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Color Texture-Based Object Detection: An Application to License Plate Localization

机译:基于颜色纹理的对象检测:车牌定位的应用

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摘要

This paper presents a novel color texture-based method for object detection in images. To demonstrate our technique, a vehicle license plate (LP) localization system is developed. A support vector machine (SVM) is used to analyze the color textural properties of LPs. No external feature extraction module is used, rather the color values of the raw pixels that make up the color textural pattern are fed directly to the SVM, which works well even in high-dimensional spaces. Next, LP regions are identified by applying a continuously adaptive meanshift algorithm (CAMShift) to the results of the color texture analysis. The combination of CAMShift and SVMs produces not only robust and but also efficient LP detection as time-consuming color texture analyses for less relevant pixels are restricted, leaving only a small part of the input image to be analyzed.
机译:本文提出了一种新颖的基于颜色纹理的图像目标检测方法。为了演示我们的技术,开发了车辆牌照(LP)定位系统。支持向量机(SVM)用于分析LP的颜色纹理特性。没有使用外部特征提取模块,而是将构成颜色纹理图案的原始像素的颜色值直接馈送到SVM,即使在高维空间中也可以很好地工作。接下来,通过将连续自适应均值漂移算法(CAMShift)应用于颜色纹理分析的结果来识别LP区域。 CAMShift和SVM的结合不仅产生了鲁棒性,而且还产生了有效的LP检测,这是因为限制了对不太相关的像素进行的耗时颜色纹理分析,从而只剩下一小部分要分析的输入图像。

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