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A Smartphone-Based Obstacle Detection and Classification System for Assisting Visually Impaired People

机译:基于智能手机的视障人员障碍物检测与分类系统

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In this paper we introduce a real-time obstacle detection and classification system designed to assist visually impaired people to navigate safely, in indoor and outdoor environments, by handling a smartphone device. We start by selecting a set of interest points extracted from an image grid and tracked using the multiscale Lucas - Kanade algorithm. Then, we estimate the camera and background motion through a set of homographic transforms. Other types of movements are identified using an agglomerative clustering technique. Obstacles are marked as urgent or normal based on their distance to the subject and the associated motion vector orientation. Following, the detected obstacles are fed/sent to an object classifier. We incorporate HOG descriptor into the Bag of Visual Words (BoVW) retrieval framework and demonstrate how this combination may be used for obstacle classification in video streams. The experimental results demonstrate that our approach is effective in image sequences with significant camera motion and achieves high accuracy rates, while being computational efficient.
机译:在本文中,我们介绍了一种实时障碍物检测和分类系统,旨在通过操作智能手机设备来帮助视障人士在室内和室外环境中安全导航。我们首先选择从图像网格中提取并使用多尺度Lucas-Kanade算法进行跟踪的兴趣点集。然后,我们通过一组单应变换来估计摄像机和背景运动。使用聚集聚类技术可以识别其他类型的运动。根据障碍物到对象的距离以及相关的运动矢量方向,将其标记为紧急或正常。随后,将检测到的障碍物馈入/发送到对象分类器。我们将HOG描述符合并到视觉单词袋(BoVW)检索框架中,并演示了如何将这种组合用于视频流中的障碍物分类。实验结果表明,我们的方法在摄像机运动明显的图像序列中是有效的,并且在提高计算效率的同时,可以达到较高的准确率。

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