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An improved pedestrian detection approach for cluttered background in nighttime

机译:一种改进的夜间杂物背景行人检测方法

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Pedestrian detection is one of the most interesting topics in driver assistant systems. In a normal two-step detection framework: image segmentation (thresholding) and recognition, the pedestrian areas usually connect with other objects after segmentation, especially in cluttered nighttime images. The bad segmentation result causes the recognition module not to identify the pedestrians. This paper presents a fast template matching approach to locate the most pedestrian-like areas (candidates) in the complex background. At most of the time, the template matching method produces too many non-human candidates. However, our approach employs a set of efficient and simple filters to reject most of unwished candidates to reduce false alarm rate. Experiments show that the proposed method can segment the pedestrian areas well and promote the ability of the pedestrian detection system.
机译:行人检测是驾驶员辅助系统中最有趣的主题之一。在正常的两步检测框架中:图像分割(阈值)和识别,行人区域通常在分割后与其他对象连接,尤其是在夜间凌乱的图像中。不良的分割结果导致识别模块无法识别行人。本文提出了一种快速模板匹配方法,以在复杂背景下定位最像行人的区域(候选人)。在大多数情况下,模板匹配方法会产生过多的非人类候选对象。但是,我们的方法采用了一组高效且简单的过滤器来拒绝大多数未使用过的候选对象,以降低误报率。实验表明,该方法可以很好地分割行人区域,提高行人检测系统的能力。

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