DoQA - Accessing Domain-Specific FAQs via Conversational QA
Jon Ander Campos, Arantxa Otegi, Aitor Soroa, Jan Deriu, Mark Cieliebak, Eneko Agirre
摘要
The goal of this work is to build conversational Question Answering (QA) interfaces for the large body of domain-specific information available in FAQ sites. We present DoQA, a dataset with 2,437 dialogues and 10,917 QA pairs. The dialogues are collected from three Stack Exchange sites using the Wizard of Oz method with crowdsourcing. Compared to previous work, DoQA comprises well-defined information needs, leading to more coherent and natural conversations with less factoid questions and is multi-domain. In addition, we introduce a more realistic information retrieval (IR) scenario where the system needs to find the answer in any of the FAQ documents. The results of an existing, strong, system show that, thanks to transfer learning from a Wikipedia QA dataset and fine tuning on a single FAQ domain, it is possible to build high quality conversational QA systems for FAQs without indomain training data. The good results carry over into the more challenging IR scenario. In both cases, there is still ample room for improvement, as indicated by the higher human upperbound.
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引用它的顶会 Paper16
- ChatQA: Surpassing GPT-4 on Conversational QA and RAGZihan Liu, Wei Ping, Rajarshi Roy, Peng Xu 等NeurIPS 2024 · 被引用 121 次
- doc2dial: A Goal-Oriented Document-Grounded Dialogue DatasetSong Feng, Hui Wan, R. Chulaka Gunasekara, Siva Sankalp Patel 等EMNLP 2020 · 被引用 87 次
- Dialog Inpainting: Turning Documents into DialogsZhuyun Dai, Arun Tejasvi Chaganty, Vincent Y. Zhao, Aida Amini 等ICML 2022 · 被引用 77 次
- MultiDoc2Dial: Modeling Dialogues Grounded in Multiple DocumentsSong Feng, Siva Sankalp Patel, Hui Wan, Sachindra JoshiEMNLP 2021 · 被引用 42 次
- QAConv: Question Answering on Informative ConversationsChien-Sheng Wu, Andrea Madotto, Wenhao Liu, Pascale Fung 等ACL 2022 · 被引用 34 次
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