Disability-first Dataset Creation: Lessons from Constructing a Dataset for Teachable Object Recognition with Blind and Low Vision Data Collectors

Lida Theodorou, Daniela Massiceti, L. Zintgraf, S. Stumpf, C. Morrison, Edward Cutrell, Matthew Tobias Harris, Katja Hofmann
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引用次数: 19

Abstract

Artificial Intelligence (AI) for accessibility is a rapidly growing area, requiring datasets that are inclusive of the disabled users that assistive technology aims to serve. We offer insights from a multi-disciplinary project that constructed a dataset for teachable object recognition with people who are blind or low vision. Teachable object recognition enables users to teach a model objects that are of interest to them, e.g., their white cane or own sunglasses, by providing example images or videos of objects. In this paper, we make the following contributions: 1) a disability-first procedure to support blind and low vision data collectors to produce good quality data, using video rather than images; 2) a validation and evolution of this procedure through a series of data collection phases and 3) a set of questions to orient researchers involved in creating datasets toward reflecting on the needs of their participant community.
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残障优先数据集创建:基于盲人和低视力数据收集器构建可教对象识别数据集的经验教训
可访问性人工智能(AI)是一个快速发展的领域,需要包含辅助技术旨在服务的残疾用户的数据集。我们提供了一个多学科项目的见解,该项目构建了一个数据集,用于盲人或低视力人群的可教物体识别。可教对象识别使用户可以通过提供对象的示例图像或视频来教模型他们感兴趣的对象,例如他们的白色手杖或自己的太阳镜。在本文中,我们做出了以下贡献:1)残障优先程序,以支持盲人和低视力数据采集人员产生高质量的数据,使用视频而不是图像;2)通过一系列数据收集阶段验证和发展这一程序;3)提出一系列问题,引导参与创建数据集的研究人员反映其参与者社区的需求。
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