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Shape Completion Using Deep Boltzmann Machine

机译:使用深螺栓机器的形状完成

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摘要

Shape completion is an important task in the field of image processing. An alternative method is to capture the shape information and finish the completion by a generative model, such as Deep Boltzmann Machine. With its powerful ability to deal with the distribution of the shapes, it is quite easy to acquire the result by sampling from the model. In this paper, we make use of the hidden activation of the DBM and incorporate it with the convolutional shape features to fit a regression model. We compare the output of the regression model with the incomplete shape feature in order to set a proper and compact mask for sampling from the DBM. The experiment shows that our method can obtain realistic results without any prior information about the incomplete object shape.
机译:形状完成是图像处理领域的重要任务。 另一种方法是捕获形状信息并通过生成模型完成完成,例如深螺栓扬人机。 凭借其强大的处理形状分布的能力,通过从模型中抽样非常容易获取结果。 在本文中,我们利用DBM的隐藏激活,并将其与卷积形状特征合并以适合回归模型。 我们将回归模型的输出与不完整的形状特征进行比较,以便设置用于从DBM采样的适当和紧凑的掩模。 实验表明,我们的方法可以获得现实结果而没有关于不完全物体形状的任何先前信息。

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