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Face location with LBP scale transform

机译:使用LBP比例变换进行人脸定位

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摘要

Local Binary Patterns (LBP) is an effective texture description operator and the histogram that it generates has been proved to be a very useful texture feature to adapt to rotation and illumination. Using the LBP features as feature vectors in adaBoost classifier for target identification has become a trend. But LBP is bound by the scale transformation, so it is not widely used in adaBoost face detector. This paper proposes a scale transform formula for Local Binary Patterns. Based on this formula, LBP features extracted from single fixed size templates can be trained to identify any size of faces. This paper also proposes a method to obtain particular detecting sub-areas called binary ring-shaped sub-windows, which can keep the LBP features rotation invariant. Experimental results show that the method we proposed here is feasible in face detecting.
机译:局部二进制图案(LBP)是一种有效的纹理描述运算符,其生成的直方图已被证明是一种非常有用的纹理特征,可以适应旋转和照明。在adaBoost分类器中使用LBP特征作为特征向量进行目标识别已成为一种趋势。但是LBP受比例变换的约束,因此在adaBoost人脸检测器中并未广泛使用。本文提出了一种局部二值模式的尺度变换公式。基于此公式,可以训练从单个固定大小的模板提取的LBP特征以识别任何大小的面孔。本文还提出了一种获取特定检测子区域的方法,称为二进制环形子窗口,该方法可以使LBP特征旋转保持不变。实验结果表明,本文提出的方法在人脸检测中是可行的。

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