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Multi-aspect sentiment analysis by collaborative attention allocation

机译:通过协作关注分配进行多种方面情绪分析

摘要

A computer-implemented method is presented for implementing multi-aspect sentiment analysis by collaborative attention allocation. The method includes extracting a sequence of word vectors from a sentence received from a data stream, feeding the sequence of word vectors to long short-term memory (LSTM) neural networks to generate a sequence of hidden states corresponding to the sequence of word vectors, generating a plurality of aspect embedding vectors for each aspect, employing an attention mechanism to determine attention weight vectors concurrently for all aspects, and outputting predicted sentiments for each aspect of the sentence to a user interface of a computing device.
机译:提出了一种计算机实现的方法,用于通过协作关注分配实现多个方面情绪分析。该方法包括从数据流接收的句子中提取一系列字矢量,将字矢量序列馈送到长短短期存储器(LSTM)神经网络,以生成与单词向量序列相对应的隐藏状态序列,生成用于每个方面的多个方面嵌入矢量,采用注意机制以与所有方面同时地确定注意力矢量,并将句子的每个方面的预测情绪输出到计算设备的用户界面。

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