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Titlebook: Computer Vision for Driver Assistance; Simultaneous Traffic Mahdi Rezaei,Reinhard Klette Book 2017 Springer International Publishing AG 201

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https://doi.org/10.1007/978-90-481-8978-6 method, and gives examples and various applications for each method. Material is provided to support a decision for an appropriate object detection technique for computer vision applications, including driver-assistance systems.
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Object Detection, Classification, and Tracking, method, and gives examples and various applications for each method. Material is provided to support a decision for an appropriate object detection technique for computer vision applications, including driver-assistance systems.
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Gerda Neyer,Gunnar Andersson,Hill Kuluon and to indirectly support our eye-state monitoring system. Experimental results obtained for the MIT-CMU dataset, Yale dataset, and our recorded videos and comparisons with standard Haar-like detectors show noticeable improvements compared to previous methods.
发表于 2025-3-26 01:19:48 | 显示全部楼层
Driver Drowsiness Detection,on and to indirectly support our eye-state monitoring system. Experimental results obtained for the MIT-CMU dataset, Yale dataset, and our recorded videos and comparisons with standard Haar-like detectors show noticeable improvements compared to previous methods.
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The Future of Health Demography,bove information. The ultimate goal is to prevent a traffic accident by fusing all the existing “in-out” data from inside the car cockpit and outside on the road. We aim to warn the driver in case of high-risk driving conditions and to prevent an imminent crash.
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Vehicle Detection and Distance Estimation,d information to reach a higher degree of certainty. The proposed algorithm is able to detect vehicles ahead both at day and night, and also for a wide range of distances. Experimental results under various conditions, including sunny, rainy, foggy, or snowy weather, show that the proposed algorithm
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