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Babbling - The HIT-SCIR System for Emotional Conversation Generation

机译:b-产生情感对话的HIT-SCIR系统

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This paper describes the HIT-SCIR emotional response agent "Babbling" to the NLPCC 2017 Shared Task 4 on emotional conversation generation. Babbling consists of two parts, one is a rule based model for picking generic responses and the other is a neural work based model. For the latter part, we apply the encoder-decoder [1] framework to generate emotional response given the post and assigned emotion label. To improve the content coherency, we use LTS [2] for acquiring a better first word. To generate responses with consistent emotions, we employ the emotion embeddings to guide emotionalizing process. To produce more content coherent and emotion consistent responses, we include the attention mechanism [3] and its extension, multi-hop attention (MTA) [4]. The rule based part and neural network based part are ranked the second and fifth place respectively according to the total score.
机译:本文介绍了HIT-SCIR情绪响应代理“冒泡”对NLPCC 2017共享任务4的情感对话的产生。混战包括两部分,一个是用于选择通用响应的基于规则的模型,另一个是基于神经工作的模型。对于后一部分,我们应用编码器-解码器[1]框架在给定帖子和指定的情感标签的情况下生成情感反应。为了提高内容的一致性,我们使用LTS [2]来获得更好的第一个单词。为了产生具有一致情绪的反应,我们使用情绪嵌入来指导情绪化过程。为了产生更多的内容连贯和情感一致的反应,我们包括注意力机制[3]及其扩展,多跳注意力(MTA)[4]。基于规则的部分和基于神经网络的部分根据总分分别排名第二和第五位。

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