WO2022257569A1 - 图像采集装置的标定 - Google Patents
图像采集装置的标定 Download PDFInfo
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- WO2022257569A1 WO2022257569A1 PCT/CN2022/084101 CN2022084101W WO2022257569A1 WO 2022257569 A1 WO2022257569 A1 WO 2022257569A1 CN 2022084101 W CN2022084101 W CN 2022084101W WO 2022257569 A1 WO2022257569 A1 WO 2022257569A1
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06T—IMAGE DATA PROCESSING OR GENERATION, IN GENERAL
- G06T7/00—Image analysis
- G06T7/80—Analysis of captured images to determine intrinsic or extrinsic camera parameters, i.e. camera calibration
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- the present disclosure provides a calibration method, device, equipment, storage medium and product, which can solve the problems that the calibration method needs a large space and manual calibration, so as to improve the applicability and accuracy of the calibration method.
- the present disclosure provides a calibration device, including: an image acquisition module, configured to acquire a first image of a calibration plate captured by the image capture device, the height of the center point of the calibration plate being equal to the height of the lens of the image capture device The heights of the centers are the same; the first determination module is used to determine the first homography matrix of the calibration plate according to the first image; the second determination module is used to determine the first homography matrix according to the first image The vanishing point of the image acquisition device and the second homography matrix of the ground.
- the present disclosure provides a calibration device, including: a memory, a processor, and a computer program stored on the memory and operable on the processor.
- a calibration device including: a memory, a processor, and a computer program stored on the memory and operable on the processor.
- the processor executes the program, the above-mentioned calibration method.
- the present disclosure provides a computer-readable storage medium, where computer-executable instructions are stored in the computer-readable storage medium, and the computer-executable instructions are used to implement the above calibration method when executed by a processor.
- the present disclosure automatically determines the first homography matrix of the calibration plate through the first image, and then determines the vanishing point of the image acquisition device and the second homography of the ground according to the first homography matrix
- the two-homography matrix compared with the manual calibration method, can effectively improve the calibration efficiency and the accuracy of the calibration results.
- Fig. 1 is the schematic diagram of the vanishing point of image acquisition device
- FIG. 2 is a schematic diagram of a method for determining the vanishing point of an image acquisition device provided by an embodiment of the present disclosure
- FIG. 3 is a schematic diagram of a calibration method provided by an embodiment of the present disclosure.
- Fig. 5b is an example diagram of extracting a calibration pattern from a second image provided by an embodiment of the present disclosure
- Fig. 6a is an example diagram of determining a third target point and a fourth target point in an embodiment of the present disclosure
- Fig. 6b is another example diagram of determining a third target point and a fourth target point in an embodiment of the present disclosure
- FIG. 8 is a schematic structural diagram of a calibration device provided by an embodiment of the present disclosure.
- ADAS Advanced Driver Assistance System
- ADAS Advanced Driver Assistance System
- Technical processing such as object recognition, detection, and tracking can allow drivers to detect possible dangers in a timely manner, so as to attract the attention of drivers and improve safety.
- the main functions include blind spot monitoring, automatic emergency braking, pedestrian collision warning, lane departure warning, etc.
- the ADAS image acquisition device (such as a camera) needs to be calibrated.
- This process can be performed on the automobile production line (production line calibration), or it can be performed during the after-sales process of the automobile ( aftermarket calibration).
- production line calibration production line calibration
- aftermarket calibration after-sales process of the automobile
- the existing calibration process requires a large site space, and calibration is usually performed manually, resulting in low applicability and accuracy of the existing calibration method.
- Fig. 1 is a schematic diagram of the vanishing point of the image acquisition device. As shown in Fig. 1, L1 and L2 are two parallel lane lines, and the visual intersection point VP of L1 and L2 represents the vanishing point of the image acquisition device.
- the site space required to determine the vanishing point of the image acquisition device is relatively large, for example, the distance between adjacent cones is 3 When it is 1.5 meters, a rectangular area with a width of about 4 meters and a length of about 30 meters may be required, resulting in poor applicability of the method.
- the above processing takes a long time and has low accuracy.
