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Performance evaluation methodology for face recognition algorithms.

机译:人脸识别算法的性能评估方法。

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We present two fundamental performance evaluation methodologies for face recognition algorithms. Our experiments include (1) the development of an evaluation methodology based on an identification and verification model and (2) the investigation of design decisions for a principal component analysis (PCA) based face recognition system. Throughout the series of experiments, we present a robust and comprehensive evaluation methodology for face recognition algorithms that allows researchers to identify the relative strengths and weaknesses of their algorithms and that points out the directions for future research.; Two critical performance characteristics of face recognition algorithms are the identification and verification performance. We report performance results based on the identification and verification model for various face recognition algorithms. We identify the state of the art by direct quantitative assessment of different approaches. The results that we report are for images taken (1) on the same day, (2) on different days, (3) at least one year apart, and (4) under different lighting conditions.; PCA-based algorithms form the basis of numerous algorithms in the face recognition literature. PCA is a statistical technique and its incorporation into a face recognition system requires numerous design decisions. We explicitly state the design decisions by implementation of a generic modular PCA-based face recognition system. We make a comprehensive analysis of the different implementations for each module, as these affect the variations in performance.
机译:我们提出了两种用于面部识别算法的基本性能评估方法。我们的实验包括(1)基于识别和验证模型的评估方法的开发以及(2)基于主成分分析(PCA)的人脸识别系统的设计决策调查。在整个系列实验中,我们提出了一种针对人脸识别算法的强大而全面的评估方法,该方法可让研究人员识别其算法的相对优势和劣势,并指出未来的研究方向。人脸识别算法的两个关键性能特征是识别和验证性能。我们基于各种面部识别算法的识别和验证模型报告性能结果。我们通过对不同方法进行直接定量评估来确定最新技术水平。我们报告的结果是针对(1)在同一天,(2)在不同日期,(3)至少间隔一年,以及(4)在不同光照条件下拍摄的图像;基于PCA的算法构成了面部识别文献中众多算法的基础。 PCA是一种统计技术,将其合并到面部识别系统中需要大量设计决策。我们通过基于通用模块化PCA的人脸识别系统的实现来明确陈述设计决策。我们对每个模块的不同实现进行了全面的分析,因为它们会影响性能的变化。

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