Robust Tracking in Low Light and Sudden Illumination Changes

Hatem Alismail, Brett Browning, S. Lucey
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引用次数: 29

Abstract

We present an algorithm for robust and real-time visual tracking under challenging illumination conditions characterized by poor lighting as well as sudden and drastic changes in illumination. Robustness is achieved by adapting illumination-invariant binary descriptors to dense image alignment using the Lucas and Kanade algorithm. The proposed adaptation preserves the Hamming distance under least-squares minimization, thus preserving the photometric invariance properties of binary descriptors. Due to the compactness of the descriptor, the algorithm runs in excess of 400 fps on laptops and 100 fps on mobile devices.
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弱光和突然光照变化下的鲁棒跟踪
我们提出了一种算法,在具有挑战性的照明条件下进行鲁棒和实时的视觉跟踪,其特征是光照不足以及光照的突然和剧烈变化。鲁棒性是通过使用Lucas和Kanade算法使光照不变二进制描述符适应密集图像对齐来实现的。该方法保留了最小二乘最小化条件下的汉明距离,从而保持了二元描述符的光度不变性。由于描述符的紧凑性,该算法在笔记本电脑上的运行速度超过400 fps,在移动设备上的运行速度超过100 fps。
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