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138 - Compositional Generalization in Neural Networks, with Najoung Kim

NLP Highlights

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Is There a Problem With Semantic Parsing?

In the general case, the models aren't really struggling with semantic parsing, but then they are struggling with this particular set of generalizations. So because the models do well in the in domain or in distribution setup, you know that the models have learned the task well enough. It's just that in the out of distribution that they don't prove that. This is actually a good place to talk about the experimental setup. Can you describe how exactly you're evaluating composition, generalization, what the models see at training time and what to what kinds of examples are they expected to do right on at test time? Right, right.

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