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Rapid license plate detection using Modest AdaBoost and template matching

机译:使用Modest AdaBoost和模板匹配进行快速车牌检测

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License plate detection and recognition are vital yet challenging tasks for law enforcement agencies. This paper presents a license plate detection prototype system for a Macao law enforcement department using Modest Adaboost combined with template matching technique. Firstly, a machine learning algorithm, based on Modest AdaBoost which mostly aims for better generalization capability and resistance to overfitting, was applied to find out candidate license plates over the input images. In the second stage, template matching technique was employed to verify the license plate appearances in order to reduce false positives. This paper shows that the AdaBoost algorithm, which was originally used for face detection, has successfully been applied to solve the problems of license plate detection. Experimental results demonstrate high accuracy and efficiency of the proposed method.
机译:对于执法机构来说,车牌的检测和识别是至关重要但具有挑战性的任务。本文提出了一种使用Modest Adaboost结合模板匹配技术的澳门执法部门车牌检测原型系统。首先,应用了一种基于Modest AdaBoost的机器学习算法,该算法主要旨在提高泛化能力和抵抗过度拟合的能力,从而在输入图像上找出候选车牌。在第二阶段,采用模板匹配技术来验证车牌外观,以减少误报。本文表明,最初用于人脸检测的AdaBoost算法已成功应用于解决车牌检测问题。实验结果表明,该方法具有较高的准确性和效率。

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