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A new data interpretation by a modified neural network model

机译:修改后神经网络模型的新数据解释

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This paper presents a novel approach of the use of neural networks. We are teaching the model with all patterns numerous times and use different information every time. The main idea is based on the fact that the basis training set contains information only about correlation of input information towards the output results. We made the following proposal: "If the input pattern belongs to a class of patterns C/sub i/, then it does not belong to any other classes C/sub j/ for every j /spl ne/ I". Here we have suggested a modified model of feed forward neural network with back propagation learning.
机译:本文介绍了使用神经网络的新方法。我们正在众多模式教授模型,每次都使用不同的信息。主要思想基于基础训练集仅包含关于输入信息与输出结果的相关的信息。我们提出了以下建议:“如果输入模式属于一类模式C / SUB I /,则它不属于每个J / SPL NE / I”的任何其他类C / SUB J /。在这里,我们提出了一种具有背部传播学习的饲料前进神经网络的修改模型。

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