- the vehicle when determining the homography matrix of the ground, the vehicle is first driven to an open field, and then two columns of cone barrels are placed in front of the image acquisition device along the direction of the lens center of the image acquisition device, wherein it is necessary to ensure that each The column cones are arranged in a straight line, the distance between adjacent cones in each column is equal (for example, 5 meters), and the two columns of cones are parallel. Then, use the image acquisition device to capture the image of the cone, and click the reference point on each cone in the image through the calibration tool to obtain the pixel coordinates of each reference point on the image and the corresponding world coordinates. Finally, according to the reference point The pixel coordinates and corresponding physical coordinates (at least 4 sets of point pairs need to be brought in) can be used to solve the ground homography matrix Hg.
- the present disclosure provides a calibration method, device, equipment, storage medium and product, which can solve the problems that the calibration of the image acquisition equipment in the vehicle requires a large space and needs to be done manually, so as to improve the applicability of the calibration method of the image acquisition equipment in the vehicle and accuracy.
- processing steps of the calibration method in the present disclosure may be implemented by a terminal device or a server, where the terminal device may be, for example, a vehicle-mounted terminal device installed on a vehicle.
- the first image of the calibration board is captured by the image acquisition device, and the terminal device acquires the first image for calibration processing. It can be understood that only when the positional relationship between the calibration board and the image acquisition device meets the above requirements, the first image of the calibration board captured by the image acquisition device has sufficient reference significance to ensure the accuracy of the calibration results.
- the terminal device After determining the first homography matrix of the calibration board, the terminal device determines the vanishing point of the image acquisition device and the second homography matrix of the ground according to the first homography matrix.
- the second homography matrix of the ground represents the conversion relationship between the image coordinates (pixel coordinates) and the world coordinates (physical coordinates) of points on the ground.
- This embodiment provides a calibration method, which uses a calibration plate containing a calibration pattern to replace multiple cones that need to be placed, and performs calibration by taking the first image containing the calibration plate. Since the space occupied by the calibration plate is smaller, the Can effectively reduce the site space required in the calibration process, thereby improving applicability; in addition, the present disclosure automatically determines the first homography matrix of the calibration plate through the first image, and then determines the image acquisition device according to the first homography matrix The vanishing point and the second homography matrix of the ground can effectively improve the calibration efficiency and the accuracy of the calibration results compared with the manual calibration method.
- the process of determining the first homography matrix of the target plate according to the first image is explained.
- Fig. 4 is a schematic diagram of determining the first homography matrix of the calibration board according to the first image in the embodiment of the present disclosure. As shown in Fig. 4, according to the first image, the first homography matrix of the calibration board is determined, including:
- the first homography matrix of the calibration board represents the conversion relationship between the image coordinates (pixel coordinates) and the world coordinates (physical coordinates) of the points on the calibration board, therefore, through the pixel coordinates of the corner points and the corresponding physical coordinates, Then the first homography matrix of the calibration plate can be determined.
- the corner detection is performed according to the first image, and the pixel coordinates of the corners in the first image are obtained, including:
- the physical coordinates of the corner point refer to the coordinates of the corner point in the world coordinate system.
- the terminal device can obtain a second image that only includes two colors of black and white, that is, the pixel value of each pixel in the second image is 0 or 255; then, by Image detection is performed on the second image to extract the calibration pattern; after the calibration pattern is obtained, the pixel coordinates of the corner points of the calibration plate can be obtained by performing corner detection on the calibration pattern.
- the accuracy of the calibration pattern extraction result can be improved, so that the pixel coordinates of the corner points of the calibration board are more accurate.
- the first homography matrix of the calibration board can be calculated by the following formula:
- a b H b ⁇ C b
- a b A b T H b C b *A b T
- H b (A b A b T )*(C b A b T ) -1
- the first homography matrix of the calibration plate can be automatically determined, thereby improving the processing efficiency of determining the first homography matrix of the calibration plate, and at the same time improving the accuracy of the determination result of the first homography matrix of the calibration plate .
- Fig. 5a is an example diagram of the second image provided by the embodiment of the present disclosure
- Fig. 5b is an example diagram of extracting the calibration pattern from the second image provided by the embodiment of the disclosure, as shown in Fig. 5a and Fig. 5b, the calibration pattern on the calibration plate
- the calibration pattern includes a first sub-pattern set on the left half of the calibration plate and a second sub-pattern set on the right half of the calibration plate, wherein the first sub-pattern includes three rectangular patterns arranged in an inverted triangle, and the second sub-pattern
- the pattern includes three rectangular patterns arranged in a regular triangle.
- the orientation of the lens is perpendicular to the calibration plate. Therefore, it can be specified that the orientation of the lens is the vertical direction, and the direction perpendicular to the longitudinal direction and parallel to the ground is the horizontal direction.
