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Generating Responses Expressing Emotion in an Open-Domain Dialogue System

机译:在开放域对话系统中生成表达情感的响应

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Neural network-based Open-ended conversational agents automatically generate responses based on predictive models learned from a large number of pairs of utterances. The generated responses are typically acceptable as a sentence but are often dull, generic, and certainly devoid of any emotion. In this paper we present neural models that learn to express a given emotion in the generated response. We propose four models and evaluate them against 3 baselines. An encoder-decoder framework-based model with multiple attention layers provides the best overall performance in terms of expressing the required emotion. While it does not outperform other models on all emotions, it presents promising results in most cases.
机译:基于神经网络的开放式对话代理基于从大量语音对学习的预测模型自动生成响应。生成的响应通常作为句子是可以接受的,但通常是乏味,泛泛的,并且肯定没有任何情感。在本文中,我们提出了一种神经模型,可以学习在生成的响应中表达给定的情绪。我们提出了四个模型,并针对3个基准进行了评估。基于编码器-解码器框架的模型具有多个关注层,可在表达所需情感方面提供最佳的总体性能。尽管它不能在所有情绪上胜过其他模型,但是在大多数情况下,它都提供了可喜的结果。

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