使用颜色分割,径向对称检测器和霍夫方法的目标检测

R. Shakirzyanov, Alina A. Shakirzyanova
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引用次数: 0

摘要

目前,包括汽车在内的各种车辆的无人控制系统得到了广泛的应用。驾驶无人驾驶汽车需要解决与识别道路物体相关的任务。提出了一种改进的圆形交通灯信号检测与识别算法。为了解决这个问题,我们使用了:快速径向对称变换、霍夫变换和颜色分割。该算法的一个特点是根据颜色属性初步确定光信号所在的区域,然后指定物体的形状和位置。在最后阶段,使用霍夫方法对解决方案进行细化。所提出的算法具有可操作性,可以根据识别信号的类型进行扩展,并作为无人驾驶车辆控制系统的一部分,以及作为驾驶员辅助系统的一部分,用于解决与预防危险和紧急情况相关的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Object Detection Using Color Segmentation, Radial Symmetry Detector, and Hough Method
Currently, unmanned control systems for various vehicles, including cars, are widely used. Driving an unmanned vehicle involves solving tasks related to recognizing road objects. An improved algorithm for solving the problem of detection and recognition of round traffic light signals is proposed. To solve this problem, we use: fast radial symmetry transformation, Hough transform, and color segmentation. A special feature of the algorithm is that the areas where the light signals are located they are preliminarily determined based on the color attribute, followed by specifying the shape and position of objects. At the final stage, the solution is refined using the Hough method. The proposed algorithm has shown operability, it can be expanded in terms of the types of recognized signals and applied as part of unmanned vehicle control systems, as well as part of driver assistance systems for solving problems related to the prevention of dangerous and emergency situations.
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