Explicit Memory Tracker with Coarse-to-Fine Reasoning for Conversational Machine Reading
Yifan Gao, Chien-Sheng Wu, Shafiq R. Joty, Caiming Xiong, Richard Socher, Irwin King, Michael R. Lyu, Steven C. H. Hoi
摘要
The goal of conversational machine reading is to answer user questions given a knowledge base text which may require asking clarification questions. Existing approaches are limited in their decision making due to struggles in extracting question-related rules and reasoning about them. In this paper, we present a new framework of conversational machine reading that comprises a novel Explicit Memory Tracker (EMT) to track whether conditions listed in the rule text have already been satisfied to make a decision. Moreover, our framework generates clarification questions by adopting a coarse-to-fine reasoning strategy, utilizing sentence-level entailment scores to weight token-level distributions. On the ShARC benchmark (blind, heldout) testset, EMT achieves new state-of-theart results of 74.6% micro-averaged decision accuracy and 49.5 BLEU4. We also show that EMT is more interpretable by visualizing the entailment-oriented reasoning process as the conversation flows. Code and models are released at https://github.com/ Yifan-Gao/explicit_memory_tracker .
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- Discern: Discourse-Aware Entailment Reasoning Network for Conversational Machine ReadingYifan Gao, Chien-Sheng Wu, Jingjing Li, Shafiq R. Joty 等EMNLP 2020 · 被引用 47 次
- Smoothing Dialogue States for Open Conversational Machine ReadingZhuosheng Zhang, Siru Ouyang, Hai Zhao, Masao Utiyama 等EMNLP 2021 · 被引用 4 次
- Bridging The Gap: Entailment Fused-T5 for Open-retrieval Conversational Machine Reading ComprehensionXiao Zhang, Heyan Huang, Zewen Chi, Xian-Ling MaoACL 2023 · 被引用 3 次
- Modeling Transitions of Focal Entities for Conversational Knowledge Base Question AnsweringYunshi Lan, Jing JiangACL 2021
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