Monitoring system

By combining the layout of the first and second monitoring devices and adjusting the controller signals, the problems of coverage blind spots and complex installation in traditional monitoring systems have been solved, achieving comprehensive, safe, and convenient monitoring.

CN223843847UActive Publication Date: 2026-01-27EAPIL
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Patent Information

Application Number
CN202520146167.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-22
Publication Date
2026-01-27
Estimated Expiration
2035-01-22

AI Technical Summary

Technical Problem

Traditional monitoring systems suffer from blind spots, complex installation, and inconvenient management, making it difficult to meet modern users' needs for comprehensive, secure, and convenient monitoring.

Method used

The system employs a combined layout of first and second monitoring devices, including a first, second, and third camera set in a co-linear configuration. The second and third cameras monitor a non-overlapping semi-circular area. The system is combined with a controller for signal transmission and field of view adjustment, and is equipped with fisheye and pan-tilt cameras to enhance monitoring coverage and clarity.

Benefits of technology

It achieves more comprehensive monitoring coverage, reduces blind spots, adapts to different monitoring needs and environmental changes, and provides convenient monitoring management and interactive functions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a monitoring system, and relates to the technical field of monitoring. The monitoring system comprises a first monitoring device, a second monitoring device and a controller. The controller is electrically connected with the first monitoring equipment and the second monitoring equipment; the first monitoring equipment comprises a first camera, a second camera and a third camera; the second camera and the third camera are collinear, and the first camera, the second camera and the third camera are non-collinear; the second camera and the third camera are configured to monitor two non-overlapped semicircular areas with the same size to form a monitoring view field of the first monitoring equipment; the first camera is configured to improve the definition of an image obtained in a monitoring view field of the first monitoring equipment; the second monitoring equipment comprises a fourth camera; the fourth camera provides a view field of the hemispherical space to form a monitoring view field of the second monitoring equipment; wherein the monitoring field of view of the first monitoring device and the monitoring field of view of the second monitoring device are adjusted according to a control signal of the controller.
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Description

Technical Field

[0001] This application relates to the field of surveillance technology, and more specifically, to a surveillance system. Background Technology

[0002] With the development of smart home and smart security technologies, consumers' demand for security monitoring in homes and commercial spaces is increasing. Traditional monitoring systems suffer from problems such as blind spots, complex installation, and inconvenient management.

[0003] Specifically, complex terrain and numerous obstructions (such as buildings and trees) may prevent cameras from fully covering the area to be monitored. Different scenarios and needs require the selection of appropriate equipment. At the same time, factors such as the installation location, angle, and height of the equipment also affect the monitoring effect. Some large-scale monitoring systems are often built in phases, and the equipment used in the construction process is not consistent. Multiple brands and models of equipment make centralized management of monitoring difficult. These problems make it difficult for traditional monitoring systems to meet the needs of modern users for comprehensive, secure, and convenient monitoring. Utility Model Content

[0004] In view of this, the purpose of this application is to provide a monitoring system to improve the problems of numerous coverage blind spots, complex installation, and unintelligent management in the prior art.

[0005] The monitoring system includes: a first monitoring device, a second monitoring device, and a controller; the controller is electrically connected to the first monitoring device and the second monitoring device; the first monitoring device includes: a first camera, a second camera, and a third camera; the second camera and the third camera are colinearly arranged, while the first camera is not colinearly arranged with respect to the second and third cameras; the second camera and the third camera are configured to monitor two non-overlapping semi-circular areas of the same size to form the monitoring field of view of the first monitoring device; the first camera is configured to improve the clarity of the image obtained in the monitoring field of view of the first monitoring device; the second monitoring device includes: a fourth camera; the fourth camera provides a field of view in a hemispherical space to form the monitoring field of view of the second monitoring device; wherein, the monitoring field of view of the first monitoring device and the monitoring field of view of the second monitoring device are adjusted according to the control signal of the controller.

