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FACE BASED BIOMETRIC IDENTIFICATION USING MULTI-RESOLUTION TRACE TRANSFORM AND FUZZY ART COMBINATION

机译:基于多分辨率轨迹变换和模糊艺术组合的人脸生物识别

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摘要

Face recognition research still face challenge in some specific domains such as pose, illumination and Expression (PIE). This paper proposes a highly robust method for face recognition with variant pose, illumination, scaling, rotation, blur, reflection and difference expression (smiling, angry and screaming). Techniques introduced in this work are composed of two parts. The first one is the detection of facial features by using the concept of multi-resolution Trace transform. Then, in the second part, the supervised fuzzy ART is employed to measure and determine of similarity between the models and tested images. Finally, our method is evaluated with experiments on the XM2VTS and FERET face databases and compared with other related works (e.g. Eigen face, Enhance-EBGH, Hausdorff ARTMAP and Trace-Hamming). The extensive experimental results show that the average of accuracy rate of face recognition with variant pose, illumination, scaling, rotation, blur, reflection and difference expression is very high and it was found that our proposed method performed better than the other related works in all cases.
机译:面部识别研究在某些特定领域(例如姿势,照明和表情(PIE))仍然面临挑战。本文提出了一种高度可靠的人脸识别方法,该方法具有变体姿势,照明,缩放,旋转,模糊,反射和差异表达(微笑,生气和尖叫)。这项工作中介绍的技术由两部分组成。第一个是通过使用多分辨率跟踪变换的概念来检测面部特征。然后,在第二部分中,采用监督模糊ART来测量和确定模型与测试图像之间的相似性。最后,我们的方法在XM2VTS和FERET人脸数据库上进行了实验评估,并与其他相关作品(例如Eigen人脸,Enhanced-EBGH,Hausdorff ARTMAP和Trace-Hamming)进行了比较。广泛的实验结果表明,具有变体姿势,照明,缩放,旋转,模糊,反射和差异表达的人脸识别准确率的平均值很高,并且发现我们提出的方法在所有方面均比其他相关工作表现更好。案件。

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