RedCaps: Web-curated image-text data created by the people, for the peopleDownload PDF

Published: 17 Aug 2021, Last Modified: 24 May 2023NeurIPS 2021 Datasets and Benchmarks Track (Round 1)Readers: Everyone
Keywords: image-text dataset, vision-and-language, image captioning, vision pre-training
TL;DR: We present RedCaps -- a large-scale dataset of 12M image-text pairs collected from Reddit.
Abstract: Large datasets of paired images and text have become increasingly popular for learning generic representations for vision and vision-and-language tasks. Such datasets have been built by querying search engines or collecting HTML alt-text – since web data is noisy, they require complex filtering pipelines to maintain quality. We explore alternate data sources to collect high quality data with minimal filtering. We introduce RedCaps – a large-scale dataset of 12M image-text pairs collected from Reddit. Images and captions from Reddit depict and describe a wide variety of objects and scenes. We collect data from a manually curated set of subreddits, which give coarse image labels and allow us to steer the dataset composition without labeling individual instances. We show that captioning models trained on RedCaps produce rich and varied captions preferred by humans, and learn visual representations that transfer to many downstream tasks.
Supplementary Material: zip
URL: https://redcaps.xyz
Contribution Process Agreement: Yes
Dataset Url: https://redcaps.xyz
License: See https://redcaps.xyz/download
Author Statement: Yes
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