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All Round Blind Spot Detection by Lens Condition Adaptation based on Rearview Camera Images

机译:所有圆形盲点检测通过镜头条件适应基于后视摄像头图像

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This paper deals with a vehicle detection method for realizing a blind spot warning function, under various environmental conditions. We introduced a method that is capable of discriminating the target object vehicles, under poor lighting conditions and in cases where the lens may be exposed to splashes in wet, snow and dirt roads. The image sensing of the vehicle detection consists of four functional components: obstacle detection, velocity estimation, vertical edge detection, and final classification. Such componets allow robust performances resembling geometry based approaches, with low calculation power as an appearance based approach. This paper describes the functional components, and furthermore methods to enhance the performances under low contrast conditions and also suppress false detections caused by residue on the lens, which becomes essential for installation on vehicles driven in actual road conditions.
机译:本文涉及一种用于在各种环境条件下实现盲点警告功能的车辆检测方法。我们介绍了一种能够在较差的照明条件下和镜片可能暴露在湿,雪和污垢道路上溅的情况下识别目标物体车辆的方法。车辆检测的图像感测由四个功能组件组成:障碍物检测,速度估计,垂直边缘检测和最终分类。这些组件允许具有基于几何的方法的强大性能,具有低计算功率作为基于外观的方法。本文介绍了功能组分,进一步的方法,以提高低对比度条件下的性能,并且还抑制镜片上残留物引起的假检测,这对于在实际道路状况驱动的车辆上的安装成为必要的。

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