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Automatic flag recognition using texture based color analysis and gradient features

机译:使用基于纹理的颜色分析和渐变功能自动识别标志

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To add to the growing corpus of handy computer vision applications on smart-phones and Tablet PCs, this paper presents our work on real-time Flag Recognition. The novelty of our attempt at recognizing country flags lies in a three-fold contribution — a 56805 flag images database, 38532 for training and 18273 for testing; a generic recognition approach suited not only to flags but also other insignia and object recognition tasks in which the major discriminative information lies in the relative spatial distribution of colors; and practical usability of the approach in a smart-phone application, being trained and tested on a diverse set of camera captured flag images and having real-time performance. With its large number of classes, little or no shape based difference, high inter-class color similarity, and much intra-class color variation, the 224 country-flags database proves to be very challenging. Additionally, the real-time database incorporates considerable variation in texture, scale, illumination and viewpoint. Our work introduces an improved MSD approach incorporating new and revised criteria for HSV based color binning, applies it in a ‘by-parts’ manner and reinforces it with gradient analysis to achieve an accuracy of 99.2% on the training set and an accuracy of 76.4% on the test set. For practical purposes, top-5 and top-10 results accuracies have also been compiled over the test data, reaching 92.46% and 95.56% mark respectively.
机译:为了增加在智能手机和平板电脑上使用的便捷计算机视觉应用的种类,本文介绍了我们在实时标志识别方面的工作。我们尝试识别国旗的新颖性在于三方面的贡献:56805国旗图像数据库,38532用于培训和18273用于测试;一种通用的识别方法,不仅适用于标记,还适用于其他标志和对象识别任务,其中主要的区分信息在于颜色的相对空间分布;以及该方法在智能手机应用程序中的实用性,并在各种相机捕获的标志图像上进行了培训和测试,并具有实时性能。 224个国家/地区的标记数据库具有大量的类别,几乎没有基于形状的差异,几乎没有基于形状的差异,高度的类别间颜色相似性以及类别内的颜色差异很大,这被证明是非常具有挑战性的。另外,实时数据库在纹理,比例,照度和视点方面具有相当大的变化。我们的工作引入了一种改进的MSD方法,该方法结合了基于HSV的颜色合并的新标准和修订标准,以“分部”方式进行应用,并通过梯度分析加以增强,以使训练集的准确度达到99.2%,准确度达到76.4测试集上的%。出于实际目的,测试数据还汇总了前5名和前10名的结果准确性,分别达到92.46%和95.56%。

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