- determining the vanishing point of the image acquisition device according to the first homography matrix includes: S310. Determine the vanishing point of the image acquisition device according to the lateral offset and the first homography matrix.
- the terminal device can The position on the vehicle is used to determine the lateral offset between the lens center of the image acquisition device and the center point of the calibration plate.
- the terminal device can directly obtain the position of the vehicle relative to the calibration plate and the position of the image acquisition device installed on the vehicle, and then determine the lateral deviation between the lens center of the image acquisition device and the center point of the calibration plate according to the above position information. displacement.
- the lateral offset may also be determined by other devices/units/modules, and then the terminal device directly acquires the lateral offset from other devices/units/modules.
- the vanishing point of the image acquisition device is determined by the following formula:
- VP represents the pixel coordinates of the vanishing point of the image acquisition device
- Hb represents the first homography matrix of the calibration plate
- t represents the lateral offset
- determining the second homography matrix of the ground according to the first homography matrix includes: S320, the first homography matrix according to the calibration board, and the second homography matrix of the ground and the calibration The preset relationship of the first homography matrix of the plate determines the second homography matrix of the ground.
- the position of the calibration board in actual scenarios such as production line calibration, once the position of the calibration board is determined, the position of the calibration board relative to the ground can be considered fixed. Therefore, the first homography matrix of the calibration board and the second homography of the ground The relationship of the matrix also remains unchanged. Therefore, after determining the position of the calibration plate and before calibration, the second homography matrix Hg0 of the ground and the first homography of the calibration plate can be obtained by pre-calibrating the image acquisition device.
- the homography matrix Hb0 is obtained by solving the relationship between the first homography matrix of the calibration plate and the second homography matrix of the ground.
- the corresponding calibration plate of the image acquisition device to be calibrated will also change, but the relationship between the first homography matrix of the calibration plate and the second homography matrix of the ground remains unchanged.
- R is defined to represent the preset relationship between the first homography matrix of the calibration plate and the second homography matrix of the ground, then the functional relationship between the second homography matrix Hg0 and the first homography matrix Hb0 is:
- Hg0 R*Hb0
- the preset relationship R between the first homography matrix of the calibration plate and the second homography matrix of the ground can be obtained .
- the second homography of the ground is determined by the following formula Responsive matrix:
- Hg represents the second homography matrix of the ground
- R represents the preset relationship between the second homography matrix of the ground and the first homography matrix of the calibration plate
- Hb represents the first homography matrix
- determining the second homography matrix of the ground includes:
- the first projection point is the projection point of the first target point on the calibration board on the ground
- the second projection point is the second target on the calibration board
- the projection point of the point on the ground, the first target point and the second target point are points on the calibration pattern of the calibration plate, and the first target point is different from the second target point;
- the first target point and the second target point can be the center points of the calibration patterns on the left and right parts of the calibration plate respectively
- the first projection point is the point of the orthographic projection position of the first target point on the ground
- the second The projection point is the point of the orthographic projection position of the second target point on the ground.
- the terminal device After obtaining the vanishing point of the image acquisition device, the first homography matrix of the calibration plate, the physical coordinates of the first projection point, and the physical coordinates of the second projection point, the terminal device can determine the second homography matrix of the ground.
- the second homography matrix of the ground is determined according to the vanishing point of the image acquisition device, the first homography matrix of the calibration plate, and the physical coordinates of the first projection point and the physical coordinates of the second projection point ,include:
- S332a Determine at least one third target point on the line connecting the vanishing point of the image capture device and the first projection point, and determine at least one fourth target point on the line connecting the vanishing point of the image capture device and the second projection point;
- S332b Determine the physical coordinates of the third target point and the physical coordinates of the fourth target point according to the physical coordinates of the first projection point, the physical coordinates of the second projection point, and the vanishing point of the image acquisition device;
- S332d Determine the ground according to the physical coordinates and pixel coordinates of the first projection point, the physical coordinates and pixel coordinates of the second projection point, the physical coordinates and pixel coordinates of the third target point, and the physical coordinates and pixel coordinates of the fourth target point
- FIG. 6a is an example diagram of determining the third target point and the fourth target point in the embodiment of the present disclosure.
- the third target point C can be, for example, the vanishing point VP and the first projection point of the image acquisition device
- the midpoint of the line connecting A, the fourth target point D may specifically be the midpoint of the line connecting the vanishing point VP and the second projection point B of the image acquisition device.
