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Recognition of containers using a multidimensional pattern classifier

机译:使用多维模式分类器识别容器

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Abstract: d for recognizing closed containers based on features extracted from their circular tops is presented. The approach developed consists of obtaining images from two spatially separated cameras that utilize both diffuse and specular light sources. The images thus obtained are used to segment target objects from the background and to extract representative features. The features utilized consist of container height as computed using stereopsis as well as the mean, variance, and second central moments of the intensities of the segmented caps. The recognition procedure is based on a minimum distance Mahalanobis classifier which takes feature covariance into account. The discussion that follows details the algorithmic approach for the entire system including image acquisition, object segmentation, feature extraction, and pattern classification. Result of test runs involving sets of several hundred training samples and untrained samples are presented. !5
机译:摘要:提出了一种基于从圆形容器顶部提取的特征来识别封闭容器的方法。开发的方法包括从两个同时使用漫射和镜面光源的空间分离的相机获取图像。如此获得的图像用于从背景中分割目标对象并提取代表性特征。所利用的特征包括使用立体视计算的容器高度以及分段盖的强度的均值,方差和第二中心矩。识别过程基于最小距离Mahalanobis分类器,该分类器考虑了特征协方差。接下来的讨论详细介绍了整个系统的算法方法,包括图像采集,对象分割,特征提取和模式分类。给出了涉及数百个训练样本和未训练样本的测试运行结果。 !5

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