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SVM Based Method for Identification and Recognition of Faces by Using Feature Distances

机译:基于SVM的识别和识别FACE的方法,使用特征距离

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In this paper, a scheme was presented to identify the locations of key features of a human face such as eyes, nose, chin known as the fiducial points and form a face graph. The relative distances between these features are calculated. These distance measures are considered to be unique identifying attributes of a person. The distance measures are used to train a Support Vector Machine (SVM). The identification takes place by matching the features of the presented person with the features that were used to train the SVM. The closest match results in identification. The Minimum Distance Classifier has been used to recognize a person uniquely using this SVM.
机译:在本文中,提出了一种方案,以识别人脸的关键特征的位置,如眼脸,鼻子,鼻子,称为基准点,形成面部图。 计算这些特征之间的相对距离。 这些距离措施被认为是一个人的唯一识别属性。 距离措施用于训练支持向量机(SVM)。 通过将所提出的人的特征与用于培训SVM的功能匹配来进行该识别。 最接近的匹配导致识别。 最小距离分类器已被用于识别唯一使用此SVM的人。

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