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Robust Object Detection with Interleaved Categorization and Segmentation

机译:具有交错分类和分段的鲁棒对象检测

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摘要

This paper presents a novel method for detecting and localizing objects of a visual category in cluttered real-world scenes. Our approach considers object categorization and figure-ground segmentation as two interleaved processes that closely collaborate towards a common goal. As shown in our work, the tight coupling between those two processes allows them to benefit from each other and improve the combined performance.
机译:本文提出了一种在杂乱的现实世界场景中检测和定位视觉类别对象的新颖方法。我们的方法将对象分类和图底分割视为两个紧密协作以实现共同目标的交错过程。如我们的工作所示,这两个过程之间的紧密耦合使它们能够彼此受益,并提高了综合性能。

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