Robust Object Tracking Method Dealing with Occlusion

Qinjun Zhao, Wei Tian, Qin Zhang, Junxu Wei
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引用次数: 2

Abstract

This paper proposes a robust object tracking algorithm dealing with the occlusion problem and illumination change. In particular, we judge whether each frame image is occluded by the confidence map, and two object spatial-temporal context models are established, one is updated every frame in the process of tracking, and the other is set up before the frame that the object is occluded. This method can correct the tracking drift caused by the model update during the occlusion process. Besides, the target image's pixel value is normalized to remove the effect of illumination change, and the phase of the object image's Fast Fourier Transform is used as the texture of the image. Experimental results show that the proposed method is robust to complex situation such as heavy occlusion, dramatic illumination change and surface variation.
处理遮挡的鲁棒目标跟踪方法
本文提出了一种鲁棒的目标跟踪算法,用于处理遮挡和光照变化问题。特别是,我们通过置信度图判断每一帧图像是否被遮挡,并建立两个目标时空上下文模型,一个在跟踪过程中每一帧更新,另一个在目标被遮挡的帧之前建立。该方法可以纠正遮挡过程中由于模型更新引起的跟踪漂移。此外,对目标图像的像素值进行归一化处理,去除光照变化的影响,并利用目标图像的快速傅里叶变换的相位作为图像的纹理。实验结果表明,该方法对强遮挡、剧烈光照变化和地表变化等复杂情况具有较强的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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