Portable artificial intelligence city modeling auxiliary device
A portable artificial intelligence urban modeling auxiliary device that integrates lidar and cameras can automatically identify and generate three-dimensional maps, solving the problem of inconvenient handheld operation in existing technologies and realizing an efficient and easy modeling process.
Patent Information
- Application Number
- CN202422774354.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-11-14
AI Technical Summary
Existing urban modeling devices require manual handheld operation when entering three-dimensional spatial information, which is inconvenient to carry.
A portable artificial intelligence urban modeling auxiliary device was designed, which integrates lidar and camera. It automatically identifies and generates three-dimensional maps through an AI processor, and supports the device on the user's shoulders and abdomen through a wearable mechanism to reduce fatigue from long-term handheld operation.
It realizes the automatic acquisition of three-dimensional spatial information during the modeling process, reduces user fatigue, improves modeling efficiency and accuracy, and supports real-time model display and editing.
Smart Images

Figure CN223347308U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of urban modeling, in particular to a portable artificial intelligence urban modeling auxiliary device. Background Art
[0002] The Urban Modeling Assistant is an innovative tool that integrates advanced artificial intelligence technology with a portable design. Designed for urban planners, architects, and professionals in related fields, it aims to significantly improve the efficiency of urban modeling and planning. The device captures and analyzes key urban environmental data in real time, including topography, building layout, traffic flow, and other diverse information, and rapidly constructs a highly accurate 3D city model based on this data.
[0003] Currently, the city modeling devices in the existing technology require manual handheld operation when entering the model, which is time-consuming and inconvenient to carry. Utility Model Content
[0004] The purpose of the present utility model is to provide a portable artificial intelligence urban modeling auxiliary device to solve the problem raised in the above-mentioned background technology that when entering three-dimensional spatial information, such as the outline of buildings, roads, terrain, etc., workers need to hold and lift it, which is inconvenient to carry.
[0005] To achieve the above objectives, the present invention provides the following technical solutions:
[0006] A portable artificial intelligence city modeling auxiliary device comprises: a body, an AI processor integrated in the body, a connecting arm fixedly mounted at one end of the body, a C-shaped frame fixedly mounted on the upper surface of the connecting arm, and a wearing mechanism rotatably mounted in the C-shaped frame.
[0007] Preferably, a shell is fixedly connected to the lower surface of the body, a camera is fixedly installed inside the shell, and the camera is connected to the AI processor in the body through a USB interface.
[0008] Preferably, an L-shaped rod is fixedly connected between the lower surfaces of the body, and a laser radar is fixedly installed on the upper surface of the L-shaped rod. The laser radar is connected to the AI processor in the body through a USB interface.
[0009] Preferably, the body can scan the surrounding environment through a laser radar and a camera, so that the laser radar and the camera can automatically obtain three-dimensional spatial information, such as the outline of buildings, roads, terrain, etc., so that the body can automatically identify the scanned objects, such as buildings, trees, roads, etc., through a built-in AI processor, and classify them to generate a digital three-dimensional map. During the scanning process, the body will display the scanned model in real time and allow the user to check and correct the accuracy of the model.
[0010] Preferably, the wearing mechanism includes a connecting plate, the connecting plate is rotatably mounted in the U-shaped frame, a top arc plate is fixedly mounted on the lower surface of the connecting plate, shoulder straps are fixedly connected to both sides of the U-shaped frame, and buckles are fixedly connected between the two ends of the shoulder straps;
[0011] The staff can wear the shoulder straps on their shoulders and make the top arc plates stick to both sides of the wearer's abdomen due to the gravity factor.
[0012] Preferably, anti-slip bumps are fixedly connected on both sides of the connecting plate, so that the connecting plate can drive the top arc plate to flip and buckle on the upper end of the outer surface of the body, and at the same time, the connecting plate is inserted into the U-shaped frame through the anti-slip bumps on both sides to increase the friction during expansion.
