Understanding How Blind Users Handle Object Recognition Errors: Strategies and Challenges.

Jonggi Hong, Hernisa Kacorri
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Abstract

Object recognition technologies hold the potential to support blind and low-vision people in navigating the world around them. However, the gap between benchmark performances and practical usability remains a significant challenge. This paper presents a study aimed at understanding blind users' interaction with object recognition systems for identifying and avoiding errors. Leveraging a pre-existing object recognition system, URCam, fine-tuned for our experiment, we conducted a user study involving 12 blind and low-vision participants. Through in-depth interviews and hands-on error identification tasks, we gained insights into users' experiences, challenges, and strategies for identifying errors in camera-based assistive technologies and object recognition systems. During interviews, many participants preferred independent error review, while expressing apprehension toward misrecognitions. In the error identification task, participants varied viewpoints, backgrounds, and object sizes in their images to avoid and overcome errors. Even after repeating the task, participants identified only half of the errors, and the proportion of errors identified did not significantly differ from their first attempts. Based on these insights, we offer implications for designing accessible interfaces tailored to the needs of blind and low-vision users in identifying object recognition errors.

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理解盲人用户如何处理对象识别错误:策略和挑战。
物体识别技术有潜力支持盲人和低视力人群在他们周围的世界中导航。然而,基准性能和实际可用性之间的差距仍然是一个重大挑战。本文提出了一项研究,旨在了解盲人用户与目标识别系统的交互,以识别和避免错误。利用预先存在的物体识别系统URCam,为我们的实验进行了微调,我们进行了一项涉及12名盲人和低视力参与者的用户研究。通过深入访谈和实践错误识别任务,我们深入了解了用户在基于相机的辅助技术和对象识别系统中识别错误的经验、挑战和策略。在采访中,许多参与者倾向于独立的错误审查,同时对错误认识表示担忧。在错误识别任务中,参与者通过改变图像中的视角、背景和物体大小来避免和克服错误。即使在重复了任务之后,参与者也只发现了一半的错误,而且发现的错误比例与第一次尝试时没有显著差异。基于这些见解,我们为设计适合盲人和低视力用户识别物体识别错误需求的可访问界面提供了启示。
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Modeling Accessibility: Characterizing What We Mean by "Accessible". Exploring Collaboration to Center the Deaf Community in Sign Language AI. Hevelius Report: Visualizing Web-Based Mobility Test Data For Clinical Decision and Learning Support. Enabling Uniform Computer Interaction Experience for Blind Users through Large Language Models. Understanding How Blind Users Handle Object Recognition Errors: Strategies and Challenges.
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