2022
DOI: 10.5281/zenodo.6858565
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Dialogue Term Extraction using Transfer Learning and Topological Data Analysis

Abstract: Goal oriented dialogue systems were originally designed as a natural language interface to a fixed data-set of entities that users might inquire about, further described by domain, slots and values. As we move towards adaptable dialogue systems where knowledge about domains, slots and values may change, there is an increasing need to automatically extract these terms from raw dialogues or related nondialogue data on a large scale. In this paper, we take an important step in this direction by exploring differen… Show more

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