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首页> 外文期刊>Complex & Intelligent Systems >Modified chess patterns: handcrafted feature descriptors for facial expression recognition
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Modified chess patterns: handcrafted feature descriptors for facial expression recognition

机译:修改过的国际象棋模式:面部表情识别的手工特征描述符

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Facial expressions are predominantly important in the social interaction as they convey the personal emotions of an individual. The main task in Facial Expression Recognition (FER) systems is to develop feature descriptors that could effectively classify the facial expressions into various categories. In this work, towards extracting distinctive features, Radial Cross Pattern (RCP), Chess Symmetric Pattern (CSP) and Radial Cross Symmetric Pattern (RCSP) feature descriptors have been proposed and are implemented in a 5 × documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{oddsidemargin}{-69pt} egin{document}$$imes $$end{document} 5 overlapping neighborhood to overcome some of the limitations of the existing methods such as Chess Pattern (CP), Local Gradient Coding (LGC) and its variants. In a 5 × documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{oddsidemargin}{-69pt} egin{document}$$imes $$end{document} 5 neighborhood, the 24 pixels surrounding the center pixel are arranged into two groups, namely Radial Cross Pattern (RCP), which extracts two feature values by comparing 16 pixels with the center pixel and Chess Symmetric Pattern (CSP) extracts one feature value from the remaining 8 pixels. The experiments are conducted using RCP and CSP independently and also with their fusion RCSP using different weights, on a variety of facial expression datasets to demonstrate the efficiency of the proposed methods. The results obtained from the experimental analysis demonstrate the efficiency of the proposed methods.
机译:由于他们传达了个人的个人情绪,因此面部表情在社会互动中主要是重要的。面部表情识别(FER)系统中的主要任务是开发功能描述符,可以有效地将面部表情分为各类类别。在这项工作中,已经提出了提取独特的特征,已经提出了径向横向图案(RCP),国际象棋对称模式(CSP)和径向交叉对称图案(RCSP)特征描述符,并以5× DocumentClass [12pt]实现{minimal}。 usepackage {ammath} usepackage {isysym} usepackage {amsfonts} usepackage {amssymb} usepackage {amsbsy} usepackage {mathrsfs} usepackage {supmeek} setLength { oddsidemargin} { - 69pt} begin {document} $$ times $$ end {document} 5重叠邻域,以克服现有方法的一些限制,如国际象棋模式(CP),局部梯度编码(LGC)及其变体。在一个5× documentClass [12pt] {minimal} usepackage {ammath} usepackage {isysym} usepackage {amsfonts} usepackage {amssy} usepackage {mathrsfs} usepackage {supmeek} setLength { oddsidemargin} { - 69pt} begin {document} $$$ times $$ end {document} 5邻域,围绕中心像素的24个像素被排列成两组,即径向交叉图案(RCP),从而提取两个通过将16像素与中心像素和Chess对称模式(CSP)进行比较,通过比较16像素(CSP)从剩余的8像素中提取一个特征值。通过独立的RCP和CSP进行实验,并且还使用不同重量的融合RCSP进行,在各种面部表达数据集上以证明所提出的方法的效率。从实验分析中获得的结果证明了所提出的方法的效率。

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