Artificial intelligence service platform based on Internet of Things
By installing local monitoring entities with integrated multifunction modules on financial objects, using IoT technology to realize intelligent positioning monitoring and remote dynamic management of objects, the problems of low efficiency and poor reliability of traditional manual monitoring are solved, and the security and efficiency of physical security monitoring are improved.
Patent Information
- Application Number
- CN202421889143.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-06
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-08-06
AI Technical Summary
Traditional physical safety monitoring relies on manual labor, has low efficiency, poor results, and is prone to errors and omissions, which cannot meet the needs of strict monitoring during financial physical management, transportation and handling.
Using an artificial intelligence service platform based on the Internet of Things, the local monitoring subject is installed on the physical object, and the functional modules such as impact sensors, inclination sensors, Beidou satellite positioning modules are integrated to realize intelligent positioning monitoring of the physical object, and the monitoring information is sent simultaneously to the remote monitoring terminal.
The safety, visibility and efficiency of the physical security monitoring process have been improved, and all-round and full-process dynamic supervision and intelligent allocation and escort are achieved for physical objects such as precious metals and cash boxes.
Smart Images

Figure CN222868937U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of Internet of Things financial security systems, and in particular to an artificial intelligence service platform based on the Internet of Things. Background Art
[0002] In the financial field, the management, transportation and handling of physical objects such as precious metals, cash boxes, trunks, money boxes, money bags, heavy and empty vouchers, etc. need to be strictly monitored to prevent accidents. Traditional physical security monitoring work mostly relies on manual work, but this monitoring method consumes a lot of labor resources, has low efficiency and poor effect, and manual monitoring is often prone to errors. Therefore, it is necessary to find a better financial physical security monitoring method.
[0003] With the rapid development of Internet of Things technology, smart security monitoring has been widely used in various industries. Through the interaction between managers and security monitoring terminals, intelligent information management of the security monitoring process can be realized, which can effectively improve the safety, visibility and efficiency of physical monitoring. Utility Model Content
[0004] The purpose of the utility model is to provide an artificial intelligence service platform based on the Internet of Things to address the deficiencies of the existing technology. The local monitoring body is installed on the physical object. Through multiple functional modules integrated in the local monitoring body, the intelligent positioning monitoring of physical objects such as precious metals, cash boxes, tail boxes, money boxes, and purses can be realized, and the monitoring information can be synchronously sent to the remote monitoring terminal, so as to facilitate the management personnel to conduct all-round and full-process dynamic supervision and intelligent allocation and escort of the physical objects, thereby improving the safety, visibility and efficiency of the physical security monitoring process.
[0005] In order to achieve the above purpose, the utility model adopts the following technical solutions:
[0006] An artificial intelligence service platform based on the Internet of Things includes a local monitoring body and a remote monitoring terminal. The local monitoring body is composed of a double-layer black box and functional modules installed therein. The double-layer black box is divided into an upper monitoring layer and a lower functional layer by a partition. The monitoring layer is fixedly installed with an impact force sensor, an inclination sensor and a Beidou satellite positioning module on the partition from left to right in sequence. The functional layer is fixedly installed with an Internet of Things communication module and a memory module, a voltage-stabilized power supply module and a central processing unit module on a bottom plate from left to right in sequence. Each functional module on the monitoring layer is connected to the central processing unit module and the voltage-stabilized power supply module respectively through cables, and the Internet of Things communication module and the memory module are electrically connected to the central processing unit module and the voltage-stabilized power supply module respectively; the remote monitoring terminal is communicatively connected with the Internet of Things communication module.
[0007] In the above technical scheme, the impact force sensor and the inclination sensor are used to monitor the posture of the physical object in real time, and to promptly remind the management personnel to check and adjust when the inclination of the physical object is too large or it is impacted, so as to avoid damage to the physical object; the Beidou satellite positioning module is used for real-time positioning of the physical object; the Internet of Things communication module is used for wireless communication between the local monitoring subject and the remote monitoring terminal; the memory module is used to store the data monitored by the functional modules of the monitoring layer; the voltage-stabilized power supply module is used to power the functional modules; the central processing unit module is used to receive and process the data monitored by the functional modules of the monitoring layer, and then output more intuitive monitoring data, and intelligently control the data reception and transmission of the Internet of Things communication module. The central processing unit module is also preset with the alarm threshold of the impact force sensor and the inclination sensor. When the received monitoring values of the impact force sensor and the inclination sensor are greater than the alarm threshold, an alarm will be issued in time to remind the management personnel to check and adjust, so as to avoid damage to the physical object.
