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Invariant pattern recognition using analog recurrent associative memories

机译:使用模拟循环联想记忆的不变模式识别

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摘要

A novel invariant pattern recognition approach is proposed based on a special gradient-type recurrent analog associative memory. The system exhibits stable equilibrium points in predefined positions specified by feature vectors extracted from the training set, while invariance to geometrical transformations is inferred by using the tangent distance. Experimental results for handwritten character recognition and face recognition tasks indicate that the proposed approach may yield superior performances over classical solutions based on the Euclidean distance metric. Possible extensions towards modular and sequential pattern recognition are finally outlined.
机译:提出了一种基于特殊梯度型递归模拟关联存储器的不变模式识别方法。该系统在从训练集中提取的特征向量指定的预定位置上显示稳定的平衡点,而通过使用切线距离可以推断出几何变换的不变性。手写字符识别和面部识别任务的实验结果表明,与基于欧几里德距离度量的经典解决方案相比,所提出的方法可以产生更好的性能。最后概述了对模块化和顺序模式识别的可能扩展。

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