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R-theta local neighborhood pattern for unconstrained facial image recognition and retrieval

机译:R-theta局部邻域模式可无限制地识别和检索人脸图像

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In this paper R-Theta Local Neighborhood Pattern (RTLNP) is proposed for facial image retrieval. RTLNP exploits relationships amongst the pixels in local neighborhood of the reference pixel at different angular and radial widths. The proposed encoding scheme divides the local neighborhood into sectors of equal angular width. These sectors are again divided into subsectors of two radial widths. Average grayscales values of these two subsectors are encoded to generate the micropatterns. Performance of the proposed descriptor has been evaluated and results are compared with the state of the art descriptors e.g. LBP, CSLBP, CSLTP, LDP, LTrP, MBLBP, and SLBP. The most challenging facial constrained and unconstrained databases, namely; AT&T, CARIA-Face-V5-Cropped, LFW, and Color FERET have been used for showing the efficiency of the proposed descriptor. Proposed descriptor is also tested on near infrared (NIR) face databases; CASIA NIR-VIS 2.0 and PolyU-NIRFD to explore its potential with respect to NIR facial images. Better retrieval rates of RTLNP as compared to the existing state of the art descriptors show the effectiveness of the descriptor.
机译:本文提出了R-Theta局部邻域模式(RTLNP)用于人脸图像检索。 RTLNP利用参考像素在不同角度和径向宽度的局部邻域中的像素之间的关系。所提出的编码方案将局部邻域划分为相等角度宽度的扇区。这些扇区又被分为两个径向宽度的子扇区。对这两个子扇区的平均灰度值进行编码以生成微图案。已经评估了提出的描述符的性能,并将结果与​​现有描述符的状态进行了比较,例如LBP,CSLBP,CSLTP,LDP,LTrP,MBLBP和SLBP。最具挑战性的面部约束和不受约束的数据库,即; AT&T,CARIA-Face-V5-Cropped,LFW和Color FERET已用于显示提出的描述符的效率。拟议的描述符也已在近红外(NIR)人脸数据库上进行了测试; CASIA NIR-VIS 2.0和PolyU-NIRFD,以探索其在NIR面部图像方面的潜力。与现有技术的现有描述符相比,RTNLP的检索率更高,显示了描述符的有效性。

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