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Analysis of methods for the recognition of Indian coins: A challenging application of machine vision to automated inspection

机译:印度硬币识别方法的分析:机器视觉在自动检查中的挑战性应用

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The subject of this paper is a particularly challenging machine vision (MV) based sorting application where the `part' is an Indian coin. The application is challenging in part because of the lack of distinctive features to differentiate between denominations as well as the variability in the features for a given denomination. Although there are coin recognition algorithms documented in the literature, the applications are typically tested off-line with static images of the coins. In this paper, a MV-based system for on-line recognition and counting of Indian coins moving on a conveyor is evaluated. The accuracy and performance of three different techniques are compared: particle classification, pattern matching and geometric matching. The conclusion is that none of these three techniques produced acceptable results, where the goal was to achieve 95% accuracy at 1000 coins/min.
机译:本文的主题是一个特别具有挑战性的基于机器视觉(MV)的分拣应用程序,其中“零件”是印度硬币。该应用之所以具有挑战性,部分原因是缺乏区分面额的独特特征以及给定面额的特征变异性。尽管文献中记录了硬币识别算法,但通常会使用硬币的静态图像对应用程序进行离线测试。在本文中,评估了基于MV的在线识别和计数在传送带上移动的印度硬币的系统。比较了三种不同技术的准确性和性能:粒子分类,模式匹配和几何匹配。结论是,这三种技术均未产生令人满意的结果,其目标是以1000个硬币/分钟的速度达到95%的准确度。

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