CorefDiffs: Co-referential and Differential Knowledge Flow in Document Grounded Conversations

Lin Xu, Qixian Zhou, Jinlan Fu, Min-Yen Kan, See-Kiong Ng
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引用次数: 3

Abstract

Knowledge-grounded dialog systems need to incorporate smooth transitions among knowledge selected for generating responses, to ensure that dialog flows naturally. For document-grounded dialog systems, the inter- and intra-document knowledge relations can be used to model such conversational flows. We develop a novel Multi-Document Co-Referential Graph (Coref-MDG) to effectively capture the inter-document relationships based on commonsense and similarity and the intra-document co-referential structures of knowledge segments within the grounding documents. We propose CorefDiffs, a Co-referential and Differential flow management method, to linearize the static Coref-MDG into conversational sequence logic. CorefDiffs performs knowledge selection by accounting for contextual graph structures and the knowledge difference sequences. CorefDiffs significantly outperforms the state-of-the-art by 9.5%, 7.4% and 8.2% on three public benchmarks. This demonstrates that the effective modeling of co-reference and knowledge difference for dialog flows are critical for transitions in document-grounded conversation.
CorefDiffs:基于文档的对话中的共同参考和差异知识流
以知识为基础的对话系统需要在为生成响应而选择的知识之间进行平滑转换,以确保对话自然地流动。对于基于文档的对话系统,可以使用文档间和文档内的知识关系来建模这样的会话流。我们开发了一种新的基于常识和相似性的多文档协同引用图(Coref-MDG),以有效地捕获基于基础文档的知识段的文档间关系和文档内的协同引用结构。我们提出CorefDiffs,一种共同引用和差分流管理方法,将静态corefmdg线性化为会话序列逻辑。CorefDiffs通过考虑上下文图结构和知识差异序列来进行知识选择。在三个公开基准测试中,CorefDiffs的表现分别为9.5%、7.4%和8.2%。这表明对话流的共同引用和知识差异的有效建模对于基于文档的对话中的转换是至关重要的。
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