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Order-Sensitive Keywords Based Response Generation in Open-Domain Conversational Systems

机译:基于订单敏感的关键字在开放式对话系统中的响应生成

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摘要

External keywords are crucial for response generation models to address the generic response problems in open-domain conversational systems. The occurrence of keywords in a response depends heavily on the order of the keywords as they are generated sequentially. Meanwhile, the order of keywords also affects the semantics of a response. Previous keywords based methods mainly focus on the composite of keywords, while the order of keywords has not been sufficiently discussed. In this work, we propose an order-sensitive keywords based model to explore the influence of the order of keywords in open-domain response generation. It automatically inferences the most suitable order that is optimized to generate a natural and relevant response, and subsequently generates the response using the ordered keywords as building blocks. We conducted experiments on a public Twitter dataset and the results show that our approach outperforms the state-of-the-art baselines in both automatic and human evaluations.
机译:外部关键字对于响应生成模型至关重要,以解决开放式对话系统中的通用响应问题。响应中的关键字的发生在很大程度上取决于关键字的顺序,因为它们是顺序生成的。同时,关键字的顺序也会影响响应的语义。以前的基于关键词的方法主要关注关键字的复合,而关键字的顺序尚未得到充分讨论。在这项工作中,我们提出了一种基于订单敏感的关键字模型,以探讨关键字顺序在开放式域响应生成中的影响。它自动推断最合适的顺序,该顺序优化以生成自然和相关响应,然后使用订购的关键字作为构建块生成响应。我们对公众推特数据集进行了实验,结果表明,我们的方法在自动和人类评估中占据了最先进的基线。

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