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Selective and focused invariant recognition using distributed associative memories (DAM)

机译:使用分布式关联记忆(DAM)的选择性和集中不变式识别

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摘要

A method of 2-D object recognition based on the Moore-Penrose distributed associative memory is presented. Using known relationships between DAMs and regression analysis, the selectivity of the association weights is improved in an iterative way be discarding from further consideration response vectors deemed to be insignificant. Such selectivity allow the system to focus on the significant associations and to reduce crosstalk effects. The same formalism that allows the significance of the association weights to be computed also provides for a reject option. Experiments incorporating the proposed method onto an invariant recognition system prove the feasibility and benefits of the recognition scheme.
机译:提出了一种基于Moore-Penrose分布式联想记忆的二维物体识别方法。使用DAM与回归分析之间的已知关系,可以从被认为无关紧要的其他考虑响应向量中舍弃,以迭代的方式提高关联权重的选择性。这种选择性使系统可以专注于重要的关联并减少串扰效应。允许计算关联权重的重要性的相同形式主义也提供了拒绝选项。将所提出的方法结合到不变识别系统上的实验证明了该识别方案的可行性和益处。

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