Grounding Description-Driven Dialogue State Trackers with Knowledge-Seeking Turns

September 23, 2023 ยท Declared Dead ยท ๐Ÿ› SIGDIAL Conferences

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Authors Alexandru Coca, Bo-Hsiang Tseng, Jinghong Chen, Weizhe Lin, Weixuan Zhang, Tisha Anders, Bill Byrne arXiv ID 2309.13448 Category cs.CL: Computation & Language Citations 1 Venue SIGDIAL Conferences Last Checked 6 months ago
Abstract
Schema-guided dialogue state trackers can generalise to new domains without further training, yet they are sensitive to the writing style of the schemata. Augmenting the training set with human or synthetic schema paraphrases improves the model robustness to these variations but can be either costly or difficult to control. We propose to circumvent these issues by grounding the state tracking model in knowledge-seeking turns collected from the dialogue corpus as well as the schema. Including these turns in prompts during finetuning and inference leads to marked improvements in model robustness, as demonstrated by large average joint goal accuracy and schema sensitivity improvements on SGD and SGD-X.
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