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首页> 外文期刊>ACM Transactions on Graphics >A Search-Classify Approach for Cluttered Indoor Scene Understanding
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A Search-Classify Approach for Cluttered Indoor Scene Understanding

机译:基于搜索分类的室内场景理解方法

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摘要

We present an algorithm for recognition and reconstruction of scanned 3D indoor scenes. 3D indoor reconstruction is particularly challenging due to object interferences, occlusions and overlapping which yield incomplete yet very complex scene arrangements. Since it is hard to assemble scanned segments into complete models, traditional methods for object recognition and reconstruction would be inefficient. We present a search-classify approach which interleaves segmentation and classification in an iterative manner. Using a robust classifier we traverse the scene and gradually propagate classification information. We reinforce classification by a template fitting step which yields a scene reconstruction. We deform-to-fit templates to classified objects to resolve classification ambiguities. The resulting reconstruction is an approximation which captures the general scene arrangement. Our results demonstrate successful classification and reconstruction of cluttered indoor scenes, captured in just few minutes.
机译:我们提出了一种识别和重建扫描的3D室内场景的算法。由于物体的干扰,遮挡和重叠会产生不完整但非常复杂的场景布置,因此3D室内重建尤其具有挑战性。由于很难将扫描的片段组装成完整的模型,因此用于对象识别和重建的传统方法效率很低。我们提出了一种搜索分类方法,该方法以迭代方式交错分割和分类。使用强大的分类器,我们遍历场景并逐渐传播分类信息。我们通过模板拟合步骤来加强分类,从而产生场景重建。我们将模板变形以适合分类对象以解决分类歧义。所得到的重建是捕获总体场景布置的近似值。我们的结果表明,在短短几分钟内就可以对混乱的室内场景进行成功的分类和重建。

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