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Neural networks for determining affinity functions of binary objects

机译:用于确定二进制对象的相似度函数的神经网络

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A new method of synthesizing neural network for comparing, identifying, and classifying various objects through bipolar encoding of their attributes is offered. The mentioned method broadens the neuron network applicability sphere for solving tasks of identification and classification due to the use of proximity functions applying finer proximity attributes for discrete objects than the Hemming's distance.
机译:提供了一种合成神经网络的新方法,该方法通过对属性进行双极性编码来比较,识别和分类各种对象。所提及的方法由于使用了接近函数,为离散对象比Hemming距离应用了更精细的接近度属性,从而拓宽了神经元网络适用范围,从而解决了识别和分类任务。

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