- the number of the third target points may also be at least two, and the number of the fourth target points may also be at least two.
- FIG. 6b is an example diagram of determining the third target point and the fourth target point in another embodiment of the present disclosure.
- the third target point can be, for example, the vanishing point VP and the first projection
- the fourth target point can specifically be the connection between the vanishing point VP of the image acquisition device and the second projection point B.
- 1/3 point and 2/3 point of the line, that is, the fourth target point includes point F and point H.
- the third target point and the fourth target point After determining the third target point and the fourth target point, determine the physical coordinates of the third target point and the fourth target point according to the physical coordinates of the first projection point, the physical coordinates of the second projection point, and the vanishing point of the image acquisition device The physical coordinates of the point.
- the abscissa of the third target point is the same as the abscissa of the first projection point
- the abscissa of the fourth target point is the same as that of the second projection point
- the third target point can be obtained in combination with the image acquisition device model
- the vertical coordinate and the vertical coordinate of the fourth target point The vertical coordinate and the vertical coordinate of the fourth target point:
- f is the focal length of the image acquisition device to be calibrated
- camera H is the height of the installation position of the image acquisition device from the ground.
- a g A g T H g C g *A g T
- H g (A g A g T )*(C g A g T ) -1
- Ag is a matrix composed of the physical coordinates of the above n points (including the first projection point, the second projection point, the third target point and the fourth target point), and C g is the pixel coordinates of the above n points
- the formed matrix, H g is the second homography matrix of the ground, where h 33 is 1;
- a g T represents performing matrix transposition operation on the matrix A g .
- a calibration device for an image acquisition device in a vehicle is provided.
- Fig. 7 is a schematic diagram of a calibration device provided by an embodiment of the present disclosure. As shown in Fig. 7, the device includes:
- the first determination module 200 is configured to determine the first homography matrix of the calibration plate according to the first image
- Each module in the above-mentioned calibration device can be fully or partially realized by software, hardware and a combination thereof.
- the above-mentioned modules can be embedded in or independent of the processor in the computer device in the form of hardware, and can also be stored in the memory of the computer device in the form of software, so that the processor can invoke and execute the corresponding operations of the above-mentioned modules.
- the disclosure provides a calibration device, which uses a calibration plate containing a calibration pattern to replace multiple cone barrels that need to be placed, and performs calibration by taking the first image containing the calibration plate. Since the space of the calibration plate is smaller, it can effectively reduce The field space required in the calibration process, thereby improving the applicability; in addition, the present disclosure automatically determines the first homography matrix of the calibration plate through the first image, and then determines the vanishing point of the image acquisition device according to the first homography matrix As well as the second homography matrix on the ground, compared with manual calibration, it can effectively improve the calibration efficiency and the accuracy of the calibration results.
- the first determining module 200 is further configured to: perform corner detection according to the first image to obtain the pixel coordinates of the corners in the first image; obtain the physical coordinates of the corners; obtain the pixel coordinates of the corners and The physical coordinates determine the first homography matrix of the calibration plate.
- the first determination module 200 is further configured to: perform binarization processing on the first image to obtain a second image; extract a calibration pattern from the second image; perform corner detection according to the extracted calibration pattern to obtain The pixel coordinates of the corner points of the calibration pattern.
- the second determination module 300 is also used to: determine the lateral offset between the lens center of the image acquisition device and the center point of the calibration plate; determine the image acquisition according to the lateral offset and the first homography matrix The vanishing point of the device.
- the second determination module 300 is further configured to: according to the first homography matrix of the calibration board, and the preset relationship between the second homography matrix of the ground and the first homography matrix of the calibration board, Determine the second homography matrix for the ground.
- the second determination module 300 is also used to: acquire the physical coordinates of the first projection point and the physical coordinates of the second projection point, the first projection point is the projection point of the first target point on the calibration plate on the ground , the second projection point is the projection point of the second target point on the calibration plate on the ground, the first target point and the second target point are points on the calibration pattern of the calibration plate, and the first target point is different from the second target point;
- the second homography matrix of the ground is determined according to the vanishing point of the image acquisition device, the first homography matrix of the calibration plate, and the physical coordinates of the first projection point and the physical coordinates of the second projection point.
