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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Novel and efficient pedestrian detection using bidirectional PCA
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Novel and efficient pedestrian detection using bidirectional PCA

机译:使用双向PCA的新颖和高效的行人检测

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摘要

The detection of pedestrian has attracted much research in the past decade due to the essential role it plays in intelligent video surveillance and vehicle vision systems. However, the existing algorithms do not meet the requirement of real applications in terms of detection performance. This paper proposes a new robust algorithm for pedestrian detection based on image reconstruction using bidirectional PCA (BDPCA). Unlike PCA, since it is a straightforward image projection technique, BDPCA preserves the shape structure of objects and is computationally effective. Due to these advantages, BDPCA is a promising tool for object detection and recognition. The algorithm was tested on two datasets, INRIA and PennFudanPed. Our experiment proved that using BDPCA with vertical edge images was the most suitable for pedestrian detection. The comparison between BDPCA, PCA, and histogram of oriented gradient (HOG) based methods demonstrates superior accuracy and robustness of the proposed algorithm to the others.
机译:由于在智能视频监控和车辆视觉系统中扮演的基本作用,过去十年来检测行人的检测吸引了很多研究。然而,现有算法不符合检测性能方面的实际应用的要求。本文提出了一种基于使用双向PCA(BDPCA)的图像重建的行人检测稳健算法。与PCA不同,由于它是一种直接的图像投影技术,因此BDPCA保留了物体的形状结构并且是计算方式的。由于这些优点,BDPCA是对象检测和识别的有希望的工具。该算法在两个数据集,inria和pennfudanped上进行了测试。我们的实验证明,使用具有垂直边缘图像的BDPCA是最适合行人检测的。基于面向梯度(HOG)的方法的BDPCA,PCA和直方图之间的比较展示了所提出的算法对其他算法的卓越精度和鲁棒性。

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