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Generative Augmented Dataset and Annotation Frameworks for Artificial Intelligence (GADAFAI)

机译:人工智能的生成式增强数据集和注释框架(GADAFAI)

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摘要

Recent Advances in Artificial Intelligence (AI), particularly in the field of compute vision, have been driven by the availability of large public datasets. However, as AI begins to move into embedded devices there will be a growing need for tools to acquire and re-acquire datasets from specific sensing systems to train new device models. In this paper, a roadmap in introduced for a data-acquisition framework that can build the large synthetic datasets required to train AI systems from small seed datasets. A key element to justify such a framework is the validation of the generated dataset and example results are shown from preliminary work on biometric (facial) datasets.
机译:大型公共数据集的可用性推动了人工智能(AI)的最新发展,尤其是在计算视觉领域。但是,随着AI开始进入嵌入式设备,对从特定传感系统获取和重新获取数据集以训练新设备模型的工具的需求将日益增长。在本文中,为数据获取框架引入了一个路线图,该路线图可以构建从小型种子数据集中训练AI系统所需的大型综合数据集。证明这种框架合理性的关键要素是对生成的数据集进行验证,并从生物(面部)数据集的初步工作中展示示例结果。

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