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Modelling and interpretation of architecture from several images

机译:从几幅图像对建筑进行建模和解释

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This paper describes the automatic acquisition of three dimensional architectural models from short image sequences. The approach is Bayesian and model based. Bayesian methods necessitate the formulation of a prior distribution; however designing a generative model for buildings is a difficult task. In order to overcome this a building is described as a set of walls together with a 'Lego' kit of parameterised primitives, such as doors or windows. A prior on wall layout, and a prior on the parameters of each primitive can then be defined. Part of this prior is learnt from training data and part comes from expert architects. The validity of the prior is tested by generating example buildings using MCMC and verifying that plausible buildings are generated under varying conditions. The same MCMC machinery can also be used for optimising the structure recovery, this time generating a range of possible solutions from the posterior. The fact that a range of solutions can be presented allows the user to select the best when the structure recovery is ambiguous.
机译:本文描述了从短图像序列中自动获取三维建筑模型的方法。该方法基于贝叶斯和模型。贝叶斯方法需要制定先验分布。但是,为建筑物设计生成模型是一项艰巨的任务。为了克服这一问题,将一栋建筑物描述为一组墙以及带有参数化图元(例如门或窗户)的“乐高”套件。然后可以定义墙体布局的先验和每个图元的参数的先验。这些先验的一部分是从培训数据中学到的,另一部分是从专家架构师那里学来的。通过使用MCMC生成示例建筑物并验证在不同条件下生成的合理建筑物来测试先验的有效性。相同的MCMC机器也可以用于优化结构恢复,这次从后部产生了一系列可能的解决方案。可以提供多种解决方案的事实使用户可以在结构恢复不明确时选择最佳方案。

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