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On pedestrian detection and tracking in infrared videos

机译:关于红外视频中的行人检测和跟踪

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摘要

This article presents an approach for pedestrian detection and tracking from infrared imagery. The GMM background model is first deployed to separate the foreground candidates from background, then a shape describer is introduced to construct the feature vector for pedestrian candidates, and a SVM classifier is trained based on datasets generated from infrared images or manually. After detecting the pedestrian based on the SVM classifier, a multi-cues fusing algorithm is provided to facilitate the task of pedestrian tracking using both edge feature and intensity feature under the particle filter framework. Experimental results with various Infrared Video Database are reported to demonstrate the accuracy and robustness of our algorithm.
机译:本文介绍了一种从红外图像进行行人检测和跟踪的方法。首先部署GMM背景模型以将前景候选者与背景分离,然后引入形状描述器为行人候选者构建特征向量,并基于从红外图像或手动生成的数据集训练SVM分类器。在基于SVM分类器检测到行人之后,提供了一种多线索融合算法,以在粒子滤波框架下使用边缘特征和强度特征来促进行人跟踪的任务。报告了各种红外视频数据库的实验结果,以证明我们算法的准确性和鲁棒性。

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