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Perceptual Evaluation of Automatic 2.5D Cartoon Modelling

机译:自动2.5D卡通建模的感知评价

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摘要

2.5D cartoon modelling is a recently proposed technique for modelling 2D cartoons in 3D, and enables 2D cartoons to be rotated and viewed in 3D. Automatic modelling is essential to efficiently create 2.5D cartoon models. Previous approaches to 2.5D modelling are based on manual 2D drawings by artists, which are inefficient and labour intensive. We recently proposed an automatic framework, known as Automatic 2.5D Cartoon Modelling (Auto-2CM). When building 2.5D models using Auto-2CM, the performance of different algorithm configurations on different kinds of objects may vary in different applications. The aim of perceptual evaluation is to investigate algorithm selection, i.e. selecting algorithm components for specific objects to improve the performance of Auto-2CM. This paper presents experimental results on different algorithms and recommends best practice for Auto-2CM.
机译:2.5D卡通建模是最近提出的技术用于在3D中建模2D漫画,并在3D中旋转和观看2D漫画。自动建模对于有效创建2.5D卡通模型至关重要。之前的2.5D建模方法基于艺术家的手动2D图纸,这是效率低下和劳动密集的。我们最近提出了一种自动框架,称为自动2.5D卡通建模(Auto-2CM)。使用Auto-2CM构建2.5D型号时,不同类型对象上的不同算法配置的性能可能在不同的应用中变化。感知评估的目的是调查算法选择,即选择特定对象的算法组件,以提高自动2cm的性能。本文介绍了不同算法的实验结果,为自动2CM推荐最佳实践。

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