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Facial Features for Template Matching Based Face Recognition | Science Publications

机译:基于模板匹配的面部识别的面部特征科学出版物

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> Problem statement: Template matching had been a conventional method for object detection especially facial features detection at the early stage of face recognition research. The appearance of moustache and beard had affected the performance of features detection and face recognition system since ages ago. Approach: The proposed algorithm aimed to reduce the effect of beard and moustache for facial features detection and introduce facial features based template matching as the classification method. An automated algorithm for face recognition system based on detected facial features, iris and mouth had been developed. First, the face region was located using skin color information. Next, the algorithm computed the costs for each pair of iris candidates from intensity valleys as references for iris selection. As for mouth detection, color space method was used to allocate lips region, image processing methods to eliminate unwanted noises and corner detection technique to refine the exact location of mouth. Finally, template matching was used to classify faces based on the extracted features. Results: The proposed method had shown a better features detection rate (iris = 93.06%, mouth = 95.83%) than conventional method. Template matching had achieved a recognition rate of 86.11% with acceptable processing time (0.36 sec). Conclusion: The results indicate that the elimination of moustache and beard has not affected the performance of facial features detection. The proposed features based template matching has significantly improved the processing time of this method in face recognition research.
机译: > 问题陈述:模板匹配是一种传统的对象检测方法,尤其是在人脸识别研究早期的人脸特征检测。自古以来,胡须和胡须的出现就一直影响着特征检测和面部识别系统的性能。 方法:该算法旨在减少胡须和胡须对面部特征检测的影响,并引入基于模板匹配的面部特征作为分类方法。开发了一种基于检测到的面部特征,虹膜和嘴部的自动面部识别系统算法。首先,使用肤色信息定位脸部区域。接下来,该算法从强度谷计算出每对虹膜候选对的成本,作为虹膜选择的参考。对于嘴部检测,使用颜色空间方法分配嘴唇区域,使用图像处理方法消除不想要的噪音,并使用角点检测技术细化嘴部的精确位置。最后,模板匹配用于基于提取的特征对人脸进行分类。 结果:所提出的方法具有比常规方法更好的特征检测率(虹膜= 93.06%,嘴巴= 95.83%)。模板匹配以可接受的处理时间(0.36秒)实现了86.11%的识别率。 结论:结果表明,消除胡须和胡须并未影响面部特征检测的性能。所提出的基于特征的模板匹配大大改善了该方法在人脸识别研究中的处理时间。

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