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Texture Modelling for Age Invariant Face Recognition

机译:纹理模型为年龄不变的人脸识别

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This Research study proposes a novel method for face recognition based on Texture boundaries or edges by using Canny and Sobel Edge detection that make use of global and personalized models. The system is aimed to recognize faces and identify their similarity across ages. A Personalized model covers the individual aging patterns while a Global model captures general aging patterns in the population. We introduced a de-aging factor that de-ages each individual in the image gallery. We used the k nearest neighbor approach for building a personalized model. Regression analysis was applied to build the models. During the test phase, we built a similarity matrix and determined the rank 1 identification by using a Leave One Person Out strategy. We used FG-Net database for validating our technique and achieved 62 percent Rank 1 identification rate.
机译:该研究研究提出了一种基于纹理边界或边缘的面部识别的新方法,采用脆弱和Sobel边缘检测,利用全局和个性化模型。该系统旨在识别面对面并识别他们跨年龄的相似性。个性化模型涵盖各个老化模式,而全球模型则捕获人口中的一般老化模式。我们介绍了一个脱龄因素,在图像库中减少每个人。我们使用K最近邻近构建个性化模型的方法。应用回归分析来构建模型。在测试阶段,我们建立了一个相似性矩阵,并通过使用留下一个人的策略确定秩1识别。我们使用FG-NET数据库来验证我们的技术,并实现了62%的排名1识别率。

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