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Evaluating Dialogue Generation Systems via Response Selection

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arxiv 2004.14302 v1 pith:HGGV3EW6 submitted 2020-04-29 cs.CL

classification cs.CL
keywords responseselectionsystemsevaluationevaluatinggenerationsetstest
verification ladder T0 review T1 audit T2 compute T3 formal
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Existing automatic evaluation metrics for open-domain dialogue response generation systems correlate poorly with human evaluation. We focus on evaluating response generation systems via response selection. To evaluate systems properly via response selection, we propose the method to construct response selection test sets with well-chosen false candidates. Specifically, we propose to construct test sets filtering out some types of false candidates: (i) those unrelated to the ground-truth response and (ii) those acceptable as appropriate responses. Through experiments, we demonstrate that evaluating systems via response selection with the test sets developed by our method correlates more strongly with human evaluation, compared with widely used automatic evaluation metrics such as BLEU.

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