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METHOD OF DETECTING PEDESTRIAN AND VEHICLE BASED ON CONVOLUTIONAL NEURAL NETWORK BY USING STEREO CAMERA

机译:立体相机的基于卷积神经网络的行人和车辆检测方法

摘要

Provided is a method of detecting pedestrians and vehicles based on a convolutional neural network by using a stereo camera, for generating a disparity video through stereo matching in a video photographed by the stereo camera, detecting object candidates by using the disparity image, and detecting the pedestrians and the vehicles through an object detection process for the detected candidate. The method includes receiving a stereo video; acquiring a disparity video from the stereo video using stereo matching to convert the disparity video into a depth video; extracting object candidates by analyzing a histogram of the depth video; and detecting an object by using a convolutional neural network to be detected among the object candidates. Object candidates are detected using disparity video in advance, and one of the object candidates is detected whether it is a pedestrian or a vehicle, such that less time is required.
机译:提供了一种方法,该方法通过使用立体相机基于卷积神经网络检测行人和车辆,以通过在立体相机拍摄的视频中通过立体匹配来生成视差视频,通过使用视差图像来检测对象候选并检测行人和车辆通过对象检测过程为检测到的候选对象。该方法包括接收立体声视频;以及使用立体匹配从立体视频中获取视差视频,以将视差视频转换为深度视频;通过分析深度视频的直方图来提取候选对象;通过使用卷积神经网络来检测对象候选中的对象。预先使用视差视频检测对象候选,并且检测对象候选之一是行人还是车辆,从而需要更少的时间。

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