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Content-Aware Video Analysis to Guide Visually Impaired Walking on the Street

机译:内容感知视频分析指导在街上的视力下障碍

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Although many researchers have developed systems or tools to assist blind and visually impaired people, they continue to face many obstacles in daily life - especially in outdoor environments. When people with visual impairments walk outdoors, they must be informed of objects in their surroundings. However, it is challenging to develop a system that can handle related tasks. In recent years, deep learning has enabled the development of many architectures with more accurate results than machine learning. One popular model for instance segmentation is Mask-RCNN, which can do segmentation and rapidly recognize objects. We use Mask-RCNN to develop a context-aware video that can help blind and visually impaired people recognize objects in their surroundings. Moreover, we provide the distance between the subject and object, and the object's relative speed and direction using Mask-RCNN outputs. The results of our content-aware video include the name of the object, class object score, the distance between the person and the object, speed of the object, and object direction.
机译:虽然许多研究人员已经开发了有助于盲目和视力受损的人的系统或工具,但他们继续面对日常生活中的许多障碍 - 特别是在室外环境中。当有视觉损伤的人在户外行走时,必须在周围环境中通知他们的物体。然而,开发一个可以处理相关任务的系统是挑战性的。近年来,深度学习使许多架构的发展能够更准确的结果而不是机器学习。一个流行的实例分段模型是Mask-RCNN,可以进行分段并快速识别对象。我们使用mask-rcnn开发一个可以帮助盲目和视力受损人们在周围环境中识别对象的上下文感知视频。此外,我们提供主题和对象之间的距离,以及使用蒙版-RCNN输出的对象的相对速度和方向。我们的内容感知视频的结果包括对象的名称,类对象分数,人与对象之间的距离,对象的速度和对象方向。

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