[0006] In the above implementation process, the controller is electrically connected to the first and second monitoring devices, ensuring smooth signal transmission and command issuance. The first monitoring device is equipped with three cameras: a first camera, a second camera, and a third camera. The second and third cameras are coaxially arranged, while the first camera is non-coaxially arranged. The second and third cameras are configured to monitor two non-overlapping semi-circular areas, which together constitute the monitoring field of view of the first monitoring device. This layout helps to achieve more comprehensive monitoring coverage. Based on the control signals issued by the controller, the monitoring fields of view of the first and second monitoring devices can be dynamically adjusted to adapt to different monitoring needs and environmental changes, meeting the needs of modern users for comprehensive, secure, and convenient monitoring.

[0007] Optionally, the first monitoring device further includes a first mounting part; the second monitoring device further includes a second mounting part; the first mounting part is configured to be installed in a first structure in the space so that the monitoring field of view of the first monitoring device covers the key monitoring area; the second mounting part is configured to be installed in a second structure in the space so that the monitoring field of view of the second monitoring device faces the monitoring area not covered by the field of view of the first monitoring device.

[0008] In the above implementation process, the first monitoring device includes a first mounting section, and the second monitoring device includes a second mounting section. These mounting sections are used to securely install the devices in specific locations to monitor key monitoring areas, which may include entrances / exits, valuables storage areas, or other areas requiring special attention. The first mounting section is configured to install the first monitoring device in a first structure of the space, and the second mounting section is configured to install the second monitoring device in a second structure of the space. The monitoring fields of view of the first and second monitoring devices are complementary and do not overlap, thus maximizing monitoring coverage while avoiding resource waste.

[0009] Optionally, the monitoring system further includes: a third monitoring device; the third monitoring device is electrically connected to the first monitoring device and the second monitoring device; the third monitoring device includes: a screen and a fifth camera; the fifth camera is configured to monitor a fan-shaped area directly opposite its placement position; the screen is configured to display interactive content; wherein the interactive content includes: monitoring information and communication information.

[0010] In the above implementation, the monitoring system optionally includes a third monitoring device electrically connected to the first and second monitoring devices to transmit data and control signals. The third monitoring device includes a screen and a fifth camera. The fifth camera is configured to monitor a fan-shaped area directly opposite its placement location, which helps to cover a specific area, particularly areas outside the field of view of the first and second monitoring devices. The screen of the third monitoring device is used to display interactive content, including monitoring information and communication information. This allows users to directly access key monitoring data and interact with the system from the screen. The third monitoring device needs to be installed in a location that covers the desired fan-shaped area while ensuring the screen is easily accessible and viewable by the user.

[0011] Optionally, the first monitoring device is installed in a ring around the center point of the space within the first structure and the second structure via the first mounting part and the second monitoring device via the second mounting part.

[0012] In the above implementation process, a circular layout of the monitoring equipment is planned, ensuring that the first and second monitoring devices are evenly distributed around the center point of the space. First and second structures within the space are determined; these structures can be walls, columns, or other fixed structures, used to install the monitoring equipment. First and second mounting parts are used to adapt to the installation conditions of the first and second structures, including their shape, material, and load-bearing capacity. The first and second monitoring devices are installed within the first and second structures using their respective mounting parts, ensuring they are evenly distributed around the center point.

[0013] Optionally, the monitoring system is installed in a residence; the first monitoring device is installed in a first structure in the middle of the first and second walls of the residence space via a first mounting part, and the second monitoring device is installed in the middle of the third and fourth walls of the residence via a second mounting part; wherein the first and second walls are parallel, and the third and fourth walls are parallel.

[0014] In the above implementation process, based on the specific locations of the first, second, third, and fourth walls in the spatial layout of the residence, and their relative relationships, suitable walls for installing the first and second monitoring devices are selected according to the layout of the residence and monitoring requirements. The specific locations of the first and second structural members are determined; these structures can be fixed points on the walls or pre-set mounting brackets. The first and second mounting parts are used to adapt to the wall structure and ensure stable installation of the equipment. The first monitoring device is installed in the middle of the first and second walls via the first mounting part, and the second monitoring device is installed in the middle of the third and fourth walls via the second mounting part.

[0015] Optionally, the monitoring system is installed in a commercial setting; the first monitoring device is installed in the middle and corners of the wall via a first mounting part, covering areas where people congregate; the second monitoring device is installed on the wall not covered by the first monitoring device via a second mounting part.

