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Active Arrangement of Small Objects in 3D Indoor Scenes

机译:在3d室内场景中的小物体的主动安排

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摘要

Small object arrangement is very important for creating detailed and realistic 3D indoor scenes. In this article, we present an interactive framework based on active learning to help users create customized arrangements for small objects according to their preferences. To achieve this with minimal user effort, we first learn the prior knowledge about small object arrangement from a 3D indoor scene dataset through a probability mining method, which forms the initial guidance for arranging small objects. Then, users are able to express their preferences on a few small object categories, which are automatically propagated to all the other categories via a novel active learning approach. In the propagation process, we introduce a novel metric to obtain the propagation weights, which measures the degree of interchangeability between two small object categories, and is calculated based on a spatial embedding model learned from the small object neighborhood information extracted from the 3D indoor scene dataset. Experiments show that our framework is able to help users effectively create customized small object arrangements with little effort.
机译:小物体安排对于创建详细和现实的3D室内场景非常重要。在本文中,我们介绍了一个基于主动学习的交互式框架,以帮助用户根据其偏好为小型对象创建自定义安排。为了实现这一目标,通过最小的用户努力,我们首先通过概率挖掘方法从3D室内场景数据集中了解关于小对象布置的现有知识,这形成了布置小物体的初始指导。然后,用户能够通过新颖的主动学习方法自动传播到几个小型对象类别的少数小型对象类别。在传播过程中,我们介绍一种新颖的度量来获得传播权重,其测量两个小对象类别之间的互换性程度,并且基于从从3D室内场景中提取的小对象邻域信息学习的空间嵌入模型来计算数据集。实验表明,我们的框架能够帮助用户有效地创建定制的小对象安排,几乎没有努力。

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