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An Effective Recognition Method for Road Information Based on Mobile Terminal

机译:基于移动终端的道路信息有效识别方法

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This paper describes a design of fast recognition of road information based on mobile terminal. Firstly, based on the HOG algorithm, we study and verify the effects of different parameters on the performance of the algorithm. Secondly, we test 800 images randomly selected from the INRIA pedestrian dataset to obtain the optimal parameters for the mobile terminal and the proportion of video resolution and detection window. Then, under the same test conditions, the time overheads of the SVMLight and the LibSVM are recorded and SVMLight training time is significantly less than LibSVM. Thirdly, we design and implement a real-time road information recognition and warning system on the Windows platform and Android platform. Features include real-time pedestrians detection, voice warning, and road signs recognition. When the vehicle speed is less than 30 km/h, the video resolution is less than 720 × 576 and the detection window/image ratio is less than 1 : 50; the system can guarantee low delay and high recognition rate (97.2%).
机译:本文介绍了一种基于移动终端的道路信息快速识别设计。首先,基于HOG算法,我们研究并验证了不同参数对算法性能的影响。其次,我们测试了从INRIA行人数据集中随机选择的800张图像,以获得移动终端的最佳参数以及视频分辨率和检测窗口的比例。然后,在相同的测试条件下,将记录SVMLight和LibSVM的时间开销,并且SVMLight的训练时间明显少于LibSVM。第三,我们在Windows平台和Android平台上设计并实现了实时道路信息识别和警告系统。功能包括实时行人检测,语音警告和路标识别。当车速小于30km / h时,视频分辨率小于720××576,检测窗口/图像比例小于1×50。该系统可以保证低延迟和高识别率(97.2%)。

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