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Motion Segmentation Using Optical Flow for Pedestrian Detection from Moving Vehicle

机译:使用光流进行运动分割以检测移动车辆中的行人

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This paper proposes a pedestrian detection method using optical flows analysis and Histogram of Oriented Gradients (HOG). Due to the time consuming problem in sliding window based, motion segmentation proposed based on optical flow analysis to localize the region of moving object. A moving object is extracted from the relative motion by segmenting the region representing the same optical flows after compensating the ego-motion of the camera. Two consecutive images are divided into grid cells 14×14 pixels, then tracking each cell in current frame to find corresponding cells in the next frame. At least using three corresponding cells, affine transformation is performed according to each corresponding cells in the consecutive images, so that conformed optical flows are extracted. The regions of moving object are detected as transformed objects are different from the previously registered background. Morphological process is applied to get the candidate human region. The HOG features are extracted on the candidate region and classified using linear Support Vector Machine (SVM). The HOG feature vectors are used as input of linear SVM to classify the given input into pedestrianon-pedestrian. The proposed method was tested in a moving vehicle and shown significant improvement compare with the original HOG.
机译:提出了一种利用光流分析和定向梯度直方图(HOG)的行人检测方法。由于基于滑动窗口的耗时问题,提出了一种基于光流分析的运动分割方法来对运动物体区域进行定位。在补偿相机的自我运动之后,通过分割代表相同光流的区域,从相对运动中提取运动对象。将两个连续的图像划分为14×14像素的网格单元,然后跟踪当前帧中的每个单元,以在下一帧中找到对应的单元。至少使用三个对应的像元,根据连续图像中的每个对应的像元执行仿射变换,从而提取出符合的光流。检测到运动对象的区域,因为变换后的对象与先前注册的背景不同。应用形态学过程来获得候选人类区域。 HOG特征在候选区域上提取,并使用线性支持向量机(SVM)进行分类。 HOG特征向量用作线性SVM的输入,以将给定输入分类为行人/非行人。所提出的方法在移动车辆中进行了测试,与原始HOG相比显示出显着改进。

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