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Normalizing electronic communications using a neural-network normalizer and a neural-network flagger

机译:使用神经网络规范化器和神经网络标记器对电子通信进行归一化

摘要

Electronic communications can be normalized using neural networks. For example, an electronic representation of a noncanonical communication can be received. A normalized version of the noncanonical communication can be determined using a normalizer including a neural network. The neural network can receive a single vector at an input layer of the neural network and transform an output of a hidden layer of the neural network into multiple values that sum to a total value of one. Each value of the multiple values can be a number between zero and one and represent a probability of a particular character being in a particular position in the normalized version of the noncanonical communication. The neural network can determine the normalized version of the noncanonical communication based on the multiple values. Whether the normalized version should be output can be determined based on a result from a flagger including another neural network.
机译:可以使用神经网络来规范电子通信。例如,可以接收非规范通信的电子表示。可以使用包括神经网络的归一化器来确定非规范通信的归一化版本。神经网络可以在神经网络的输入层接收单个矢量,并将神经网络的隐藏层的输出转换为多个总和为1的值。多个值中的每个值可以是零到一之间的数字,并表示特定字符​​在非规范通信的规范化版本中位于特定位置的概率。神经网络可以基于多个值确定非规范通信的规范化版本。可以基于来自包括另一个神经网络的标记器的结果来确定是否应该输出标准化版本。

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