• The selected membership function made neural network weight values have definite knowledge meaning, and the input characteristic variables were translated into fuzzy variables by fuzzy layer.

    选取的隶属函数使神经网络权值有一定的知识表示意义,并通过模糊化层将输入特征量转化为模糊量。

    youdao

  • The optimum combinations adopting different numbers of characteristic parameters have been obtained by analyzing the main variables of all the input parameters.

    对全部输人特征参数进行了主变量分析,给出了采用不同数量特征参数的优化组合方案。

    youdao

  • The optimum combinations adopting different numbers of characteristic parameters have been obtained by analyzing the main variables of all the input parameters.

    对全部输人特征参数进行了主变量分析,给出了采用不同数量特征参数的优化组合方案。

    youdao

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