六边形结构人体局部二值模式检测

Xiangjian He, Jianmin Li, Yan Chen, Qiang Wu, W. Jia
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引用次数: 6

摘要

局部二值模式(Local binary pattern, LBP)被广泛用于有效的纹理分类。LBP提供了一种简单有效的纹理模式表示方法。统一的lbp包含了大多数的lbp,在基于lbp的模式/目标识别中起着重要的作用。另一方面,基于马氏距离图(MDM)的人体检测基于人体的几何结构来识别人体的外观。每个MDM都显示一个清晰的纹理模式,可以使用lbp对其进行分类。在本文中,我们计算了六边形结构上MDMs的lbp。六边形结构中的圆形像素排列比正方形结构中的圆形像素排列具有更高的LBP表示精度。基于获得的均匀lbp,将卡方作为测量方法用于人体检测。我们表明,与仅基于MDMs的方法相比,我们使用基于MDMs的lbp的方法具有更高的人类检测率和更低的假阳性率。我们还将使用实验结果表明,六边形结构上的lbp导致更稳健的人类分类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Local Binary Patterns for Human Detection on Hexagonal Structure
Local binary pattern (LBP) was designed and has been widely used for efficient texture classification. LBP provides a simple and effective way to represent texture patterns. Uniform LBPs play an important role for LBP-based pattern/object recognition as they include majority of LBPs. On the other hand, Human detection based on Mahalanobis distance map (MDM) recognizes appearance of human based on geometrical structure. Each MDM shows a clear texture pattern that can be classified using LBPs. In this paper, we compute LBPs of MDMs on a hexagonal structure. The circular pixel arrangement in hexagonal structure results in higher accuracy for LBP representation than on square structure. Chi-square as a measure is used for human detection based on uniform LBPs obtained. We show that our method using LBPs built on MDMs has a higher human detection rate and a lower false positive rate compared to the method merely based on MDMs. We will also show using experimental results that LBPs on hexagonal structure lead to more robust human classification.
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