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Subspace State Estimator for Facial Biometric Verification

机译:面部生物特征验证的子空间状态估计器

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摘要

This paper proposes a new Subspace State Estimator (SSE) algorithm for facial biometric verification. In the proposed method, a sequential estimator is being designed in the image subspace which addresses the challenges due to nonlinear, no stationary, and heterogeneous noise. The proposed model includes a subspace method that overcomes the computational complexity associated with the sequential estimator. The theoretical foundation of the proposed method along with the experimental results are also presented in this paper. For the experimental evaluation of the proposed method, facial images from the public "Put Face Database" have been used. The experimental results demonstrate the superiority of the proposed method in comparison with its counterparts.
机译:本文提出了一种用于面部生物特征验证的新的子空间状态估计器(SSE)算法。在提出的方法中,在图像子空间中设计了一个顺序估计器,以解决由于非线性,无平稳噪声和异构噪声带来的挑战。提出的模型包括子空间方法,该方法克服了与顺序估计器相关的计算复杂性。本文还介绍了该方法的理论基础以及实验结果。为了对所提出的方法进行实验评估,使用了来自公众“脸部表情数据库”的脸部图像。实验结果证明了该方法相对于同类方法的优越性。

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