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Vehicle license plate detection using region-based convolutional neural networks

机译:车辆车牌检测使用基于区域的卷积神经网络

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摘要

Vehicle license plate (LP) detection is a relatively complex problem until we assume the use of a static camera, variations in illumination, known templates of the LP, guaranteed color patterns and other simple assumptions. Practical applications demand robust and generalized LP detection techniques to accommodate complex scenarios. This work suggests a new approach to solving this problem by treating the vehicle LP as an object. The primary focus of this study is to address following tasks associated with the challenge of LP detection: (1) LP detection in every frame of a video sequence, (2) detection of partial LPs and (3) detection of LPs with moving cameras and moving vehicles. The state-of-the-art object detection techniques, including convolutional neural networks with region proposal (RCNN), its successors (Fast-RCNN and Faster-RCNN) and the exemplar-SVM, are used in this work to provide solutions to the problem. The suggested study demonstrates better results in comprehensive tests and comparisons than other conventional approaches.
机译:车辆牌照(LP)检测是一个相对复杂的问题,直到我们假设使用静态相机,照明的变化,LP的已知模板,保证颜色模式和其他简单的假设。实用应用需求强大而广义的LP检测技术,以适应复杂的情景。这项工作表明,通过将车辆LP作为对象来解决这个问题的新方法。本研究的主要焦点是解决与LP检测的挑战相关的任务:(1)在视频序列的每一帧中检测(2)检测部分LPS和(3)带有移动摄像机的LPS检测移动车辆。在这项工作中使用了最先进的对象检测技术,包括具有区域提案(RCNN)的卷积神经网络(RCNN),其继承者(FAST-RCNN和FAST-RCNN)和示例性-SVM,以提供解决方案问题。建议的研究表明,综合测试和比较的结果比其他传统方法更好。

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