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Structural similarity-based object tracking in multimodality surveillance videos

机译:多模式监控视频中基于结构相似度的对象跟踪

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摘要

This paper addresses the problem of object tracking in video sequences for surveillance applications by using a recently proposed structural similarity-based image distance measure. Multimodality surveillance videos pose specific challenges to tracking algorithms, due to, for example, low or variable light conditions and the presence of spurious or camouflaged objects. These factors often cause undesired luminance and contrast variations in videos produced by infrared sensors (due to varying thermal conditions) and visible sensors (e.g., the object entering shadowy areas). Commonly used colour and edge histogram-based trackers often fail in such conditions. In contrast, the structural similarity measure reflects the distance between two video frames by jointly comparing their luminance, contrast and spatial characteristics and is sensitive to relative rather than absolute changes in the video frame. In this work, we show that the performance of a particle filter tracker is improved significantly when the structural similarity-based distance is applied instead of the conventional Bhattacharyya histogram-based distance. Extensive evaluation of the proposed algorithm is presented together with comparisons with colour, edge and mean-shift trackers using real-world surveillance video sequences from multimodal (infrared and visible) cameras.
机译:本文通过使用最近提出的基于结构相似度的图像距离度量,解决了用于监视应用的视频序列中的对象跟踪问题。多模态监视视频由于光线不足或变化以及伪造或伪装物体的存在,对跟踪算法提出了特殊的挑战。这些因素通常会在由红外传感器(由于变化的热条件)和可见传感器(例如,进入阴影区域的物体)产生的视频中引起不希望的亮度和对比度变化。在这种情况下,常用的基于颜色和边缘直方图的跟踪器通常会失败。相反,结构相似性度量通过联合比较两个视频帧的亮度,对比度和空间特性来反映两个视频帧之间的距离,并且对视频帧中的相对变化而非绝对变化敏感。在这项工作中,我们表明当应用基于结构相似性的距离而不是传统的基于Bhattacharyya直方图的距离时,粒子过滤器跟踪器的性能得到了显着改善。提出了对所提出算法的广泛评估,并使用来自多模式(红外和可见光)摄像机的真实监控视频序列与颜色,边缘和均值偏移跟踪器进行了比较。

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