[0013] Compared with the prior art, the beneficial effects of the present invention are:
[0014] 1. Through the design of the body, laser radar, camera and wearable mechanism, before starting modeling, the user can use the wearable mechanism to wear on the shoulders and make the lower half of the wearable mechanism touch the sides of the abdomen for support. Then the user can input some basic parameters into the body, such as the modeling area range, urban planning type, such as residential area, commercial area, etc., or select an existing model as a reference. Then, the laser radar and camera on the body can be activated to start scanning the surrounding environment. The body will automatically obtain three-dimensional spatial information, such as the outline of buildings, roads, terrain, etc., and the built-in AI processor of the body will automatically identify the scanned objects, such as buildings, trees, roads, etc., and classify them to generate a digital three-dimensional map. During the scanning process, the body will display the scanned model in real time. , and allows users to check and correct the accuracy of the model. For example, if the scan of an area is incomplete or unclear, the user can manually adjust the lidar and camera through the control interface of the body or turn the body to rescan the area. After the scan data is processed by the AI processor, the generated preliminary city model will be presented on the body screen. The user can view the model from different angles through the touch screen on the body and make detailed edits, for example, optimize the road layout to reduce traffic congestion, or adjust the distribution of green spaces according to the principles of green ecological design. At the same time, the AI processor in the body will prompt that some areas are too densely built or the traffic flow forecast is unreasonable. Users can also use the AI processor to simulate urban development and predict changes in data such as population growth, traffic flow, and energy consumption.
[0015] 2. Through the design of the connecting plate, top arc plate, shoulder strap and buckle, before starting modeling, the user can flip and unfold the top arc plate installed in the U-shaped frame from the upper end of the outer surface of the body, and then the user can wear the shoulder strap on the shoulder and use gravity to make the flipped top arc plate stick to the sides of the wearer's abdomen to support the body. Then, the user can enter and model the city while walking. Then, with the support of the top arc plate and shoulder straps, the weight can be effectively dispersed to the wearer's shoulders and abdomen, which is much easier than traditional handheld operation because the user no longer needs to hold or support the weight of the device for a long time, thereby reducing the fatigue caused by long-term operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a schematic diagram of the overall structure of the portable artificial intelligence city modeling auxiliary device of the utility model;
[0017] Figure 2 This is a schematic structural diagram of the wearing mechanism of the present utility model;
[0018] Figure 3 This is a schematic structural diagram of the shoulder strap and buckle of the utility model.
[0019] In the figure: 1. Body; 101. Connecting arm; 102. U-shaped frame; 103. Shell; 104. LiDAR; 105. Camera; 106. L-shaped rod; 2. Wearing mechanism; 201. Connecting plate; 202. Anti-slip bump; 203. Top arc plate; 204. Shoulder strap; 205. Buckle. DETAILED DESCRIPTION
[0020] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0021] like Figure 1 As shown, this embodiment provides a portable artificial intelligence city modeling auxiliary device, including: a body 1, an AI processor integrated in the body 1, a connecting arm 101 fixedly installed at one end of the body 1, a C-shaped frame 102 fixedly installed on the upper surface of the connecting arm 101, and a wearing mechanism 2 rotatably installed in the C-shaped frame 102.
[0022] A shell 103 is fixedly connected to the lower surface of the body 1, and a camera 105 is fixedly installed in the shell 103. The camera 105 is connected to the AI processor in the body 1 through a USB interface.
[0023] An L-shaped rod 106 is fixedly connected between the lower surfaces of the body 1, and a laser radar 104 is fixedly installed on the upper surface of the L-shaped rod 106. The laser radar 104 is connected to the AI processor in the body 1 through a USB interface.
[0024] The body 1 can scan the surrounding environment through the laser radar 104 and the camera 105, so that the laser radar 104 and the camera 105 can automatically obtain three-dimensional spatial information, such as the outline of buildings, roads, terrain, etc., so that the body 1 can automatically identify the scanned objects, such as buildings, trees, roads, etc., through the built-in AI processor, and classify them to generate a digital three-dimensional map. During the scanning process, the body 1 will display the scanned model in real time and allow the user to check and correct the accuracy of the model.