[0008] The double-layer black box includes a bottom plate, a partition, a top plate, a baffle and a connecting rod. A threaded mounting hole is opened in the center of the top surface of the upper and lower ends of the connecting rod, and a sliding groove is opened on the two adjacent side surfaces of the connecting rod; the four corners of the partition are fixed with stud bolts, and the stud bolts are respectively screwed with a connecting rod on the upper and lower sides of the partition. The two ends of the baffle are respectively inserted into the sliding grooves on the opposite sides of the two adjacent connecting rods. The connecting rods located on the upper and lower sides of the partition are fixedly connected to the four corners of the top plate and the bottom plate by hexagon socket bolts at the end away from the partition.
[0009] Specifically, the double-layer black box also includes a sensor mounting plate, which is an L-shaped plate and is vertically fixed on the partition. The two support plates of the sensor mounting plate are respectively parallel to the two adjacent baffles of the double-layer black box, and an impact force sensor is fixedly installed on each of the inner sides of the two support plates of the sensor mounting plate.
[0010] Furthermore, the bottom plate and the partition are provided with cable troughs corresponding to the routing of cables of each functional module; the baffles on the front and rear sides of the double-layer black box are provided with heat dissipation slots; and mounting ears are fixedly connected to both sides of the bottom plate, and a circular hole is provided in the center of the mounting ears.
[0011] It should be noted that the above technical solution is aimed at physical objects that can have threaded holes, such as cash boxes, trunk boxes, money boxes, etc. For physical objects such as precious metals and purses that are not convenient to open holes, the local monitoring body can be placed on the physical object by gluing or other methods.
[0012] Furthermore, a charging interface is fixedly installed at a corner of a baffle on one side below the double-layer black box, and the charging interface is electrically connected to a voltage-stabilizing power supply module.
[0013] Preferably, the functional module also includes a laser alarm. There are two laser alarms, which are fixedly installed on the bottom plate and one side edge of the partition respectively. The laser alarms are electrically connected to the central processing unit module and the voltage-stabilizing power supply module respectively.
[0014] In the above technical solution, taking into account the security of the local monitoring subject and preventing the local monitoring subject from being disassembled by illegal persons and damaging the internal functional modules, a laser alarm is installed on the bottom plate and partition of the double-layer black box. The laser alarm will actively issue an alarm prompt when it senses that the double-layer black box is disassembled or damaged and deformed by external force, and send the alarm information to the remote monitoring terminal in real time through the Internet of Things communication module, reminding the management personnel to conduct timely inspection.
[0015] Preferably, the double-layer black box is made entirely of PEEK material.
[0016] In the above technical solution, considering the need for wireless communication between the local monitoring subject and the remote monitoring terminal, the double-layer black box is made of PEEK material as a whole. While ensuring smooth communication, it also effectively reduces the weight of the double-layer black box, so that it can meet more installation scenarios.
[0017] The Internet of Things communication module is communicatively connected to the monitoring camera device; the Internet of Things communication module is communicatively connected to the cloud storage device.
[0018] The remote monitoring terminal is a mobile PC device or a console.
[0019] Compared with the prior art, the utility model has the following beneficial effects:
[0020] 1. The utility model installs the local monitoring body on the physical object, and realizes the intelligent positioning monitoring of physical objects such as precious metals, cash boxes, tail boxes, money boxes, and money bags through multiple functional modules integrated in the local monitoring body, and sends the monitoring information to the remote monitoring terminal synchronously, so as to facilitate the management personnel to conduct all-round and full-process dynamic supervision and intelligent allocation and escort of the physical objects, thereby improving the safety, visibility and efficiency of the physical handover and escort process.
[0021] 2. The utility model adopts the Internet of Things communication module to communicate between the local monitoring subject and the remote monitoring terminal. The remote monitoring terminal can simultaneously complete the monitoring and information aggregation of multiple local monitoring subjects through the Internet of Things. Compared with the traditional one-to-one monitoring mode, it can effectively improve the monitoring efficiency and save costs.
[0022] 3. The double-layer black box of the utility model has a simple structure, and each functional module is reasonably configured. The double-layer black box is made of PEEK material as a whole. While ensuring smooth communication, it also effectively reduces the weight of the double-layer black box and can meet a variety of installation scenarios. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 This is a schematic diagram of an artificial intelligence service platform based on the Internet of Things in the present utility model.
