
60 - FEVER: a large-scale dataset for Fact Extraction and VERification, with James Thorne
NLP Highlights
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How to Label a Claim
The challenge is to find the evidence in supporting or refuting sentences to back up a claim, which was generated from Wikipedia. We found that given this time constraint, these annotators were only able to find about 70 to 75% of the right evidence to the claim. And we compared this against a pool of super annotators who operated without time constraints. In order to do these mutations the annotators have to be creative with the types of new information they introduce.
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