Hypothesis Only Baselines in Natural Language Inference

May 02, 2018 ยท Declared Dead ยท ๐Ÿ› International Workshop on Semantic Evaluation

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Authors Adam Poliak, Jason Naradowsky, Aparajita Haldar, Rachel Rudinger, Benjamin Van Durme arXiv ID 1805.01042 Category cs.CL: Computation & Language Citations 610 Venue International Workshop on Semantic Evaluation Last Checked 6 months ago
Abstract
We propose a hypothesis only baseline for diagnosing Natural Language Inference (NLI). Especially when an NLI dataset assumes inference is occurring based purely on the relationship between a context and a hypothesis, it follows that assessing entailment relations while ignoring the provided context is a degenerate solution. Yet, through experiments on ten distinct NLI datasets, we find that this approach, which we refer to as a hypothesis-only model, is able to significantly outperform a majority class baseline across a number of NLI datasets. Our analysis suggests that statistical irregularities may allow a model to perform NLI in some datasets beyond what should be achievable without access to the context.
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