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Fast 3D-Vision System to Classify Metallic Coins by their Embossed Topography

机译:快速的3D视觉系统,可通过压印的地形对金属硬币进行分类

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This paper presents a security-related machine-vision solution for real-time classification of moving objects with highly reflective metallic surfaces and complex 3D-structures. As an application example of our so called Three-Color Selective Stereo Gradient Method (Three-Color SSGM) a classification system for three main coin denominations of Euro coins is presented. Such coins are quickly moving in a coin validation system. The objective is to decide only from comparison of specially measured and processed 3D-surface information with characteristic topographical data stored in a database whether a coin belongs to one of the reference classes or has to be rejected as a foreign or counterfeit coin. Under illumination from a three-color light emitting diode equipped ring a single image of the moving coin is captured by a digital color camera. Exploiting the spectral properties of the illumination sources, which correspond to the special spectral characteristics of the camera, three independent subimages can be extracted. Comparison between these subimages leads to a discrimination between a coin with real 3D-surface and a counterfeit coin based on a photographic image of a coin of the same type. After the coin has been located and segmented, grey value based rotation and translation invariant features are extracted froma normalized image. In combination with template matching methods, a coin can be classified. Classification results will be reported for the three main coin denominations of Euro coins. keywords: structural pattern analysis, machine vision, object recognition, 3D-Machine Vision, Three-Color Selective Stereo Gradient Method, Specular Metallic Surfaces
机译:本文提出了一种与安全性相关的机器视觉解决方案,用于对具有高反射金属表面和复杂3D结构的运动对象进行实时分类。作为我们所谓的三色选择性立体梯度方法(三色SSGM)的应用示例,提出了一种用于欧元硬币的三种主要硬币面额的分类系统。这样的硬币在硬币验证系统中正在快速移动。目的是仅通过将经过特殊测量和处理的3D表面信息与数据库中存储的特征形貌数据进行比较,来确定硬币是否属于参考类别之一,还是必须作为外国或伪造硬币予以拒绝。在配备了三色发光二极管的环形灯的照亮下,数字彩色相机捕获了移动硬币的单个图像。利用与相机的特殊光谱特性相对应的照明光源的光谱特性,可以提取三个独立的子图像。这些子图像之间的比较导致基于相同类型硬币的摄影图像来区分具有真实3D表面的硬币和伪造硬币。在硬币被定位和分割之后,从归一化图像中提取基于灰度值的旋转和平移不变特征。结合模板匹配方法,可以对硬币进行分类。将报告欧元硬币的三种主要硬币面额的分类结果。关键词:结构图案分析,机器视觉,物体识别,3D机器视觉,三色选择性立体梯度法,镜面金属表面

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