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Paper · arXiv 2404.19753

DOCCI: Descriptions of Connected and Contrasting Images

Yasumasa Onoe, Sunayana Rane, Zachary Berger, Yonatan Bitton, Jaemin Cho, Roopal Garg, Alexander Ku, Zarana Parekh, Jordi Pont-Tuset, Garrett Tanzer, Su Wang, Jason Baldridge

13 upvotesApril 30, 2024arXiv 预印本
AI 摘要

The Descriptions of Connected and Contrasting Images (DOCCI) dataset provides detailed human-annotated descriptions for image-to-text and text-to-image generation, demonstrating effectiveness in training and highlighting limitations in current models.

vision-language datasetstext-to-imageimage-to-textDescriptions of Connected and Contrasting Imageshuman-annotatedspatial relationscountingtext renderingworld knowledgePaLI 5BLLaVA-1.5InstructBLIPimage-to-text generationtext-to-image generation

Abstract

Vision-language datasets are vital for both text-to-image (T2I) and image-to-text (I2T) research. However, current datasets lack descriptions with fine-grained detail that would allow for richer associations to be learned by models. To fill the gap, we introduce Descriptions of Connected and Contrasting Images (DOCCI), a dataset with long, human-annotated English descriptions for 15k images that were taken, curated and donated by a single researcher intent on capturing key challenges such as spatial relations, counting, text rendering, world knowledge, and more. We instruct human annotators to create comprehensive descriptions for each image; these average 136 words in length and are crafted to clearly distinguish each image from those that are related or similar. Each description is highly compositional and typically encompasses multiple challenges. Through both quantitative and qualitative analyses, we demonstrate that DOCCI serves as an effective training resource for image-to-text generation -- a PaLI 5B model finetuned on DOCCI shows equal or superior results compared to highly-performant larger models like LLaVA-1.5 7B and InstructBLIP 7B. Furthermore, we show that DOCCI is a useful testbed for text-to-image generation, highlighting the limitations of current text-to-image models in capturing long descriptions and fine details.

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