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DLWV2: A Deep Learning-Based Wearable Vision-System with Vibrotactile-Feedback for Visually Impaired People to Reach Objects

机译:DLWV2:一种基于深度学习的可穿戴视觉系统,具有触觉反馈功能,适合视障人士接触物体

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We develop a Deep Learning-based Wearable Vision-system with Vibrotactile-feedback (DLWV2)to guide Blind and Visually Impaired (BVI)people to reach objects. The system achieves high accuracy in object detection and tracking in 3-D using an extended deep learning-based 2.5-D detector and a 3-D object tracker with the ability to track 3-D object locations even outside the camera field-of-view. We train our detector with a large number of images with 2.5-D object ground-truth (i.e., 2-D object bounding boxes and distance from the camera to objects). A novel combination of HTC Vive Tracker with our system enables us to automatically obtain the ground-truth labels for training while requiring very little human effort to set up the system. Moreover, our system processes frames in real-time through a client-server computing platform such that BVI people can receive realtime vibrotactile guidance. We conduct a thorough user study on 12 BVI people in new environments with object instances which are unseen during training. Our system outperforms the non-assistive guiding strategy with statistic significance in both time and the number of contacting irrelevant objects. Finally, the interview with BVI users confirms that our system with distance-based vibrotactile feedback is mostly preferred, especially for objects requiring gentle manipulation such as a bottle with water inside.
机译:我们开发了具有振动触觉反馈(DLWV2)的基于深度学习的可穿戴视觉系统,以指导盲人和视障人士(BVI)接触物体。该系统使用扩展的基于深度学习的2.5D检测器和3-D对象跟踪器,可在3-D对象中实现高精度的3D对象检测和跟踪,即使在摄像机视场外,也可以跟踪3-D对象位置。看法。我们使用2.5D物体地面真实感(即2-D物体边界框和从相机到物体的距离)为探测器提供大量图像的训练。 HTC Vive Tracker与我们的系统的新颖结合使我们能够自动获得地面训练的标签,而无需花费太多人力即可设置系统。此外,我们的系统通过客户端-服务器计算平台实时处理帧,以便BVI人员可以接收实时触觉指导。我们在新环境中对12个BVI人进行了彻底的用户研究,其对象实例在培训期间是看不见的。我们的系统在时间和接触无关对象的数量上均优于具有统计意义的非辅助引导策略。最后,对BVI用户的采访证实,我们的系统最好采用基于距离的触觉反馈,特别是对于需要轻柔操纵的物体(例如装有水的瓶子)尤其如此。

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