[0016] In the above implementation process, based on the layout of the commercial scenario, key monitoring points such as areas with high concentrations of people, entrances and exits, and cashier areas need to be monitored. According to the layout of the commercial scenario and monitoring requirements, suitable locations are selected in the middle and corners of the wall for installing the first monitoring device. Simultaneously, suitable structures for installing both the first and second monitoring devices are identified; these structures can be fixed points on the wall or pre-designed mounting brackets. The first and second mounting parts are used to adapt to the wall structure and ensure stable installation of the equipment. The first monitoring device is installed in the middle and corners of the wall using the first mounting part to cover areas with high concentrations of people. The second monitoring device is installed on the wall not covered by the first monitoring device using the second mounting part to achieve comprehensive monitoring coverage.

[0017] Optionally, the first camera includes a PTZ camera and a rotating base; the rotating base is configured to drive the PTZ camera to rotate, and the PTZ camera acquires a monitoring field of view during the rotation.

[0018] In the above implementation process, a suitable pan-tilt camera is selected, capable of rotating both horizontally and vertically to provide a wider monitoring field of view. A rotating base is used to support the pan-tilt camera, allowing it to rotate smoothly and flexibly. The pan-tilt camera is mounted on the rotating base, enabling seamless rotational movement through integration. The rotation range of the pan-tilt camera is determined, typically 360 degrees horizontally and more than 90 degrees vertically, to cover as much area as possible. A control mechanism is implemented so that the pan-tilt camera can rotate according to a preset path or remote commands.

[0019] Optionally, the second camera, the third camera, and the fourth camera are fisheye cameras.

[0020] In the above implementation process, fisheye cameras with high resolution and wide field of view are selected to achieve monitoring of a large area. The installation locations of the fisheye cameras are planned so that they can cover the required monitoring area, while taking into account their overlapping fields of view.

[0021] Optionally, the second monitoring device includes a third mounting section; the third mounting section is configured to be suspended and installed at the top of the space.

[0022] In the above process, the third installation unit can securely suspend the second monitoring equipment at the top of the space, determine the best position for suspending the second monitoring equipment to achieve the best monitoring field of view coverage, and at the same time consider the aesthetics and concealment of the suspending.

[0023] Optionally, the second monitoring device includes a fourth mounting part; the fourth mounting part is configured to be embedded in the wall.

[0024] In the above process, the fourth mounting part enables it to fit tightly against the wall while protecting the second monitoring device from damage.

[0025] The monitoring system provided in this application electrically connects to the first and second monitoring devices via a controller, ensuring smooth signal transmission and command issuance. By using a first, second, and third camera, with the second and third cameras colinearly positioned while the first camera is non-colinearly positioned, the second and third cameras are configured to monitor two non-overlapping semi-circular areas. These two areas together constitute the monitoring field of view of the first monitoring device, facilitating more comprehensive monitoring coverage. Furthermore, the monitoring system provided in this application allows for dynamic adjustment of the monitoring fields of view of the first and second monitoring devices based on control signals issued by the controller, adapting to different monitoring needs and environmental changes, thus meeting the modern user's demand for comprehensive, secure, and convenient monitoring. Attached Figure Description

[0026] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments of this application will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0027] Figure 1 A schematic diagram of a monitoring system provided in an embodiment of this application;

[0028] Figure 2 This application provides an installation diagram of a monitoring system according to an embodiment of the present application.

[0029] Figure 3 The connection relationship of the third monitoring device provided in the embodiments of this application;

[0030] Figure 4 This is a schematic diagram of the installation of the second monitoring device provided in an embodiment of this application;

[0031] Figure 5 This is another installation diagram of the second monitoring device provided in the embodiments of this application;

[0032] Figure 6 A schematic diagram of a monitoring system installed in a residence, provided as an embodiment of this application;

[0033] Figure 7 A schematic diagram of a monitoring system installed in a commercial setting, provided as an embodiment of this application;

[0034] Icons: 000 - Controller; 010 - First Structure; 020 - Second Structure; 100 - First Monitoring Equipment; 110 - First Camera; 120 - Second Camera; 130 - Third Camera; 140 - First Mounting Unit; 200 - Second Monitoring Equipment; 210 - Fourth Camera; 220 - Second Mounting Unit; 230 - Third Mounting Unit; 240 - Fourth Mounting Unit; 300 - Third Monitoring Equipment; 310 - Screen; 320 - Fifth Camera. Detailed Implementation

[0035] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of the embodiments of this application.

