cs.AI updates on arXiv.org 07月14日 12:08
DatasetAgent: A Novel Multi-Agent System for Auto-Constructing Datasets from Real-World Images
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文章提出了一种名为DatasetAgent的多智能体协同系统,通过协调多模态大型语言模型(MLLMs)和图像优化工具包,从真实世界图像中自动构建高质数据集,并验证其在数据集扩展和创建新数据集上的有效性。

arXiv:2507.08648v1 Announce Type: cross Abstract: Common knowledge indicates that the process of constructing image datasets usually depends on the time-intensive and inefficient method of manual collection and annotation. Large models offer a solution via data generation. Nonetheless, real-world data are obviously more valuable comparing to artificially intelligence generated data, particularly in constructing image datasets. For this reason, we propose a novel method for auto-constructing datasets from real-world images by a multiagent collaborative system, named as DatasetAgent. By coordinating four different agents equipped with Multi-modal Large Language Models (MLLMs), as well as a tool package for image optimization, DatasetAgent is able to construct high-quality image datasets according to user-specified requirements. In particular, two types of experiments are conducted, including expanding existing datasets and creating new ones from scratch, on a variety of open-source datasets. In both cases, multiple image datasets constructed by DatasetAgent are used to train various vision models for image classification, object detection, and image segmentation.

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数据集构建 多智能体系统 图像数据
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