the structure of a fishing camera provided in an embodiment of the present application. In a preferred embodiment of the present application, the fishing camera 40 includes a memory 401 , at least one processor 402 , and at least one communication bus 403 .

[0139] Those skilled in the art should understand that Figure 4 The structure of the fishing camera shown does not constitute a limitation of the embodiments of the present application, and can be either a bus structure or a star structure. The fishing camera 40 can also include more or less other hardware or software than shown in the figure, or a different component arrangement.

[0140] In some embodiments, the fishing camera 40 is a device capable of automatically performing numerical calculations and / or information processing according to pre-set or stored instructions. Its hardware includes, but is not limited to, microprocessors, application-specific integrated circuits, programmable gate arrays, digital processors, and embedded devices. The fishing camera 40 may also include a client device, including, but not limited to, any electronic device capable of human-computer interaction via a keyboard, mouse, remote control, touchpad, or voice-controlled device, such as a personal computer, tablet computer, smartphone, or digital camera.

[0141] The fishing camera 40 is only an example. Other existing or future electronic products that are suitable for this application should also be included in the scope of protection of this application and incorporated herein by reference.

[0142] In some embodiments, the memory 401 stores a computer program that, when executed by the at least one processor 402, implements all or part of the steps in the fishing camera interaction method. The memory 401 includes a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), a one-time programmable read-only memory (OTPROM), an electronically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM), or other optical disk storage, magnetic disk storage, magnetic tape storage, or any other computer-readable medium capable of carrying or storing data.

[0143] Furthermore, the computer-readable storage medium may mainly include a program storage area and a data storage area, wherein the program storage area may store an operating system, an application required for at least one function, etc.; the data storage area may store data created according to the use of the blockchain node, etc.

[0144] Blockchain, as referred to in this application, refers to a new application model for computer technologies such as distributed data storage, peer-to-peer transmission, consensus mechanisms, and encryption algorithms. Blockchain is essentially a decentralized database, a series of data blocks generated using cryptographic methods. Each block contains information about a batch of network transactions, which is used to verify the validity of the information (to prevent counterfeiting) and generate the next block. Blockchain can include the underlying blockchain platform, the platform product service layer, and the application service layer.

[0145] In some embodiments, the at least one processor 402 serves as the control core (control unit) of the fishing camera 40. It connects all components of the fishing camera 40 via various interfaces and circuits. It executes programs or modules stored in the memory 401 and accesses data stored in the memory 401 to perform various functions and process data. For example, when executing the computer program stored in the memory, the at least one processor 402 implements all or part of the steps of the fishing camera interaction method described in the embodiments of this application, or implements all or part of the functions of the fishing camera interaction device. The at least one processor 402 can be comprised of an integrated circuit, such as a single packaged integrated circuit or multiple packaged integrated circuits with the same or different functions, including one or more central processing units (CPUs), microprocessors, digital processing chips, graphics processors, and various control chips.

[0146] In some embodiments, the at least one communication bus 403 is configured to implement connection and communication between the memory 401 and the at least one processor 402 .

[0147] Although not shown, the fishing camera 40 may also include a power source (e.g., a battery) to power each component. Preferably, the power source is logically connected to the at least one processor 402 via a power management device, thereby enabling the power management device to manage charging, discharging, and power consumption. The power source may also include one or more DC or AC power sources, a recharging device, a power failure detection circuit, a power converter or inverter, a power status indicator, and other components. The fishing camera 40 may also include various sensors, Bluetooth modules, Wi-Fi modules, and the like, which are not further detailed here.

[0148] The integrated unit implemented as a software functional module can be stored in a computer-readable storage medium. The software functional module stored in the storage medium includes instructions for causing a fishing camera (which can be a personal computer, fishing camera, or network device, etc.) or a processor to execute portions of the method described in each embodiment of the present application.

[0149] In the several embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the module division is only a logical function division, and other division methods may be used in actual implementation.

[0150] The modules described as separate components may or may not be physically separate, and the components shown as modules may or may not be physical units, and may be located in one place or distributed across multiple network elements. Some or all of the modules may be selected to achieve the purpose of this embodiment based on actual needs.

[0151] In addition, each functional module in each embodiment of the present application may be integrated into a processing unit, each unit may exist physically separately, or two or more units may be integrated into a single unit. The above-mentioned integrated units may be implemented in the form of hardware or in the form of hardware plus software functional modules.

[0152] It is obvious to those skilled in the art that the present application is not limited to the details of the above-mentioned exemplary embodiments, and that the present application can be implemented in other specific forms without departing from the spirit or basic characteristics of the present application. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive, and the scope of the present application is defined by the appended claims rather than the above description, and it is intended that all changes that fall within the meaning and scope of the equivalent elements of the claims are included in the present application. Any figure mark in the claims should not be regarded as limiting the claims involved. In addition, it is obvious that the word "including" does not exclude other units or, and the singular does not exclude the plural. Multiple units or devices stated in the specification may also be implemented by one unit or device through software or hardware. Words such as first, second, etc. are used to indicate names and do not indicate any particular order.

