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3 months ago

Leveraging Passage Retrieval with Generative Models for Open Domain Question Answering

Gautier Izacard Edouard Grave

Leveraging Passage Retrieval with Generative Models for Open Domain Question Answering

Abstract

Generative models for open domain question answering have proven to be competitive, without resorting to external knowledge. While promising, this approach requires to use models with billions of parameters, which are expensive to train and query. In this paper, we investigate how much these models can benefit from retrieving text passages, potentially containing evidence. We obtain state-of-the-art results on the Natural Questions and TriviaQA open benchmarks. Interestingly, we observe that the performance of this method significantly improves when increasing the number of retrieved passages. This is evidence that generative models are good at aggregating and combining evidence from multiple passages.

Code Repositories

xfactlab/emnlp2023-damaging-retrieval
pytorch
Mentioned in GitHub
uclnlp/APE
pytorch
Mentioned in GitHub
FenQQQ/Fusion-in-decoder
pytorch
Mentioned in GitHub
jhyuklee/DensePhrases
pytorch
Mentioned in GitHub
princeton-nlp/DensePhrases
pytorch
Mentioned in GitHub
facebookresearch/FiD
pytorch
Mentioned in GitHub
amzn/refuel-open-domain-qa
pytorch
Mentioned in GitHub
ZIZUN/MAFiD
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
question-answering-on-conditionalqaFiD
Conditional (answers): 45.2 / 49.7
Conditional (w/ conditions): 4.7 / 5.8
Overall (answers): 44.4 / 50.8
Overall (w/ conditions): 35.0 / 40.6
question-answering-on-natural-questionsFiD-KD (full)
EM: 54.7
question-answering-on-natural-questionsFID (full)
EM: 51.4
question-answering-on-triviaqaFusion-in-Decoder (large)
EM: 67.6

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