[0024] Figure 2 This is a schematic diagram of the decomposed structure of the local monitoring body of the utility model.
[0025] Figure 3 It is a structural schematic diagram of the connecting rod of the utility model.
[0026] In the figure: 1. Local monitoring body; 2. Remote monitoring terminal; 3. Double-layer black box; 301. Bottom plate; 302. Partition; 303. Top plate; 304. Baffle; 305. Connecting rod; 306. Threaded mounting hole; 307. Slide groove; 308. Stud bolt; 309. Hexagon socket bolt; 4. Monitoring layer; 5. Functional layer; 6. Impact force sensor; 7. Tilt sensor; 8. Beidou satellite positioning module; 9. Internet of Things communication module; 10. Memory module; 11. Voltage-stabilized power supply module; 12. Central processing unit module; 13. Cable; 14. Sensor mounting plate; 15. Wire trough; 16. Heat dissipation groove; 17. Mounting ear piece; 18. Round hole; 19. Charging port; 20. Laser alarm. DETAILED DESCRIPTION
[0027] In order to facilitate the understanding of the present invention, the present invention will be described more fully below with reference to the relevant drawings. Several embodiments of the present invention are given in the drawings. However, the present invention can be implemented in many different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to make the disclosure of the present invention more thorough and comprehensive.
[0028] Example
[0029] The utility model provides an artificial intelligence service platform based on the Internet of Things, which is mainly used for intelligent positioning monitoring of precious metals, cash boxes, trunks, money boxes, money bags and other physical objects, such as Figure 1 As shown, it includes a local monitoring body 1 and a remote monitoring terminal 2. The local monitoring body 1 is composed of a double-layer black box 3 and the functional modules installed therein, such as Figure 2As shown, the interior of the double-layer black box 3 is divided into an upper monitoring layer 4 and a lower functional layer 5 by a partition 302. The monitoring layer 4 is fixedly installed with an impact force sensor 6, a tilt sensor 7 and a Beidou satellite positioning module 8 on the partition 302 from left to right, and the functional layer 5 is fixedly installed with an Internet of Things communication module 9, a memory module 10, a voltage-stabilized power supply module 11 and a central processing unit module 12 on the bottom plate 301 from left to right. The functional modules on the monitoring layer 4 are respectively connected to the central processing unit module 12 and the voltage-stabilized power supply module 11 through cables 13, and the Internet of Things communication module 9 and the memory module 10 are respectively electrically connected to the central processing unit module 12 and the voltage-stabilized power supply module 11; the remote monitoring terminal 2 is communicatively connected with the Internet of Things communication module 9.
[0030] The impact force sensor 6 and the inclination sensor 7 are used to monitor the posture of the physical object in real time, and to promptly remind the management personnel to check and adjust when the inclination of the physical object is too large or it is impacted, so as to avoid damage to the physical object; the Beidou satellite positioning module 8 is used for real-time positioning of the physical object; the Internet of Things communication module 9 is used for wireless communication between the local monitoring subject 1 and the remote monitoring terminal 2; the memory module 10 is used to store the data monitored by the functional modules of the monitoring layer; the voltage-stabilized power supply module 11 is used to power the functional modules; the central processing unit module 12 is used to receive and process the data monitored by the functional modules of the monitoring layer, and then output more intuitive monitoring data, and intelligently control the data reception and transmission of the Internet of Things communication module 9. The central processing unit module 12 is also preset with the alarm thresholds of the impact force sensor 6 and the inclination sensor 7. When the monitoring values received by the impact force sensor 6 and the inclination sensor 7 are greater than the alarm thresholds, an alarm will be issued in time to remind the management personnel to check and adjust, so as to avoid damage to the physical object.
[0031] In this embodiment, the double-layer black box 3 includes a bottom plate 301, a partition plate 302, a top plate 303, a baffle plate 304 and a connecting rod 305. Figure 3 As shown, a threaded mounting hole 306 is opened in the center of the top surface of the upper and lower ends of the connecting rod 305, and a slide groove 307 is opened on the two adjacent side surfaces of the connecting rod 305; stud bolts 308 are fixed at the four corners of the partition 302, and the stud bolts 308 are respectively screwed with a connecting rod 305 on the upper and lower sides of the partition 302, and the two ends of the baffle 304 are respectively inserted into the slide grooves 307 on the opposite sides of the two adjacent connecting rods 305, and the connecting rods 305 located on the upper and lower sides of the partition 302 are fixedly connected to the four corners of the top plate 303 and the bottom plate 301 at the end away from the partition 302 by hexagon socket bolts 309.
