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A vision based system for Traffic Lights Recognition

机译:基于视觉的交通灯识别系统

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In this article a traffic light recognition with status detection system is introduced. The system is evaluated from a generic point of view but the applications range from Intelligent Transportation System (ITS) to visual impaired and color vision deficiencies aid to safely cross streets. The algorithm is based on color segmentation in HSV color space. After that candidates reduction is performed using a pipeline approach to speed up the algorithm. Resulting candidates are input to feature extraction and support vector machine is then applied. For the training of the Support Vector Machine a database with images collected in Chicago is used. Unlike other works the purpose is to evaluate different performance according to the feature extraction. In particular HOG, HAAR and LBP features are compared. The purpose is also to create a database to be used from other researchers. The result is accurate and reliable provided that good quality images are input to the system.
机译:在本文中,引入了使用状态检测系统的流量光识别。该系统由通用的视角评估,但应用范围从智能交通系统(其)到视觉受损和颜色视觉缺陷辅助安全交叉街道。该算法基于HSV颜色空间中的颜色分割。在该候选者之后,使用管道方法进行减少来加速算法。结果候选者输入到特征提取,然后应用支持向量机。对于支持向量机的培训,使用具有在芝加哥收集的图像的数据库。与其他作品不同,目的是根据特征提取评估不同的性能。特别是猪,哈尔和LBP特征进行了比较。目的还可以创建要从其他研究人员使用的数据库。结果准确可靠,条件是输入良好的质量图像对系统输入。

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