[0036] Please see Figure 1 , Figure 1 This is a schematic diagram of a monitoring system provided in an embodiment of this application. The monitoring system includes: a first monitoring device 100, a second monitoring device 200, and a controller 000; the controller 000 is electrically connected to the first monitoring device 100 and the second monitoring device 200; the first monitoring device 100 includes: a first camera 110, a second camera 120, and a third camera 130; the second camera 120 and the third camera 130 are co-linearly configured, while the first camera 110 is not co-linearly configured with respect to the second camera 120 and the third camera 130; the second camera 120 and the third camera 130... The first monitoring device 100 is configured to monitor two non-overlapping semi-circular areas of the same size to form a monitoring field of view; the first camera 110 is configured to improve the clarity of the images obtained in the monitoring field of view of the first monitoring device 100; the second monitoring device 200 includes a fourth camera 210; the fourth camera 210 provides a field of view of a hemispherical space to form a monitoring field of view of the second monitoring device 200; wherein the monitoring field of view of the first monitoring device 100 and the monitoring field of view of the second monitoring device 200 are adjusted according to the control signal of the controller 000.

[0037] In the above implementation process, based on the specific conditions of the monitored area and the monitoring requirements, the layout of the first monitoring device 100 and the second monitoring device 200 is planned. Then, an electrical connection is established between the controller 000 and the first monitoring device 100 and the second monitoring device 200. Appropriate first monitoring device 100 (containing three cameras with specific configurations) and second monitoring device 200 (containing a camera providing a hemispherical field of view), as well as a controller 000 capable of controlling these devices, are selected to achieve the best monitoring effect. The first monitoring device 100 is installed, while the second camera 120 and the third camera 130 are arranged collinearly, covering two non-overlapping hemispherical areas. The first camera 110 is configured in a non-collinear position to enhance image clarity. The second monitoring device 200 is installed so that the fourth camera 210 can provide a hemispherical field of view.

[0038] In one embodiment of this application, existing intelligent algorithms, such as automatic tracking and VR panoramic imaging, are utilized to improve monitoring efficiency and coverage, and reduce blind spots. Through an AI processor and algorithms, camera images are converted into text information for interpretation by language models such as ChatGPT, enabling more intelligent monitoring management. Depending on the specific needs of residential or commercial scenarios, the first monitoring device 100 and the second monitoring device 200 are installed in suitable locations via their mounting parts to achieve optimal monitoring results.

[0039] In one embodiment of this application, traditional infrared sensing or manual control methods can be introduced into the camera channel of the image monitoring system to enhance the capabilities of the image monitoring system by utilizing its ability to sense the minute infrared rays emitted by moving human bodies.

[0040] In one embodiment of this application, the first camera 110 includes a PTZ camera and a rotating base; the rotating base is configured to drive the PTZ camera to rotate, and the PTZ camera acquires the monitoring field of view during the rotation.

[0041] In the above implementation process, a pan-tilt camera with high-quality image capture capabilities and a wide rotation range is selected to meet the monitoring field of view requirements. A rotating base is used to stably support the pan-tilt camera and allow for omnidirectional rotation. Integrating the pan-tilt camera with the rotating base allows the camera to rotate horizontally and vertically under the base's influence. The rotation range of the pan-tilt camera is configured, typically including 360-degree horizontal rotation and a certain angle of vertical rotation to achieve maximum monitoring coverage. The control systems of the pan-tilt camera and rotating base are integrated with the main controller 000 of the monitoring system to achieve remote control and automated monitoring.

[0042] In one embodiment of this application, the second camera 120, the third camera 130, and the fourth camera 210 are fisheye cameras.

[0043] In the above implementation process, suitable fisheye cameras are selected so that they can provide the required field of view coverage and image quality. The installation locations of the fisheye cameras are planned so that they can cover the expected monitoring area, while taking into account their field of view overlap and blind spots.

[0044] Please see Figure 2 , Figure 2 This is an installation diagram of a monitoring system provided in an embodiment of this application.

