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A modified discriminant sparse representation method for face recognition

机译:一种改进的判别式稀疏表示方法

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Recently, a new discriminative sparse representation method for robust face recognition that uses ℓ2-norm regularization was reported. In this paper, direct data-driven calculation of the balance parameter used in the objective function is presented. The modified system preserves the advantages of the original method while improving the recognition accuracy and making the system more automated, i.e., less dependent on the user's input. Extensive simulations are performed on six face databases, namely, ORL, YALE, FERET, FEI, Cropped AR, and Georgia Tech. Sample results are given demonstrating the properties of the modified system.
机译:最近,使用robust的一种新的具有鲁棒性的识别性稀疏稀疏表示方法 2 -规范正则化报告。本文介绍了目标函数中使用的平衡参数的直接数据驱动计算。改进的系统保留了原始方法的优点,同时提高了识别精度,并使系统更加自动化,即减少了对用户输入的依赖。在六个人脸数据库(即ORL,YALE,FERET,FEI,Cropped AR和Georgia Tech)上进行了广泛的模拟。给出了示例结果,展示了修改后的系统的特性。

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