基于多特征融合的GMM运动目标和阴影检测

Tingting Xue, Yanjiang Wang, Yujuan Qi
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引用次数: 4

摘要

阴影检测与去除对于准确地从背景中分离出目标具有重要作用。传统的基于颜色等单一特征的目标和阴影检测算法容易受到场景和光照变化的限制。本文提出了一种基于多特征融合的高斯混合背景建模方法,通过融合颜色和纹理来降低单特征的误检率。然后,提出了一种双阴影判断方法来确定可疑阴影和真实阴影。首先根据阴影的颜色角度确定阴影,然后根据阴影区域与背景之间的亮度检测阴影。最后,将两种阴影检测结果结合起来,为准确去除阴影提供了双重保证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-feature fusion based GMM for moving object and shadow detection
Shadow detection and removal plays an important role in segregating an object from background accurately. Traditional object and shadow detection algorithm based on single feature such as color is easily restricted by the scene and illumination changes. In this paper, a multi-feature fusion based Gaussian mixture background modeling method is proposed to lower the false detection rate using single feature by integrating color and texture. And then a double shadow judgment method is proposed to determine the suspected shadow and the true shadow. Firstly, the shadow is determined by the color angle of shadows, then, the shadow is detected according to the brightness between the shadow region and the background. Finally, the two results of shadow detection are combined, which offers a double guarantee for the accurate removal of shadow.
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