[0045] Optionally, the first monitoring device 100 further includes a first mounting part 140; the second monitoring device 200 further includes a second mounting part 220; the first mounting part 140 is configured to be installed in a first structure 010 in space so that the monitoring field of view of the first monitoring device 100 covers the key monitoring area; the second mounting part 220 is configured to be installed in a second structure 020 in space so that the monitoring field of view of the second monitoring device 200 faces the monitoring area not covered by the field of view of the first monitoring device 100.

[0046] In the above implementation process, the first structure 010 and the second structure 020 within the space are identified and evaluated. These may be walls, columns, or other fixed structures to determine their suitability for installing the first monitoring device 100 and the second monitoring device 200. The first mounting part 140 and the second mounting part 220 are used to ensure they are securely mounted on their respective structures and can withstand the weight of the monitoring equipment and vibrations during operation. The installation location of the second monitoring device 200 is selected so that its field of view covers areas not covered by the first monitoring device 100, achieving complementary monitoring ranges. The first monitoring device 100 and the second monitoring device 200 are then actually installed, using the first mounting part 140 and the second mounting part 220 to fix them in the predetermined positions. The fields of view of the first monitoring device 100 and the second monitoring device 200 are adjusted so that they cover the expected area without overlap or blind spots between their fields of view.

[0047] Please see Figure 3 , Figure 3 The connection relationship of the third monitoring device 300 provided in the embodiments of this application.

[0048] Optionally, the monitoring system further includes: a third monitoring device 300; the third monitoring device 300 is electrically connected to the first monitoring device 100 and the second monitoring device 200; the third monitoring device 300 includes: a screen 310 and a fifth camera 320; the fifth camera 320 is configured to monitor a fan-shaped area directly opposite its placement position; the screen 310 is configured to display interactive content; wherein, the interactive content includes: monitoring information and communication information.

[0049] In the above implementation process, the third monitoring device 300 serves as a supplementary device, providing an interactive interface through the screen 310 and monitoring a specific area through the fifth camera 320. Based on monitoring requirements and the site environment, the optimal installation location of the third monitoring device 300 is determined, ensuring that the fifth camera 320 can effectively cover the predetermined fan-shaped area, while the screen 310 facilitates user interaction.

[0050] In one embodiment of this application, the third monitoring device 300 may adopt a miniaturized design structure. For example, it may use a spherical camera with a diameter of 30mm to 50mm, preferably including diameters of 30mm, 33mm, 40mm, 45mm, and 50mm to adapt to different application scenarios, or allow users to choose according to their preferences. Furthermore, the third monitoring device 300 may support embedded or hanging installations to improve its surface mounting flexibility. Preferably, the third monitoring device 300 may use a hemispherical panoramic lens and an integrated gyroscope sensor. Based on the installation flexibility of the third monitoring device 300, its installation location is planned to cover areas not covered by the first monitoring device 100 and the second monitoring device 200.

[0051] Please see Figure 4 and Figure 5 , Figure 4 An installation diagram of the second monitoring device 200 provided in an embodiment of this application; Figure 5 This is another installation diagram of the second monitoring device 200 provided in the embodiments of this application.

[0052] Optionally, the second monitoring device 200 includes a third mounting section 230; the third mounting section 230 is configured to be suspended and installed at the top of the space.

[0053] In the above implementation process, the third mounting unit 230 can stably suspend the second monitoring device 200 at the top of the space, while considering the aesthetics and concealment of the suspension. Configuring the third mounting unit 230 includes selecting suitable hoisting hardware (such as wire ropes, chains, pulleys, etc.) and ensuring the stability and durability of the hoisting system. The optimal hoisting position for the second monitoring device 200 is determined to achieve the best monitoring field of view coverage, while also taking into account other structures and equipment within the space.

[0054] Optionally, the second monitoring device 200 includes a fourth mounting part 240; the fourth mounting part 240 is configured to be embedded in the wall.

[0055] In the above-mentioned process, the fourth mounting part 240 can be tightly integrated with the wall while protecting the second monitoring device 200 from damage.

[0056] Please see Figure 6 and Figure 7 , Figure 6A schematic diagram of a monitoring system installed in a residence, provided as an embodiment of this application; Figure 7 This is a schematic diagram of a monitoring system installed in a commercial setting, as provided in an embodiment of this application.

