Recognition of Speed Limit from Traffic Signs Using Naive Bayes Classifier

Sruthi Nair, A. R P
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引用次数: 2

Abstract

The detection and recognition of road speed limit signs is an important task in advanced driver assistance system (ADAS). The speed limit signs are important in informing the driver about allowable speed in a particular area. It increases the safety, as it provides information about the circumstances of the road. Different systems are being implemented by the government authorities to prevent accidents due to over speed. Here the proposed system provides efficient detection and identification of speed limit signs. The system operates in the following way: first it involves the detection of the sign board and then performs segmentation followed by geometric detection. Hough transform algorithm is employed to detect the sign board with saliency based approach. Second the system detects the characters from the extracted sign board. Finally it involves recognition of speed limit sign using Naive Baye’s employed classifier. The algorithm is successfully tested and shows 94% accuracy.
基于朴素贝叶斯分类器的交通标志限速识别
道路限速标志的检测与识别是高级驾驶辅助系统(ADAS)的一项重要任务。速度限制标志在告知驾驶员特定区域的允许速度方面很重要。它增加了安全性,因为它提供了有关道路情况的信息。政府当局正在实施不同的系统,以防止因超速而导致的事故。在这里,提出的系统提供了有效的检测和识别限速标志。该系统的工作方式如下:首先对标识板进行检测,然后进行分割,最后进行几何检测。采用霍夫变换算法对标识板进行显著性检测。其次,系统从提取的标识板中检测字符。最后涉及到使用朴素贝叶斯分类器对限速标志进行识别。该算法经过测试,准确率达到94%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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