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Llamipa: An Incremental Discourse Parser

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This paper provides the first discourse parsing experiments with a large language model(LLM) finetuned on corpora annotated in the style of SDRT (Segmented Discourse Representation Theory Asher, 1993; Asher and Lascarides, 2003). The result is a discourse parser, Llamipa (Llama Incremental Parser), that leverages discourse context, leading to substantial performance gains over approaches that use encoder-only models to provide local, context-sensitive representations of discourse units. Furthermore, it can process discourse data incrementally, which is essential for the eventual use of discourse information in downstream tasks.

Kate Thompson, Akshay Chaturvedi, Julie Hunter, Nicholas Asher• 2024

Related benchmarks

TaskDatasetResultRank
Discourse ParsingMSDC
F1 Score79.5
17
Discourse ParsingSTAC
F1 Score57.7
17
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