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Vehicle detection in intelligent transportation systems and its applications under varying environments: A review

机译:智能交通系统中的车辆检测及其在不同环境下的应用:综述

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Robust and efficient vehicle detection in monocular vision is an important task in Intelligent Transportation Systems. With the development of computer vision techniques and consequent accessibility of video image data, new applications have been enabled to on-road vehicle detection algorithms. This paper provides a review of the literature in vehicle detection under varying environments. Due to the variability of on-road driving environments, vehicle detection may face different problems and challenges. Therefore, many approaches have been proposed, and can be categorized as appearance-based methods and motion-based methods. In addition, special illumination, weather and driving scenarios are discussed in terms of methodology and quantitative evaluation. In the future, efforts should be focused on robust vehicle detection approaches for various on-road conditions. (C) 2017 Elsevier B.V. All rights reserved.
机译:单眼视觉中的鲁棒高效的车辆检测是智能交通系统中的重要任务。随着计算机视觉技术的发展以及随之而来的视频图像数据的可访问性,公路车辆检测算法已经有了新的应用。本文对各种环境下的车辆检测文献进行了综述。由于道路行驶环境的变化,车辆检测可能面临不同的问题和挑战。因此,已经提出了许多方法,并且可以将其分类为基于外观的方法和基于运动的方法。此外,还将在方法论和定量评估方面讨论特殊的照明,天气和驾驶场景。将来,应该将精力集中在针对各种路况的稳健的车辆检测方法上。 (C)2017 Elsevier B.V.保留所有权利。

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