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Synthetic QA Corpora Generation with Roundtrip Consistency

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Abstract

We introduce a novel method of generating synthetic question answering corpora by combining models of question generation and answer extraction, and by filtering the results to ensure roundtrip consistency. By pretraining on the resulting corpora we obtain significant improvements on SQuAD2 Our synthetic data generation models, for both question generation and answer extraction, can be fully reproduced by finetuning a publicly available BERT model We also describe a more powerful variant that does full sequence-to-sequence pretraining for question generation, obtaining exact match and F1 at less than 0.1% and 0.4% from human performance on SQuAD2.

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Publication details

DOI
10.18653/v1/p19-1620
OpenAlex
W2949849869
Document type
conference-paper
Language
EN
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