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PARALLEL MATCHING OF 3D ARTICULATED OBJECT RECOGNITION

机译:3D关节物体识别的并行匹配

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摘要

In dealing with large volume image data, sequential methods usually are too slow and unsatisfactory. This paper introduces a new system employing parallel matching in high-level recognition of 3D articulated objects. A new structural strategy using linear combination and parallel graphic matching techniques is presented for 3D polyhedral objects representable by 2D line-drawing. It solves one of the basic concerns in diffusion tomography complexities, i.e. patterns can be reconstructed through fewer projections, and 3D objects can be recognized by a few learning sample views. It also improves some of the current methods while overcoming their drawbacks. Furthermore, it can distinguish very similar objects and is more accurate than other methods in the literature. An online webpage system for understanding and recognizing 3D objects is also illustrated.
机译:在处理大量图像数据时,顺序方法通常太慢且不能令人满意。本文介绍了一种新系统,该系统在3D关节物体的高级识别中采用了并行匹配。针对可通过2D线图表示的3D多面体,提出了一种使用线性组合和并行图形匹配技术的新结构策略。它解决了扩散层析成像复杂性的基本问题之一,即可以通过更少的投影来重建图案,并且可以通过学习一些样本视图来识别3D对象。它也改善了一些当前方法,同时克服了它们的缺点。此外,它可以区分非常相似的对象,并且比文献中的其他方法更准确。还示出了用于理解和识别3D对象的在线网页系统。

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