[0032] Specifically, the double-layer black box 3 also includes a sensor mounting plate 14, which is an L-shaped plate and is vertically fixed on the partition 302. The two support plates of the sensor mounting plate 14 are respectively parallel to the two baffles 304 adjacent to the double-layer black box 3, and an impact force sensor 6 is fixedly installed on each of the inner sides of the two support plates of the sensor mounting plate 14.
[0033] Furthermore, the bottom plate 301 and the partition plate 302 are provided with cable grooves 15 corresponding to the routing of the cables 13 of each functional module; the baffles 304 on the front and rear sides of the double-layer black box 3 are provided with heat dissipation grooves 16; and mounting ears 17 are fixedly connected to both sides of the bottom plate 301, and a circular hole 18 is provided in the center of the mounting ear 17.
[0034] It should be noted that the local monitoring body 1 installation scheme given in this embodiment is designed for physical objects that can have threaded holes, such as cash boxes, trunk boxes, cash boxes, etc.; for physical objects such as precious metals and purses that are not convenient to open holes, the local monitoring body 1 can be installed on the physical object by gluing or other methods.
[0035] Furthermore, a charging interface 19 is fixedly installed at a corner of a baffle 304 on one side below the double-layer black box 3 , and the charging interface 19 is electrically connected to the voltage-stabilized power supply module 11 .
[0036] Taking into account the security of the local monitoring body and preventing the local monitoring body from being disassembled by illegal persons and damaging the internal functional modules, the double-layer black box 3 in this embodiment also includes a laser alarm 20. There are two laser alarms 20, which are fixedly installed on the edge of the bottom plate 301 and the side of the partition 302 respectively. The laser alarms 20 are electrically connected to the central processing unit module 12 and the voltage-stabilized power supply module 11 respectively.
[0037] By installing a laser alarm 20 on the bottom plate 301 and the partition 302 of the double-layer black box 3, the laser alarm 20 will actively issue an alarm prompt when it senses that the double-layer black box 3 is disassembled or damaged and deformed by external force, and send the alarm information to the remote monitoring terminal 2 in real time through the Internet of Things communication module 9, reminding the management personnel to check in time.
[0038] Considering the need for wireless communication between the local monitoring subject and the remote monitoring terminal, the double-layer black box 3 in this embodiment is made of PEEK material as a whole. While ensuring smooth communication, it also effectively reduces the weight of the double-layer black box, so that it can meet more installation scenarios.
[0039] The Internet of Things communication module 9 is connected to the monitoring camera device for communication; the Internet of Things communication module 9 is connected to the cloud storage for communication.
[0040] When it is detected that a physical object is lost or damaged, the manager can send instructions to the local monitoring entity 1 through the remote monitoring terminal 2. After receiving the instructions, the central processing unit module 12 retrieves and receives the monitoring video of the surrounding area of the physical object through the Internet of Things communication module 9, and feeds it back to the manager of the remote monitoring terminal 2, so that the manager can understand the situation in time and avoid economic losses.
[0041] The remote monitoring terminal 2 is a mobile PC device or a console.
[0042] In summary, the utility model is an artificial intelligence service platform based on the Internet of Things. The local monitoring subject is installed on the physical object. By integrating multiple functional modules in the double-layer black box 3, the intelligent positioning monitoring of physical objects such as precious metals, cash boxes, tail boxes, money boxes, and purses is realized, and the monitoring information is synchronously sent to the remote monitoring terminal 2, which is convenient for management personnel to conduct all-round and full-process dynamic supervision and intelligent allocation and escort of the physical objects, thereby improving the security, visibility and efficiency of the physical handover and escort process; in addition, the utility model adopts the Internet of Things communication module 9 to communicate between the local monitoring subject 1 and the remote monitoring terminal 2. With the communication advantages of the Internet of Things, the remote monitoring terminal 2 can simultaneously complete the monitoring and information aggregation of multiple local monitoring subjects 1. Compared with the traditional one-to-one monitoring mode, it can effectively improve the monitoring efficiency and save costs.
[0043] It should be understood that the above description of the preferred embodiment is relatively detailed and cannot be regarded as limiting the scope of patent protection of the utility model. Under the enlightenment of the utility model, ordinary technicians in this field can also make substitutions or modifications without departing from the scope of protection of the claims of the utility model, which all fall within the scope of protection of the utility model. The scope of protection requested for the utility model shall be based on the attached claims.
