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REGION-DIVISION VECTOR QUANTIZATION HISTOGRAM METHOD FOR HUMAN FACE RECOGNITION

机译:人脸识别的区域划分矢量量化直方图方法

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摘要

We have developed a very simple yet highly reliable face recognition method called VQ histogram method. Codevector referred (or matched) count histogram, which is obtained by Vector Quantization (VQ) processing of facial image, is utilized as a very effective personal feature value. Furthermore, for adding the geometric information of the face to improve the recognition accuracy, a region-division (RD) VQ histogram method is proposed in this paper. We divide the facial area into 5 regions relating to the facial parts (forehead, eye, nose, mouth, jaw). Recognition results with different parts are first obtained separately and then combined by weighted averaging. Top1 recognition rate of 97.4% is obtained by using FB task (1195 images) in the standard FERET database. By using the private database, which was taken in practical but yet reasonably regulated environment, Top1 recognition rate of 100% is realized.
机译:我们已经开发了一种非常简单但高度可靠的人脸识别方法,称为VQ直方图方法。通过面部图像的矢量量化(VQ)处理获得的代码矢量参考(或匹配)计数直方图被用作非常有效的个人特征值。此外,为了增加人脸的几何信息以提高识别的准确性,本文提出了一种区域划分(VQ)直方图的方法。我们将面部区域分为与面部部分(前额,眼睛,鼻子,嘴巴,下巴)有关的5个区域。首先分别获得不同部分的识别结果,然后通过加权平均进行组合。通过使用标准FERET数据库中的FB任务(1195张图像),Top1识别率达到97.4%。通过在实际但合理调节的环境中使用私有数据库,Top1的识别率可达到100%。

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