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