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A Speeded up Robust Scale-Invariant Feature Transform Currency Recognition Algorithm

机译:一种加速的鲁棒尺度不变特征变换货币识别算法

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All currencies around the world look very different from each other. For instance, the size, color, and pattern of the paper are different. With the development of modern banking services, automatic methods for paper currency recognition become important in many applications like vending machines. One of the currency recognition architecture’s phases is Feature detection and description. There are many algorithms that are used for this phase, but they still have some disadvantages. This paper proposes a feature detection algorithm, which merges the advantages given in the current SIFT and SURF algorithms, which we call, Speeded up Robust Scale-Invariant Feature Transform (SR-SIFT) algorithm. Our proposed SR-SIFT algorithm overcomes the problems of both the SIFT and SURF algorithms. The proposed algorithm aims to speed up the SIFT feature detection algorithm and keep it robust. Simulation results demonstrate that the proposed SR-SIFT algorithm decreases the average response time, especially in small and minimum number of best key points, increases the distribution of the number of best key points on the surface of the currency. Furthermore, the proposed algorithm increases the accuracy of the true best point distribution inside the currency edge than the other two algorithms.
机译:世界各地的所有货币看起来彼此都有很大不同。例如,纸张的尺寸,颜色和图案是不同的。随着现代银行服务的发展,用于纸币识别的自动方法在自动售货机等许多应用中变得越来越重要。货币识别架构的阶段之一是功能检测和描述。此阶段有很多算法,但是它们仍然有一些缺点。本文提出了一种特征检测算法,该算法融合了现有的SIFT和SURF算法中的优势,我们称之为快速鲁棒尺度不变特征变换(SR-SIFT)算法。我们提出的SR-SIFT算法克服了SIFT和SURF算法的问题。提出的算法旨在加快SIFT特征检测算法的速度,并保持其鲁棒性。仿真结果表明,所提出的SR-SIFT算法减少了平均响应时间,特别是在最佳关键点数量少且最小的情况下,增加了货币表面上最佳关键点数量的分布。此外,与其他两种算法相比,该算法提高了货币边缘内部真实最佳点分布的准确性。

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