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Discriminant eigenfeatures-based image recognition implemented on a photorefractive correlator

机译:基于判别的实际图像在光折折叠相关器上实现的图像识别

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In this paper, we incorporate the theory of the multidimensional discriminant analysis into a photorefractive correlator architecture. In this approach, a set of eigenimages extracted from a large number of training images by K-L transform are stored in a photorefractive crystal by using the two-wave mixing volume holographic storage technique and used as the reference images in the photorefractive correlator. When any new image inputs the correlator, angularly separated beams with different light intensities are obtained simultaneously. They represent the optical correlation results between the input and the set of eigenimages and can be regarded as eigenfeatures. Then the multidimensional discriminant analysis will be applied to these features for training and classification. During both processes, a bifurcating tree structure is used, by which the recognition speed of the system can be greatly improved. This approach takes the advantages of both the high degree of parallelism of the photorefractive correlator and the optimal discriminating ability of the multivariate statistical methods for classification.
机译:在本文中,我们将多维判别分析的理论纳入了光折叠相关器架构。在这种方法中,通过使用双波混合卷全息存储技术并用作光反射型相关器中的参考图像,从大量训练图像中提取的一组从大量训练图像中提取的特征模谱度。当任何新图像输入相关器时,同时获得具有不同光强度的角度分离的光束。它们代表了输入和特征模拟之间的光学相关结果,并且可以被视为特征法。然后将应用多维判别分析来培训和分类。在两个过程中,使用分叉树结构,通过该分叉结构可以大大提高系统的识别速度。该方法采用光焦换形相关器的高度平行度以及多元统计方法进行分类的最佳区分能力。

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