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Robust Sign Recognition System at Subway Stations Using Verification Knowledge

机译:利用验证知识的地铁车站稳健标志识别系统

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摘要

In this paper, we present a walking guidance system for the visually impaired for use at subway stations. This system, which is based on environmental knowledge, automatically detects and recognizes both exit numbers and arrow signs from natural outdoor scenes. The visually impaired can, therefore, utilize the system to find then-own way (for example, using exit numbers and the directions provided) through a subway station. The proposed walking guidance system consists mainly of three stages: (a) sign detection using the MCT-based AdaBoost technique, (b) sign recognition using support vector machines and hidden Markov models, and (c) three verification techniques to discriminate between signs and non-signs. The experimental results indicate that our sign recognition system has a high performance with a detection rate of 98%, a recognition rate of 99.5%, and a false-positive error rate of 0.152.
机译:在本文中,我们为视力障碍者提供了一种步行指导系统,可在地铁站使用。该系统基于环境知识,可自动检测和识别自然室外场景中的出口号和箭头标志。因此,视障者可以利用该系统找到自己通过地铁站的方式(例如,使用出口号和所提供的方向)。拟议的步行导航系统主要包括三个阶段:(a)使用基于MCT的AdaBoost技术进行标志检测,(b)使用支持向量机和隐马尔可夫模型进行标志识别,以及(c)三种方法来区分标志和非标志。实验结果表明,我们的符号识别系统具有较高的性能,检测率为98%,识别率为99.5%,假阳性错误率为0.152。

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