
108 - Data-To-Text Generation, with Verena Rieser and Ondřej Dušek
NLP Highlights
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The Problems With Neural Nets
The first problem is actually getting the structured data at least for a task like we've done with the e2e analogy challenge where we had a lot of restaurant recommendations basically. You don't need like millions of training examples to make the system work but you still need thousands. So that's one problem getting the data at all and the other is somehow representing the data inside neural nets because I guess the more complex or the more difficult the structure of your data is the more complex this becomes. But yet it's hard just from a modeling perspective given this structured thing it's not trivial to think of how to model it well.
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