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An Improved Scheme of Local Directional Pattern for Texture Analysis with an Application to Facial Expressions

机译:一种改进的局部方向性纹理分析方案及其在表情上的应用

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In this paper, several extensions and modifications of Local Directional Pattern (LDP) are proposed with an objective to increase its robustness and discriminative power. Typically, Local Directional pattern generates a code based on the edge response value for the eight directions around a particular pixel. This method ignores the center value which can include important information. LDP uses absolute value and ignores sign of the response which carries information about image gradient and may contain more discriminative information. The sign of the original value carries information about the different trends (positive or negative) of the gradient and may contain some more data. Centered Local Directional Pattern (CLDP), Signed Local Directional Pattern (SLDP) and Centered-SLDP (CSLDP) are proposed in different conditions. Experimental results on 20 texture types using 5 different classifiers in different conditions shows that CLDP in both upper and lower traversal and CSLDP substantially outperforms the formal LDP. All the proposed methods were applied to facial expression emotion application. Experimental results show that SLDP and CLDP outperform original LDP in facial expression analysis.
机译:为了提高鲁棒性和判别力,本文提出了几种局部定向模式(LDP)的扩展和修改方法。通常,局部方向图基于围绕特定像素的八个方向的边缘响应值生成代码。此方法忽略可能包含重要信息的中心值。 LDP使用绝对值,并且忽略响应的符号,该响应带有有关图像梯度的信息,并且可能包含更多的判别信息。原始值的符号包含有关梯度的不同趋势(正或负)的信息,并且可能包含更多数据。提出了在不同条件下的中心本地定向模式(CLDP),签名本地定向模式(SLDP)和中心SLDP(CSLDP)。在不同条件下使用5个不同的分类器对20种纹理类型进行的实验结果表明,上下遍历的CLDP和CSLDP均明显优于形式LDP。所有提出的方法都被应用到面部表情情感应用中。实验结果表明,在面部表情分析中,SLDP和CLDP优于原始LDP。

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