[0057] Optionally, the first monitoring device 100 is installed in a ring around the center point of the space via the first mounting part 140 and the second monitoring device 200 via the second mounting part 220, within the first structure 010 and the second structure 020.

[0058] In the above implementation process, based on the spatial geometry and monitoring requirements, a ring-shaped layout of the first monitoring device 100 and the second monitoring device 200 around a central point is planned. The first structure 010 and the second structure 020 within the space are identified; these may be columns, walls, or other load-bearing structures suitable for installing the monitoring equipment. The first mounting part 140 and the second mounting part 220 are used to adapt to different structures and to stably support the monitoring equipment. The number and distribution of the monitoring equipment are calculated to ensure effective monitoring of the entire ring-shaped area while avoiding blind spots.

[0059] In one embodiment of this application, the monitoring system is installed in a residence; a first monitoring device 100 is installed via a first mounting part 140 within a first structure 010 located between the first and second walls of the residence, and a second monitoring device 200 is installed via a second mounting part 220 located between the third and fourth walls of the residence; wherein the first and second walls are parallel, and the third and fourth walls are parallel. Placing one third monitoring device 300 in each of two different locations provides flexible intelligent assistant functions, records precious family moments, and enables convenient connection between devices.

[0060] In the above implementation process, based on the internal layout of the residence, the specific locations of the first, second, third, and fourth walls, as well as their relative relationships, are determined. According to the residence's layout and monitoring requirements, suitable walls for installing the first monitoring device 100 and the second monitoring device 200 are selected. The specific locations of the first structure 010 and the second structure 020 are determined; these structures can be fixed points on the walls or pre-set mounting brackets. The first monitoring device 100 is installed in the middle of the first and second walls via the first mounting part 140, and the second monitoring device 200 is installed in the middle of the third and fourth walls via the second mounting part 220, so that it can cover the entire residential space while avoiding overlapping monitoring areas and eliminating blind spots.

[0061] In one embodiment of this application, the monitoring system is installed in a commercial setting. A first monitoring device 100 is installed on the middle and corners of a wall via a first mounting part 140, covering areas where people congregate. A second monitoring device 200 is installed on a wall not covered by the first monitoring device 100 via a second mounting part 220. The first monitoring device 100 is installed in key areas such as counters, tables, and the kitchen to ensure effective monitoring of these areas. The second monitoring device 200 is installed in non-key areas to meet the monitoring needs of secondary areas. A third monitoring device 300 is placed at the commercial counter or in the owner's office for convenient management of the entire monitored area.

[0062] In the above implementation process, based on the security requirements of the business scenario, areas with concentrated personnel activity and areas requiring additional monitoring are identified. Suitable wall sections and corners for installing the first monitoring device 100, as well as other suitable wall sections for installing the second monitoring device 200, are selected. The first mounting part 140 and the second mounting part 220 are used to adapt to different wall conditions and stably support the monitoring equipment. The distribution of the first monitoring device 100 is planned to cover all areas with concentrated personnel activity, while the distribution of the second monitoring device 200 is planned to cover the remaining areas. Considering the dynamic changes in the business scenario, such as fluctuations in customer traffic, the configuration of the monitoring equipment is adjusted to adapt to different monitoring needs.

[0063] In one embodiment of this application, the first monitoring device 100 can cover a circular area with a radius of 10 meters, the second monitoring device 200 covers an area with a radius of 10 meters and a 180-degree radius directly in front, and the third monitoring device 300, as an intelligent assistant device, has the ability to be flexibly deployed and is mainly used to record life and provide device interaction and connection functions.

[0064] The monitoring system provided in this application electrically connects to the first and second monitoring devices via a controller, ensuring smooth signal transmission and command issuance. By using a first, second, and third camera, with the second and third cameras colinearly positioned while the first camera is non-colinearly positioned, the second and third cameras are configured to monitor two non-overlapping semi-circular areas. These two areas together constitute the monitoring field of view of the first monitoring device, facilitating more comprehensive monitoring coverage. Furthermore, the monitoring system provided in this application allows for dynamic adjustment of the monitoring fields of view of the first and second monitoring devices based on control signals issued by the controller, adapting to different monitoring needs and environmental changes, thus meeting the modern user's demand for comprehensive, secure, and convenient monitoring.