- the second determination module 300 is further configured to: determine at least one third target point on the line connecting the vanishing point of the image acquisition device and the first projection point, and determine at least one third target point between the vanishing point of the image acquisition device and the second projection Determine at least one fourth target point on the connection line of the points; determine the physical coordinates of the third target point and the fourth target according to the physical coordinates of the first projected point, the physical coordinates of the second projected point, and the vanishing point of the image acquisition device The physical coordinates of the point; according to the physical coordinates of the first projected point, the physical coordinates of the second projected point, the physical coordinates of the third target point, the physical coordinates of the fourth target point, and the first homography matrix of the calibration plate, get The pixel coordinates of the first projection point, the pixel coordinates of the second projection point, the pixel coordinates of the third target point and the pixel coordinates of the fourth target point; according to the physical coordinates and pixel coordinates of the first projection point, the physical coordinates of
- the memory 12 is used to store programs and data, and the processor 11 invokes the programs stored in the memory to execute the technical solution of any one of the foregoing method embodiments.
- the memory and the processor are electrically connected directly or indirectly to realize data transmission or interaction.
- these components may be electrically connected to each other through one or more communication buses or signal lines, for example, they may be connected through a bus.
- Computer-executed instructions for implementing the data access control method are stored in the memory, including at least one software function module that can be stored in the memory in the form of software or firmware.
- the processor runs the software programs and modules stored in the memory to execute various Functional application and data processing.
- the memory can be, but not limited to, random access memory (Random Access Memory, RAM), read-only memory (Read Only Memory, ROM), programmable read-only memory (Programmable Read-Only Memory, PROM), erasable only Read memory (Erasable Programmable Read-Only Memory, EPROM), Electric Erasable Programmable Read-Only Memory (EEPROM), etc.
- RAM Random Access Memory
- ROM read-only memory
- PROM programmable read-only memory
- PROM Programmable Read-Only Memory
- EPROM Erasable Programmable Read-Only Memory
- EEPROM Electric Erasable Programmable Read-Only Memory
- the memory is used to store programs, and the processor executes the programs after receiving execution instructions.
- the software programs and modules in the memory may also include an operating system, which may include various software components and/or drivers for managing system tasks (such as memory management, storage device control, power management, etc.), and may Communicate with various hardware or software components to provide an operating environment for other software components.
- the processor can be an integrated circuit chip with signal processing capability.
- the above-mentioned processor may be a general-purpose processor, including a central processing unit (Central Processing Unit, CPU), a network processor (Network Processor, NP) and the like.
- CPU Central Processing Unit
