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Inference-Based Surface Reconstruction of Cluttered Environments

机译:杂乱环境中基于推理的表面重构

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We present an inference-based surface reconstruction algorithm that is capable of identifying objects of interest among a cluttered scene, and reconstructing solid model representations even in the presence of occluded surfaces. Our proposed approach incorporates a predictive modeling framework that uses a set of user-provided models for prior knowledge, and applies this knowledge to the iterative identification and construction process. Our approach uses a local to global construction process guided by rules for fitting high-quality surface patches obtained from these prior models. We demonstrate the application of this algorithm on several example data sets containing heavy clutter and occlusion.
机译:我们提出了一种基于推理的曲面重构算法,该算法能够在杂乱的场景中识别出感兴趣的对象,并且即使在存在被遮挡的曲面的情况下也可以重构实体模型表示。我们提出的方法结合了预测建模框架,该框架使用一组用户提供的先验知识模型,并将此知识应用于迭代标识和构造过程。我们的方法采用局部到全局的构建过程,并遵循规则来拟合从这些先前模型中获得的高质量表面贴片。我们演示了该算法在包含严重杂波和遮挡的几个示例数据集上的应用。

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