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LLaVA-VSD: Large Language-and-Vision Assistant for Visual Spatial Description

  • Yizhang Jin
  • , Jian Li
  • , Jiangning Zhang
  • , Jianlong Hu
  • , Zhenye Gan
  • , Xin Tan
  • , Yong Liu
  • , Yabiao Wang
  • , Chengjie Wang
  • , Lizhuang Ma
  • Tencent
  • Shanghai Jiao Tong University
  • East China Normal University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Visual Spatial Description (VSD) aims to generate texts that describe the spatial relationships between objects within images. Traditional visual spatial relationship classification (VSRC) methods typically output the spatial relationship between two objects in an image, often neglecting world knowledge and lacking general language capabilities. In this paper, we propose a Large Language-and-Vision Assistant for Visual Spatial Description, named LLaVA-VSD, which is designed for the classification, description, and open-ended description of visual spatial relationships. Specifically, the model first constructs a visual spatial instruction-following dataset using given figure-caption pairs for the three tasks. It then employs LoRA to fine-tune a Large Language and Vision Assistant for VSD, which has 13 billion parameters and supports high-resolution images. Finally, a large language model is used to refine the generated sentences, enhancing their diversity and accuracy. LLaVA-VSD demonstrates excellent multimodal conversational capabilities and can follow open-ended instructions to assist with inquiries about object relationships in images.

源语言英语
主期刊名MM 2024 - Proceedings of the 32nd ACM International Conference on Multimedia
出版商Association for Computing Machinery, Inc
11420-11425
页数6
ISBN(电子版)9798400706868
DOI
出版状态已出版 - 28 10月 2024
已对外发布
活动32nd ACM International Conference on Multimedia, MM 2024 - Melbourne, 澳大利亚
期限: 28 10月 20241 11月 2024

出版系列

姓名MM 2024 - Proceedings of the 32nd ACM International Conference on Multimedia

会议

会议32nd ACM International Conference on Multimedia, MM 2024
国家/地区澳大利亚
Melbourne
时期28/10/241/11/24

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