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An Efficient Scene Recognition System of Railway Crossing

机译:铁路交叉有效的场景识别系统

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Railway crossing is one of the places where mobility scooter accidents happen relatively often. To support drivers to prevent such accidents, we propose a scene recognition system for the railway crossing scene. This system can detect railway crossing scene, objects which typically exist close to the railway crossing scene, and the distance to the detected railway crossing. In this system, we propose an efficient four-stage recognition scheme that combines scene screening based on a compact CNN, CNN-based object detection, railway crossing detection, and distance estimation based on the detected warning sign of railway crossing. In the experiments, we demonstrate our system improves precision and F-score for each class by up to 20.6% and 35.0% for the same recall, respectively compared with existing object detection. Moreover, by using the proposed scene screening, we achieved 1.7 to 1.9 times faster execution for scenes in which a railway crossing does not exist on the desktop PC, Raspberry Pi3 model B, Raspberry Pi model B with Neural Compute Stick 2.
机译:铁路交叉是移动踏板车事故发生相对频繁发生的地方之一。为了支持防止此类事故的司机,我们提出了一个用于铁路横穿场景的场景识别系统。该系统可以检测铁路交叉场景,通常靠近铁路交叉场景的物体,以及与检测到的铁路交叉的距离。在该系统中,我们提出了一种基于紧凑的CNN,基于CNN的对象检测,铁路交叉检测,铁路交叉检测,基于铁路交叉的检测标志的距离估计来结合的四级识别方案。在实验中,我们展示了我们的系统可以提高每个阶级的精度和F分,同一召回的每个级别高达20.6%和35.0%,分别与现有的对象检测相比。此外,通过使用所提出的场景筛选,我们的桌面PC在桌面PC,Raspberry PI3 Model B,Raspberry PI Model B中没有存在的场景时更快地执行1.7至1.9倍。

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