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3D Scene Generation by Learning from Examples

机译:3D场景生成通过从示例学习

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Due to overwhelming use of 3D models in video games and virtual environments, there is a growing interest in 3D scene generation, scene understanding and 3D model retrieval. In this paper, we introduce a data-driven 3D scene generation approach from a Maximum Entropy (MaxEnt) model selection perspective. Using this model selection criterion, new scenes can be sampled by matching a set of contextual constraints that are extracted from training and synthesized scenes. Starting from a set of random synthesized configurations of objects in 3D, the MaxEnt distribution is iteratively sampled (using Metropolis sampling) and updated until the constraints between training and synthesized scenes match, indicating the generation of plausible synthesized 3D scenes. To illustrate the proposed methodology, we use 3D training desk scenes that are all composed of seven predefined objects with different position, scale and orientation arrangements. After applying the MaxEnt framework, the synthesized scenes show that the proposed strategy can generate reasonably similar scenes to the training examples without any human supervision during sampling. We would like to mention, however, that such an approach is not limited to desk scene generation as described here and can be extended to any 3D scene generation problem.
机译:由于在视频游戏和虚拟环境中使用3D模型的压倒性地使用,在3D场景生成,场景理解和3D模型检索中,存在越来越多的兴趣。在本文中,我们从最大熵(maxent)模型选择透视引入数据驱动的3D场景生成方法。使用此型号选择标准,可以通过匹配从训练和合成场景中提取的一组上下文约束来采样新场景。从3D中的对象的一组随机综合配置开始,MaxEnt分布迭代地采样(使用Metropolis采样)并更新,直到训练和合成场景之间的约束匹配,指示合理合成的3D场景的产生。为了说明所提出的方法,我们使用的是3D训练桌面场景,这些桌面都是由七个预定义对象组成的,具有不同的位置,比例和方向布置。在应用MaxEnt框架之后,合成场景表明,拟议的策略可以在抽样期间没有任何人类监督的培训例子产生合理相似的场景。但是,我们想提及这样的方法不限于如此所述的桌面场景生成,并且可以扩展到任何3D场景生成问题。

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