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Unsupervised clustering in Hough space for recognition of multiple instances of the same object in a cluttered scene

机译:Hough空间中的无监督聚类,用于识别混乱场景中同一对象的多个实例

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We describe an active binocular vision system that is capable of localising multiple instances of objects of the same-class in different settings within a covert, pre-attentive, visual search strategy. By clustering SIFT-feature matches that have been projected into a non-quantised (i.e. continuous) Hough space we are able to detect up to 6 same-class object instances simultaneously while tolerating up to ~66% of each object's surface being occluded by another object instance of the same-class. Our findings are based on using a database of ~2300 images of synthetically composited and real-world images.
机译:我们描述了一种主动的双目视觉系统,该系统能够在隐蔽的,预先注意的视觉搜索策略内的不同设置中定位同一类对象的多个实例。通过将已投影到非量化(即连续)霍夫空间中的SIFT特征匹配进行聚类,我们能够同时检测多达6个相同类的对象实例,同时容忍每个对象表面的约66%被另一个对象遮挡同一类的对象实例。我们的发现是基于使用约2300张合成合成图像和真实图像的数据库得出的。

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