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Trigger-Based Language Model Adaptation for Automatic Transcription of Panel Discussions
2006
IEICE transactions on information and systems
We present a novel trigger-based language model adaptation method oriented to the transcription of meetings. In meetings, the topic is focused and consistent throughout the whole session, therefore keywords can be correlated over long distances. The trigger-based language model is designed to capture such long-distance dependencies, but it is typically constructed from a large corpus, which is usually too general to derive taskdependent trigger pairs. In the proposed method, we make use of the
doi:10.1093/ietisy/e89-d.3.1024
fatcat:dhsrbsvohzdcfjsn7ylcylkcm4