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Flexible 3d Object Recognition Frameworkusing 2d Views Via A Similarity-based aspect-graph Approach

机译:通过基于相似度的方面图方法使用2d视图的灵活3d对象识别框架

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摘要

This work presents a flexible framework for recognizing 3D objects from 2D views. Similarity-based aspect-graph, which contains a set of aspects and prototypes for these aspects, is employed to represent the database of 3D objects. An incremental database construction method that maximizes the similarity of views in the same aspect and minimizes the similarity of prototypes is proposed as the core of the framework to build and update the aspect-graph using 2D views randomly sampled from a viewing sphere. The proposed framework is evaluated on various object recognition problems, including 3D object recognition, human posture recognition and scene recognition. Shape and color features are employed in different applications with the. proposed framework and the top three matching rates show the efficiency of the proposed method.
机译:这项工作提出了一个灵活的框架,可以从2D视图识别3D对象。基于相似度的方面图(其中包含一组方面和这些方面的原型)用于表示3D对象的数据库。作为框架的核心,提出了一种增量数据库构造方法,该方法可最大化同一方面的视图相似性,并使原型的相似性最小化,该框架的核心是使用从视域中随机采样的2D视图来构建和更新外观图。该框架针对各种物体识别问题进行了评估,包括3D物体识别,人体姿势识别和场景识别。形状和颜色特征被用于与之不同的应用中。提出的框架和前三个匹配率表明了该方法的有效性。

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