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Evaluation and analysis of illumination normalization methods for face recognition

机译:面部识别照明标准化方法的评价与分析

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The illumination variation is one of the challenging problems in Face Recognition under complex lighting conditions. Research community has evaluated performance of illumination normalization methods to some extent, yet there is a need to analyze them in depth using performance parameters like False Acceptance Rate, False Rejection Rate, Recognition Rate, Zero False Acceptance Rate, Zero False Rejection Rate, Equal Error Rate, etc. The paper presents performance evaluation and analysis of five illumination invariant methods namely Self Quotient Image, Non-local Means, Adaptive Non Local Means, Wavelet De-noising, and Adaptive Single Scale Retinex on Extended Yale B face database and CMU PIE face database. It is observed that Recognition Rate at Equal Error Rate is quiet acceptable for Self Quotient Image and Adaptive Single Scale Retinex. Also, Adaptive Single-scale Retinex method gives best performance for more complex illumination conditions.
机译:照明变化是在复杂的照明条件下面部识别的具有挑战性问题之一。研究界已经在某种程度上评估了照明标准化方法的性能,但需要使用像假验收率,假拒绝率,识别率,零假释放速率,零假拒绝率,零误差率,相当于错误,因此需要深入分析它们。速率等。本文提出了五种照明不变方法的性能评估和分析,即自我商量图像,非本地手段,自适应非本地手段,小波脱模和延伸的耶鲁B脸部数据库和CMU派的自适应单尺度Retinex面部数据库。观察到,对于自信图像和自适应单尺度Retinex,识别率为相等的误差率是安静的。此外,自适应单尺度Retinex方法为更复杂的照明条件提供了最佳性能。

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