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128 - Dynamic Benchmarking, with Douwe Kiela

NLP Highlights

CHAPTER

How to Fool a Model in an NLI Task

The key idea basically was to try to find a model that was the state of the art at that point in time. Then training it on basically all the data we had available at that moment in time and so you can see in the paper that that model actually performs really well on these old datasets. That is the starting point from which we started collecting these much harder challenge sets.

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