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Sketch-based 3D model retrieval utilizing adaptive view clustering and semantic information

机译:利用自适应视图聚类和语义信息的基于草图的3D模型检索

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摘要

Searching for relevant 3D models based on hand-drawn sketches is both intuitive and important for many applications, such as sketch-based 3D modeling and recognition, human computer interaction, 3D animation, game design, and etc. In this paper, our target is to significantly improve the current sketch-based 3D retrieval performance in terms of both accuracy and efficiency. We propose a new sketch-based 3D model retrieval framework by utilizing adaptive view clustering and semantic information. It first utilizes a proposed viewpoint entropy-based 3D information complexity measurement to guide adaptive view clustering of a 3D model to shortlist a set of representative sample views for 2D-3D comparison. To bridge the gap between the query sketches and the target models, we then incorporate a novel semantic sketch-based search approach to further improve the retrieval performance. Experimental results on several latest benchmarks have evidently demonstrated our significant improvement in retrieval performance.
机译:对于基于草图的3D建模和识别,人机交互,3D动画,游戏设计等许多应用,基于手绘草图搜索相关的3D模型既直观又重要。以提高准确性和效率方面的当前基于草图的3D检索性能。通过利用自适应视图聚类和语义信息,我们提出了一个新的基于草图的3D模型检索框架。它首先利用提出的基于视点熵的3D信息复杂度测量来指导3D模型的自适应视图聚类,以筛选出一组代表性样本视图进行2D-3D比较。为了弥合查询草图和目标模型之间的差距,我们然后结合了一种新颖的基于语义草图的搜索方法,以进一步提高检索性能。在几个最新基准上的实验结果显然证明了我们在检索性能方面的显着提高。

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