[0025] Through the design of the body 1, laser radar 104, camera 105 and wearable mechanism 2, before starting modeling, the user can wear the wearable mechanism 2 on the shoulders and make the lower half of the wearable mechanism 2 touch the two sides of the abdomen for support. Then the user can input some basic parameters into the body 1, such as the modeling area range, urban planning type, such as residential area, commercial area, etc., or select an existing model as a reference, and then activate the laser radar 104 and camera 105 on the body 1 to start scanning the surrounding environment. The body 1 will automatically obtain three-dimensional spatial information, such as the outline of buildings, roads, terrain, etc., and the built-in AI processor of the body 1 will automatically identify the scanned objects, such as buildings, trees, roads, etc., and classify them to generate a digital three-dimensional map. During the scanning process, the body 1 will display the scanned objects in real time. The model scanned by the machine 1 can be used to check and correct the accuracy of the model. For example, if the scan of an area is incomplete or unclear, the user can manually adjust the lidar 104 and the camera 105 through the control interface of the machine 1 or rotate the body to adjust the lidar 104 and the camera 105 to rescan the area. After the scan data is processed by the AI processor, the generated preliminary city model will be presented on the screen of the machine 1. The user can view the model from different angles through the touch screen on the machine 1 and make detailed edits. For example, the road layout can be optimized to reduce traffic congestion, or the distribution of green space can be adjusted according to the principles of green ecological design. At the same time, the AI processor in the machine 1 will prompt that some areas are too densely built or the traffic flow forecast is unreasonable. The user can also use the AI processor to simulate urban development and predict changes in data such as population growth, traffic flow, and energy consumption.
[0026] like Figure 2-Figure 3 As shown, the wearing mechanism 2 includes a connecting plate 201, which is rotatably mounted in the U-shaped frame 102. A top arc plate 203 is fixedly mounted on the lower surface of the connecting plate 201. Both sides of the U-shaped frame 102 are fixedly connected to shoulder straps 204, and buckles 205 are fixedly connected between the two ends of the shoulder straps 204.
[0027] The staff can wear the shoulder straps 204 on their shoulders and make the top arc plate 203 stick to both sides of the wearer's abdomen due to the gravity factor.
[0028] Anti-slip bumps 202 are fixedly connected to both sides of the connecting plate 201, so that the connecting plate 201 can drive the top arc plate 203 to flip and buckle onto the upper end of the outer surface of the body 1, and at the same time, the connecting plate 201 is inserted into the U-shaped frame 102 through the anti-slip bumps 202 on both sides to increase the friction during deployment.
[0029] Through the design of the connecting plate 201, the top arc plate 203, the shoulder strap 204 and the buckle 205, before starting modeling, the user can flip and unfold the top arc plate 203 rotatably installed in the U-shaped frame 102 from the upper end of the outer surface of the body 1, and then the user can wear the shoulder strap 204 on the shoulder and use gravity to make the flipped top arc plate 203 stick to both sides of the wearer's abdomen to support the body 1, and then the user can enter and model the city while walking, and then through the support of the top arc plate 203 and the shoulder strap 204, the weight can be effectively distributed to the wearer's shoulders and abdomen, which is much easier than traditional handheld operation, because the user no longer needs to hold or support the weight of the device for a long time, thereby reducing the fatigue caused by long-term operation.
[0030] The AI processor can be an Intel Core Ultra 200V (Lunar Lake) series processor, configured with four Lion Cove architecture P-cores (performance cores) and four Skymont architecture E-cores (efficiency cores), creating an 8-core, 8-thread configuration. The AI computing power can reach up to 67TOPS, making it suitable for surveying and modeling applications that require high performance and energy efficiency.