- NP Network Processor
- Various methods, steps and logic block diagrams disclosed in the embodiments of the present disclosure may be implemented or executed.
- a general-purpose processor may be a microprocessor, or the processor may be any conventional processor, or the like.
- a computer-readable storage medium wherein computer-executable instructions are stored in the computer-readable storage medium, and the computer-executable instructions are used to implement the steps of various method embodiments of the present disclosure when executed by a processor .
- a computer program product including a computer program, and when the computer program is executed by a processor, the steps of the various method embodiments of the present disclosure are implemented.
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Abstract
Description
Claims (11)
- 一种车辆中图像采集装置的标定方法,其特征在于,包括:获取所述图像采集装置拍摄的标定板的第一图像,所述标定板的中心点的高度与所述图像采集装置的镜头中心的高度相同;根据所述第一图像,确定所述标定板的第一单应性矩阵;根据所述第一单应性矩阵,确定所述图像采集装置的消失点以及地面的第二单应性矩阵。
- 根据权利要求1所述的方法,其特征在于,所述根据所述第一图像,确定所述标定板的第一单应性矩阵,包括:根据所述第一图像进行角点检测,得到所述第一图像中的角点的像素坐标;获取所述角点的物理坐标;根据所述角点的像素坐标以及所述物理坐标,确定所述标定板的第一单应性矩阵。
- 根据权利要求2所述的方法,其特征在于,所述根据所述第一图像进行角点检测,得到所述第一图像中的角点的像素坐标,包括:对所述第一图像进行二值化处理,得到第二图像;从所述第二图像中提取标定图案;根据提取的标定图案进行角点检测,得到所述标定图案的角点的像素坐标。
- 根据权利要求1所述的方法,其特征在于,所述方法还包括:确定所述图像采集装置的镜头中心与所述标定板的中心点的横向偏移量;根据所述第一单应性矩阵,确定所述图像采集装置的消失点,包括:根据所述横向偏移量以及所述第一单应性矩阵,确定所述图像采集装置的消失点。
- 根据权利要求1-4任一项所述的方法,其特征在于,根据所述第一单应性矩阵,确定地面的第二单应性矩阵,包括:根据所述标定板的第一单应性矩阵,以及所述地面的第二单应性矩阵与所述标定板的第一单应性矩阵的预设关系,确定所述地面的第二单应性矩阵。
- 根据权利要求4所述的方法,其特征在于,根据所述第一单应性矩阵,确定地面的第二单应性矩阵,包括:获取第一投影点的物理坐标以及第二投影点的物理坐标,所述第一投影点为标定板上的第一目标点在地面的投影点,所述第二投影点为标定板上的第二目标点在地面的投影点,所述第一目标点以及所述第二目标点为所述标定板的标定图案上的点,所述第一目标点与所述第二目标点不同;根据所述图像采集装置的消失点、所述标定板的第一单应性矩阵,以及所述第一投影点的物理坐标以及第二投影点的物理坐标,确定所述地面的第二单应性矩阵。
- 根据权利要求6所述的方法,其特征在于,所述根据所述图像采集装置的消失点、所述标定板的第一单应性矩阵,以及所述第一投影点的物理坐标以及第二投影点的物理坐标,确定所述地面的第二单应性矩阵,包括:在所述图像采集装置的消失点与所述第一投影点的连线上确定至少一个第三目标点,在所述图像采集装置的消失点与所述第二投影点的连线上确定至少一个第四目标点;根据所述第一投影点的物理坐标、所述第二投影点的物理坐标、以及所述图像采集装置的消失点,确定所述第三目标点的物理坐标以及所述第四目标点的物理坐标;根据所述第一投影点的物理坐标、所述第二投影点的物理坐标、所述第三目标点的物理坐标、所述第四目标点的物理坐标、以及所述标定板的第一单应性矩阵,得到所述第一投影点的像素坐标、所述第二投影点的像素坐标、所述第三目标点的像素坐标以及所述第四目标点的像素坐标;根据所述第一投影点的物理坐标及像素坐标、所述第二投影点的物理坐标及像素坐标、所述第三目标点的物理坐标及像素坐标、以及所述第四目标点的物理坐标以及像素坐标,确定所述地面的第二单应性矩阵。
- 一种标定装置,其特征在于,包括:图像获取模块,用于获取图像采集装置拍摄的标定板的第一图像,所述标定板的中心点的高度与所述图像采集装置的镜头中心的高度相同;第一确定模块,用于根据所述第一图像,确定所述标定板的第一单应性矩阵;第二确定模块,用于根据所述第一单应性矩阵,确定所述图像采集装置的消失点以及地面的第二单应性矩阵。
- 一种标定设备,其特征在于,包括:存储器,处理器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述处理器执行所述程序时实现如权利要求1-7任一项所述的标定方法。
- 一种计算机可读存储介质,其特征在于,所述计算机可读存储介质中存储有计算机执行指令,所述计算机执行指令被处理器执行时用于实现如权利要求1-7任一项所述的标定方法。
- 一种计算机程序产品,包括计算机程序,其特征在于,该计算机程序被处理器执行时实现如权利要求1-7任一项所述的标定方法。
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202110644986.6 | 2021-06-09 | ||
| CN202110644986.6A CN113284190B (zh) | 2021-06-09 | 2021-06-09 | 标定方法、装置、设备、存储介质及产品 |
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
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| CN115797468A (zh) * | 2023-02-03 | 2023-03-14 | 厦门农芯数字科技有限公司 | 一种鱼眼摄像头安装高度的自动校正方法、装置以及设备 |
| CN116182907A (zh) * | 2023-03-31 | 2023-05-30 | 环鸿电子(昆山)有限公司 | 惯性测量单元评估方法及其系统 |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN113284190B (zh) * | 2021-06-09 | 2023-04-25 | 上海临港绝影智能科技有限公司 | 标定方法、装置、设备、存储介质及产品 |
| CN114719863A (zh) * | 2022-03-18 | 2022-07-08 | 陶霖密 | 基于方块阵列的无人机室内定位方法及装置 |
| CN115690222A (zh) * | 2022-09-07 | 2023-02-03 | 梅卡曼德(北京)机器人科技有限公司 | 标定图案识别方法、标定方法、装置和电子设备 |
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| CN116182907A (zh) * | 2023-03-31 | 2023-05-30 | 环鸿电子(昆山)有限公司 | 惯性测量单元评估方法及其系统 |
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