[0153] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application and are not intended to limit the present application. Although the present application has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present application may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present application.

Claims

1. A fishing camera interaction method, characterized in that: The method comprises: Performing a self-check when the fishing camera is in standby mode, and identifying a state type of the specific state when a specific state is detected; determining a warning method according to the status type; Providing a warning according to the warning method; The specific state is one of a low power state, a hard disk full state, and a device failure state, wherein the low power state refers to a state where the power is lower than a preset power threshold; The multiple sensors built into the fishing camera sense the amount of light entering the underwater environment in real time and obtain underwater environmental data, including water depth, water clarity and water flow speed; Determining the light input threshold according to the water depth, the water clarity, and the water flow speed; Determining whether the amount of light entering the underwater environment is less than the light entering threshold; When the amount of light entering the underwater environment is less than the light entering threshold, light compensation is automatically performed; The light input threshold is calculated using the following formula: ; Indicates the light input threshold. Indicates the basic light input threshold. is the water depth influencing factor, is a factor affecting water clarity. is a water flow velocity influencing factor; the water depth influencing factor is determined according to the water depth, the water clarity influencing factor is determined according to the water clarity, and the water flow velocity influencing factor is determined according to the water flow velocity; , It is a preset number used to adjust the degree to which the water depth affects the amount of light entering; , is a preset number used to adjust the degree of influence of water turbidity on the amount of light entering. The water clarity influence factor is a function that decreases as the water turbidity increases; , It is a preset number used to adjust the degree to which the water flow speed affects the amount of light entering.

2. The fishing camera interaction method according to claim 1, wherein: When the specific state is the hard disk full state, the method further includes: Detect whether the user has selected a target screen recording interaction mode from among multiple preset screen recording interaction modes; When it is detected that the user has selected the target screen recording interaction mode, the recording time of each video file in the storage space is obtained; Record and automatically overwrite the earliest recording file.

3. The fishing camera interaction method according to claim 1, wherein: The automatic light compensation comprises: Controlling the fill light to operate at a first power and / or a first illumination range to perform a first level of light compensation; After every preset recording time period, increasing the first power to a second power and / or increasing the first irradiation range to a second irradiation range; The fill light is controlled to operate at the second power and / or the second illumination range to perform a second level of light compensation.

4. The fishing camera interaction method according to claim 3, wherein: The method further comprises: During the light compensation process, the amount of light entering the underwater environment is sensed in real time and underwater environment data is obtained; When the amount of light entering the underwater environment is greater than the light entering threshold, the fill light is automatically turned off.

5. The fishing camera interaction method according to claim 4, wherein: The method further comprises: When a power-on signal is detected, the recording function is automatically turned on and recording starts automatically after the preset recording time period.

6. A fishing camera interactive device, characterized in that: The device comprises: A self-check module, configured to perform a self-check when the fishing camera is in standby mode, and identify a state type of the specific state when a specific state is detected; A determination module, configured to determine a warning method according to the status type; An alarm module, configured to issue an alarm according to the alarm method; The specific state is one of a low power state, a hard disk full state, and a device failure state, wherein the low power state refers to a state where the power is lower than a preset power threshold; A compensation module is configured to sense the amount of light entering the underwater environment in real time and obtain underwater environment data through multiple sensors built into the fishing camera, the underwater environment data including water depth, water clarity, and water flow speed; determine the light entry threshold based on the water depth, water clarity, and water flow speed; determine whether the amount of light entering the underwater environment is less than the light entry threshold; and automatically perform light compensation when the amount of light entering the underwater environment is less than the light entry threshold; The light input threshold is calculated using the following formula: ; Indicates the light input threshold. Indicates the basic light input threshold. is the water depth influencing factor, is a factor affecting water clarity. is a water flow velocity influencing factor; the water depth influencing factor is determined according to the water depth, the water clarity influencing factor is determined according to the water clarity, and the water flow velocity influencing factor is determined according to the water flow velocity; , It is a preset number used to adjust the degree to which the water depth affects the amount of light entering; , is a preset number used to adjust the degree of influence of water turbidity on the amount of light entering. The water clarity influence factor is a function that decreases as the water turbidity increases; , It is a preset number used to adjust the degree to which the water flow speed affects the amount of light entering.

7. A fishing camera, characterized in that: The fishing camera includes a processor and a memory, and the processor is configured to implement the fishing camera interaction method according to any one of claims 1 to 5 when executing a computer program stored in the memory.

8. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the fishing camera interaction method according to any one of claims 1 to 5 is implemented.

Citation Information

Patent Citations

  • Camera system and method for controlling a plurality of cameras

    CN106686303A

  • Underwater shooting method and device and electronic equipment

    CN119562157A

  • A visual fishing device

    CN202160545U