[0065] In summary, it should be understood from the several embodiments provided in this application that the disclosed device can also be implemented in other ways. The device embodiments described above are merely illustrative; for example, the block diagrams in the accompanying drawings show the possible architecture, functions, and operations of the device according to various embodiments of this application. In this regard, each block in the block diagram may represent a module, segment, or portion of code containing one or more executable instructions for implementing the specified logical function. It should also be noted that in some alternative implementations, the functions marked in the blocks may occur in a different order than those marked in the drawings. For example, two consecutive blocks may actually be executed substantially in parallel, or they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagram, and combinations of block diagrams, can be implemented using a dedicated hardware-based system that performs the specified function or action, or using a combination of dedicated hardware and computer instructions.

[0066] In addition, the functional modules in the various embodiments of this application can be integrated together to form an independent part, or each module can exist independently, or two or more modules can be integrated to form an independent part.

[0067] The above description is merely an embodiment of this application and is not intended to limit the scope of protection of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of this application. It should be noted that similar reference numerals and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0068] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

Claims

1. A monitoring system, the monitoring system comprising: First monitoring equipment, second monitoring equipment, and controller; The controller is electrically connected to the first monitoring device and the second monitoring device; The first monitoring device includes: a first camera, a second camera, and a third camera; the second camera and the third camera are arranged in a coaxial configuration, while the first camera is not arranged in a coaxial configuration with the second camera and the third camera. The second and third cameras are configured to monitor two non-overlapping semi-circular areas of the same size to form the monitoring field of view of the first monitoring device; the first camera is configured to improve the clarity of the image obtained in the monitoring field of view of the first monitoring device. The second monitoring device includes: a fourth camera; the fourth camera provides a field of view in a hemispherical space to form the monitoring field of view of the second monitoring device; The monitoring field of view of the first monitoring device and the monitoring field of view of the second monitoring device are adjusted according to the control signal of the controller.

2. The monitoring system according to claim 1, characterized in that, The first monitoring device further includes: a first mounting unit; the second monitoring device further includes: a second mounting unit; The first mounting part is configured to be installed in a first structure in space so that the monitoring field of view of the first monitoring device covers the key monitoring area; The second mounting part is configured to be installed in a second structure in space so that the monitoring field of view of the second monitoring device faces the monitoring area not covered by the field of view of the first monitoring device.

3. The monitoring system according to claim 1, characterized in that, The monitoring system also includes: a third monitoring device; The third monitoring device is electrically connected to the first and second monitoring devices; the third monitoring device includes a screen and a fifth camera; the fifth camera is configured to monitor a fan-shaped area directly opposite its placement position; the screen is configured to display interactive content; The interactive content includes monitoring information and communication information.

4. The monitoring system according to claim 2, characterized in that, The first monitoring device is installed in a ring around the center point of the space, and the second monitoring device is installed in a ring around the center point of the space, within the first structure and the second structure.

5. The monitoring system according to claim 2, characterized in that, The monitoring system is installed in the residence; The first monitoring device is installed in a first structure located in the middle of the first and second walls of the residential space via a first mounting part, and the second monitoring device is installed in the middle of the third and fourth walls of the residential space via a second mounting part; wherein the first and second walls are parallel, and the third and fourth walls are parallel.

6. The monitoring system according to claim 1, characterized in that, The monitoring system is installed in a commercial setting; The first monitoring device is installed in the middle and corners of the wall via a first mounting part, covering areas where people gather; the second monitoring device is installed on the wall not covered by the first monitoring device via a second mounting part.

7. The monitoring system according to claim 1, characterized in that, The first camera includes a PTZ camera and a rotating base; the rotating base is configured to drive the PTZ camera to rotate, and the PTZ camera acquires the monitoring field of view during the rotation.

8. The monitoring system according to claim 1, characterized in that, The second camera, the third camera, and the fourth camera are fisheye cameras.

9. The monitoring system according to claim 1, characterized in that, The second monitoring device includes a third mounting section; the third mounting section is configured to be suspended and installed at the top of the space.

10. The monitoring system according to claim 1, characterized in that, The second monitoring device includes a fourth mounting part; the fourth mounting part is configured to be embedded in the wall.