[0031] According to the above technical solution, the working steps of this solution are summarized and sorted out: before starting modeling, the user can flip and unfold the top arc plate 203 rotatably installed in the U-shaped frame 102 from the upper end of the outer surface of the body 1, and then the user can wear the shoulder strap 204 on the shoulder and use gravity to make the flipped top arc plate 203 stick to the two sides of the wearer's abdomen to support the body 1. Then the user can input some basic parameters into the body 1, such as the modeling area range, urban planning type, such as residential area, commercial area, etc., or select an existing model as a reference, and then activate the laser radar 104 and camera 105 on the body 1 to start scanning the surrounding environment. The body 1 will automatically obtain three-dimensional spatial information, such as the outline of buildings, roads, terrain, etc., and the built-in AI processor of the body 1 will automatically identify the scanned objects, such as buildings, trees, roads, etc., and classify them to generate a digital three-dimensional map. During the scanning process, the body 1 will display the scanned model in real time. , and allows users to check and correct the accuracy of the model. For example, if the scan of an area is incomplete or unclear, the user can manually adjust or rotate the body to adjust the laser radar 104 and camera 105 through the control interface of the body 1 to rescan the area. After the scan data is processed by the AI processor, the generated preliminary city model will be presented on the screen of the body 1. The user can view the model from different angles through the touch screen on the body 1 and make detailed edits. For example, optimize the road layout to reduce traffic congestion, or adjust the distribution of green space according to the principles of green ecological design. At the same time, the AI processor in the body 1 will prompt that some areas are too densely built or the traffic flow forecast is unreasonable. The user can also use the AI processor to simulate urban development and predict changes in data such as population growth, traffic flow, and energy consumption. After the city modeling is completed, the user can use the display function of the body 1 to display the built model in various formats, such as 3D models, CAD drawings, etc., which are compatible with other software.
[0032] In summary: During the process of city modeling, the body 1 can be supported by the top arc plate 203 and the shoulder strap 204, so that the weight can be effectively distributed to the wearer's shoulders and abdomen. This is much easier than traditional handheld operation because the user no longer needs to hold or support the weight of the device for a long time, thereby reducing the fatigue caused by long-term operation.
[0033] Any portion not described in the present invention is the same as the prior art or can be implemented using the prior art. Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A portable artificial intelligence city modeling auxiliary device, characterized in that: include: A body (1) is provided, wherein an AI processor is integrated in the body (1), a connecting arm (101) is fixedly mounted on one end of the body (1), a U-shaped frame (102) is fixedly mounted on the upper surface of the connecting arm (101), and a wearing mechanism (2) is rotatably mounted in the U-shaped frame (102).
2. The portable artificial intelligence city modeling auxiliary device according to claim 1, characterized in that: A shell (103) is fixedly connected to the lower surface of the body (1), a camera (105) is fixedly installed in the shell (103), and the camera (105) is connected to the AI processor in the body (1) via a USB interface.
3. The portable artificial intelligence city modeling auxiliary device according to claim 2, characterized in that: An L-shaped rod (106) is fixedly connected between the lower surfaces of the body (1), a laser radar (104) is fixedly installed on the upper surface of the L-shaped rod (106), and the laser radar (104) is connected to the AI processor in the body (1) through a USB interface.
4. The portable artificial intelligence city modeling auxiliary device according to claim 3, characterized in that: The machine body (1) scans the surrounding environment through the laser radar (104) and the camera (105), so that the laser radar (104) and the camera (105) can automatically obtain three-dimensional space information.
5. The portable artificial intelligence city modeling auxiliary device according to claim 1, characterized in that: The wearing mechanism (2) comprises a connecting plate (201), the connecting plate (201) being rotatably mounted in a U-shaped frame (102), a top arc plate (203) being fixedly mounted on the lower surface of the connecting plate (201), shoulder straps (204) being fixedly connected to both sides of the U-shaped frame (102), and buckles (205) being fixedly connected between the two ends of the shoulder straps (204); The staff can wear the shoulder strap (204) on the shoulders and make the top arc plate (203) stick to both sides of the wearer's abdomen due to the gravity factor.
6. The portable artificial intelligence city modeling auxiliary device according to claim 5, characterized in that: Both sides of the connecting plate (201) are fixedly connected with anti-skid protrusions (202), so that the connecting plate (201) can drive the top arc plate (203) to flip and buckle onto the upper end of the outer surface of the body (1), and at the same time, the connecting plate (201) is inserted into the U-shaped frame (102) through the anti-skid protrusions (202) on both sides to increase the friction force when unfolding.