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A genetic algorithm and artificial neural network-based approach for the machine vision of plate segmentation and character recognition

机译:基于遗传算法和基于人工神经网络的板分割和字符识别机器视觉方法

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This paper proposes a genetic-algorithm and neural network-based approach in the optimization of the process of plate segmentation and character recognition respectively in intelligent transportation systems. Upon the detection of the vehicle's plate from a captured image, it is necessary that the individual characters in the detected plate are distinguished. After the process of plate recognition, the recognized plate number can be crossed-referenced against a database to correctly identify the vehicle's owner and ultimately penalize him for the traffic rule he violated. The segmentation algorithm captures the region of each character in the detected plate using genetic algorithm. After which, each plate character image is mapped against its corresponding sample character image. This is done by feeding sample character images into an artificial neural network and training the network.
机译:本文提出了一种遗传算法和基于神经网络的方法,可分别在智能运输系统中优化板分割和字符识别过程中的优化。在从捕获图像检测车辆的板时,有必要区分检测到的板中的各个字符。在平板识别过程之后,可以对数据库交叉引用的公认的板号以正确识别车辆的所有者并最终惩罚他违反的交通规则。分段算法使用遗传算法捕获检测到的板中的每个字符的区域。之后,每个板字符图像被映射到其相应的样本字符图像。这是通过将样本字符图像送入人工神经网络并训练网络来完成的。

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