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Toward a Computer Vision-based Wayfinding Aid for Blind Persons to Access Unfamiliar Indoor Environments

机译:朝向基于计算机视觉的Wayfinding援助让盲人访问不熟悉的室内环境

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摘要

Independent travel is a well known challenge for blind and visually impaired persons. In this paper, we propose a proof-of-concept computer vision-based wayfinding aid for blind people to independently access unfamiliar indoor environments. In order to find different rooms (e.g. an office, a lab, or a bathroom) and other building amenities (e.g. an exit or an elevator), we incorporate object detection with text recognition. First we develop a robust and efficient algorithm to detect doors, elevators, and cabinets based on their general geometric shape, by combining edges and corners. The algorithm is general enough to handle large intra-class variations of objects with different appearances among different indoor environments, as well as small inter-class differences between different objects such as doors and door-like cabinets. Next, in order to distinguish intra-class objects (e.g. an office door from a bathroom door), we extract and recognize text information associated with the detected objects. For text recognition, we first extract text regions from signs with multiple colors and possibly complex backgrounds, and then apply character localization and topological analysis to filter out background interference. The extracted text is recognized using off-the-shelf optical character recognition (OCR) software products. The object type, orientation, location, and text information are presented to the blind traveler as speech.
机译:独立旅行是盲目和视力受损人的知名挑战。在本文中,我们提出了一种基于概念的验证性计算机视觉的Wayfinding援助,让盲人独立访问不熟悉的室内环境。为了找到不同的房间(例如,办公室,实验室或浴室)和其他建筑设施(例如退出或电梯),我们将对象检测与文本识别合并。首先,我们通过组合边缘和角落,开发一种稳健和高效的算法来检测基于普通几何形状的门,电梯和橱柜。该算法通常足以处理不同室内环境中具有不同外观的大型物体的大型内部变化,以及不同物体(如门和门式橱柜)之间的小阶级差异。接下来,为了区分类内对象(例如,从卫生间门口的办公室门),我们提取并识别与检测到的对象相关联的文本信息。对于文本识别,我们首先从具有多种颜色和可能复杂的背景中提取文本区域,然后应用字符本地化和拓扑分析以筛选背景干扰。提取的文本使用现成的光学字符识别(OCR)软件产品识别。对象类型,方向,位置和文本信息作为语音呈现给盲人旅行者。

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