Claims
1. An artificial intelligence service platform based on the Internet of Things, characterized in that: The invention comprises a local monitoring body (1) and a remote monitoring terminal (2), wherein the local monitoring body (1) is composed of a double-layer black box (3) and a functional module installed therein, wherein the double-layer black box (3) is divided into an upper monitoring layer (4) and a lower functional layer (5) by a partition (302), wherein the monitoring layer (4) is fixedly installed with an impact force sensor (6), an inclination sensor (7) and a Beidou satellite positioning module (8) in sequence from left to right on the partition (302), and the functional layer (5) is fixedly installed with an impact force sensor (6), an inclination sensor (7) and a Beidou satellite positioning module (8) in sequence from left to right on the bottom plate (301). An Internet of Things communication module (9), a memory module (10), a voltage-stabilized power supply module (11), and a central processing unit module (12) are fixedly installed in sequence; each functional module on the monitoring layer (4) is connected to the central processing unit module (12) and the voltage-stabilized power supply module (11) via a cable (13); the Internet of Things communication module (9) and the memory module (10) are electrically connected to the central processing unit module (12) and the voltage-stabilized power supply module (11) respectively; and the remote monitoring terminal (2) is communicatively connected to the Internet of Things communication module (9).
2. The artificial intelligence service platform based on the Internet of Things according to claim 1, characterized in that: The double-layer black box (3) comprises a bottom plate (301), a partition plate (302), a top plate (303), a baffle plate (304) and a connecting rod (305); threaded mounting holes (306) are provided at the center of the top surfaces of the upper and lower ends of the connecting rod (305); and sliding grooves (307) are provided on two adjacent side surfaces of the connecting rod (305); stud bolts (308) are fixed at the four corners of the partition plate (302); the stud bolts (308) are respectively screwed with a connecting rod (305) on the upper and lower sides of the partition plate (302); the two ends of the baffle plate (304) are respectively inserted into the sliding grooves (307) on the opposite sides of the two adjacent connecting rods (305); and the connecting rods (305) located on the upper and lower sides of the partition plate (302) are fixedly connected to the four corners of the top plate (303) and the bottom plate (301) at one end away from the partition plate (302) by hexagon socket bolts (309).
3. The artificial intelligence service platform based on the Internet of Things according to claim 2, characterized in that: It also includes a sensor mounting plate (14), the sensor mounting plate (14) being an L-shaped plate and being vertically fixed on the partition plate (302), the two support plates of the sensor mounting plate (14) being respectively parallel to the two baffle plates (304) adjacent to the double-layer black box (3), and an impact force sensor (6) being fixedly mounted on each inner side surface of the two support plates of the sensor mounting plate (14).
4. The artificial intelligence service platform based on the Internet of Things according to claim 2, characterized in that: The bottom plate (301) and the partition plate (302) are provided with cable grooves (15) corresponding to the routing of cables (13) of each functional module; and the baffle plates (304) on the front and rear sides of the double-layer black box (3) are provided with heat dissipation grooves (16).
5. The artificial intelligence service platform based on the Internet of Things according to claim 2, characterized in that: Mounting lugs (17) are fixedly connected to both sides of the bottom plate (301), and a circular hole (18) is opened in the center of the mounting lug (17).
6. The artificial intelligence service platform based on the Internet of Things according to claim 2, characterized in that: A charging interface (19) is fixedly installed at a corner of a baffle (304) on one side below the double-layer black box (3), and the charging interface (19) is electrically connected to a voltage-stabilizing power supply module (11).
7. The artificial intelligence service platform based on the Internet of Things according to claim 1, characterized in that: It also includes a laser alarm (20), wherein there are two laser alarms (20) fixedly mounted on the bottom plate (301) and one side edge of the partition plate (302), respectively, and the laser alarms (20) are electrically connected to the central processing unit module (12) and the voltage-stabilized power supply module (11), respectively.
8. The artificial intelligence service platform based on the Internet of Things according to claim 1, characterized in that: The double-layer black box (3) is made entirely of PEEK material.
9. The artificial intelligence service platform based on the Internet of Things according to claim 1, characterized in that: The Internet of Things communication module (9) is communicatively connected to the monitoring camera device; the Internet of Things communication module (9) is communicatively connected to the cloud storage device.
10. The artificial intelligence service platform based on the Internet of Things according to claim 1, characterized in that: The remote monitoring terminal (2) is a mobile PC device or a console.