Interview: Large-scale Modeling of Media Dialog with Discourse Patterns and Knowledge Grounding
Bodhisattwa Prasad Majumder, Shuyang Li, Jianmo Ni, Julian J. McAuley
Abstract
In this work, we perform the first large-scale analysis of discourse in media dialog and its impact on generative modeling of dialog turns, with a focus on interrogative patterns and use of external knowledge. Discourse analysis can help us understand modes of persuasion, entertainment, and information elicitation in such settings, but has been limited to manual review of small corpora. We introduce I -a large-scale (105K conversations) media dialog dataset collected from news interview transcripts-which allows us to investigate such patterns at scale. We present a dialog model that leverages external knowledge as well as dialog acts via auxiliary losses and demonstrate that our model quantitatively and qualitatively outperforms strong discourse-agnostic baselines for dialog modeling-generating more specific and topical responses in interview-style conversations.
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Install the CLIlune papers fulltext 307dff4b-da65-415c-97d0-fcc7a098d4b9Cited by top-tier papers3
- Achieving Conversational Goals with Unsupervised Post-hoc Knowledge InjectionBodhisattwa Prasad Majumder, Harsh Jhamtani, Taylor Berg-Kirkpatrick, Julian J. McAuleyACL 2022 · 9 citations
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- WavePulse: Real-time Content Analytics of Radio LivestreamsGovind Mittal, Sarthak Gupta, Shruti Wagle, Chirag Chopra et al.WWW 2025
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