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Design of Intelligent Measurement System of Vehicle Dimensions Based on Structured Light Imaging and Machine Vision

机译:基于结构光成像和机器视觉的车辆尺寸智能测量系统设计

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At present, manual measurement is the main method of vehicle dimensions detection, which has some defects such as low efficiency, high cost, low accuracy, and non-standard manual operation. In order to solve these problems, this study proposed an intelligent measurement system of vehicle dimensions based on depth of field reconstruction and machine vision. The design of the depth of field sensor was based on the principle of structured light imaging. The structured light was decoded by two-dimensional cross-correlation technology to acquire the depth information of the vehicle surface. Then, hybrid Gaussian background modeling algorithm was used to extract the foreground signal of the vehicle, and machine vision was used to realize the coarse registration of point cloud information. Finally, vehicle accessories were extracted and removed according to the national standard requirements. Meanwhile, a prototype system was built to measure 964 vehicles with various types, and experimental results showed that the proportion of vehicle dimension error within 10cm is more than 90%, and the error of repeated measurement for the same vehicle is less than 0.5%. In this paper, the intelligent measurement method of vehicle dimensions meets the requirements of GB 21861–2014, and ensures the accuracy and objectivity of the detection process, as well as the fairness and openness of the results.
机译:目前,手工测量是车辆尺寸检测的主要方法,存在效率低,成本高,精度低,手工操作不规范等缺陷。为了解决这些问题,本研究提出了一种基于景深重建和机器视觉的智能车辆尺寸测量系统。景深传感器的设计基于结构化光成像原理。通过二维互相关技术对结构光进行解码,以获取车辆表面的深度信息。然后,使用混合高斯背景建模算法提取车辆的前景信号,并使用机器视觉实现点云信息的粗略配准。最后,根据国家标准要求提取并移除了车辆附件。同时,建立了一个原型系统,可测量964辆各种类型的车辆,实验结果表明,10cm以内的车辆尺寸误差比例大于90%,同一车辆的重复测量误差小于0.5%。本文的车辆尺寸智能测量方法符合GB 21861-2014的要求,可确保检测过程的准确性和客观性,以及结果的公正性和开放性。

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