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Pedestrian detection based on redundant wavelet transform

机译:基于冗余小波变换的行人检测

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摘要

Intelligent video surveillance is to analysis video or image sequences captured by a fixed or mobile surveillance camera, including moving object detection, segmentation and recognition. By using it, we can be notified immediately in an abnormal situation. Pedestrian detection plays an important role in an intelligent video surveillance system, and it is also a key technology in the field of intelligent vehicle. So pedestrian detection has very vital significance in traffic management optimization, security early warn and abnormal behavior detection. Generally, pedestrian detection can be summarized as: first to estimate moving areas; then to extract features of region of interest; finally to classify using a classifier. Redundant wavelet transform (RWT) overcomes the deficiency of shift variant of discrete wavelet transform, and it has better performance in motion estimation when compared to discrete wavelet transform. Addressing the problem of the detection of multi-pedestrian with different speed, we present an algorithm of pedestrian detection based on motion estimation using RWT, combining histogram of oriented gradients (HOG) and support vector machine (SVM). Firstly, three intensities of movement (IoM) are estimated using RWT and the corresponding areas are segmented. According to the different IoM, a region proposal (RP) is generated. Then, the features of a RP is extracted using HOG. Finally, the features are fed into a SVM trained by pedestrian databases and the final detection results are gained. Experiments show that the proposed algorithm can detect pedestrians accurately and efficiently.
机译:智能视频监控是通过固定或移动监控摄像机捕获的视频或图像序列,包括移动对象检测,分割和识别。通过使用它,我们可以在异常情况下立即通知。行人检测在智能视频监控系统中起着重要作用,它也是智能车辆领域的关键技术。因此,行人检测在交通管理优化,安全性早期警告和异常行为检测方面具有重要意义。一般来说,可以概括行人检测为:首先估计移动区域;然后提取利益区域的特征;最后使用分类器分类。冗余小波变换(RWT)克服了离散小波变换的变速器的缺陷,与离散小波变换相比,在运动估计中具有更好的性能。解决了不同速度检测多行人的问题,我们使用RWT的基于运动估计的行人检测算法,使取向梯度(HOG)的直方图组合并支持向量机(SVM)。首先,使用RWT估计三种运动强度(IOM),并且相应的区域被分段。根据不同的IOM,产生区域提案(RP)。然后,使用HOG提取RP的特征。最后,将特征馈入由步行数据库训练的SVM,并且获得了最终的检测结果。实验表明,所提出的算法可以准确和高效地检测行人。

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