A Non-Overlapping View Human Tracking Algorithm using HSV Colour Space

S. Teoh, V. Yap, H. Nisar
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引用次数: 2

Abstract

Object tracking done by multiple cameras is commonly used to monitor a wide area such as airport, the resident area of a large city or any large public area. Multiple targets tracking across camera views is challenging since there might be a significant appearance change of a target across camera views caused by variations in illumination conditions, poses and camera image characteristics. To address this problem, we propose an object re-identification technique to track the targets through multiple non-overlapping views camera by using Bhattacharyya matching method. To handle the variation of lighting condition and photometric settings of cameras, we have utilised the layers in the HSV colour space as the feature to represent the appearance of the object. Few testbeds were setup indoors and outdoors to better evaluate the accuracy of the cross camera human tracking algorithm. Extensive experiments on the proposed algorithms demonstrate the effectiveness and reliability of our approach by able to track the human using only one of the HSV layers.
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一种基于HSV色彩空间的非重叠视图人体跟踪算法
由多台摄像机完成的目标跟踪通常用于机场、大城市居民区或任何大型公共区域等大范围的监控。在摄像机视图中跟踪多个目标是具有挑战性的,因为可能存在由光照条件、姿势和摄像机图像特征的变化引起的目标在摄像机视图中的显著外观变化。为了解决这一问题,我们提出了一种利用Bhattacharyya匹配方法通过多个非重叠视角相机跟踪目标的目标再识别技术。为了处理光照条件和相机光度设置的变化,我们利用HSV色彩空间中的图层作为特征来表示物体的外观。为了更好地评估交叉摄像机人体跟踪算法的准确性,在室内和室外设置了很少的测试平台。对所提出算法的大量实验证明了我们的方法的有效性和可靠性,仅使用一个HSV层就可以跟踪人类。
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