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- W974365504 abstract "Using the Manhattan world assumption we propose a new method for global 2 ${!}^{{1}}/{2}$ D geometry estimation of indoor environments from single low quality RGB-D images. This method exploits both color and depth information at the same time and allows to obtain a full representation of an indoor scene from only a single shot of the Kinect sensor. The main novelty of our proposal is that it allows estimating geometry of a whole environment from a single Kinect RGB-D image and does not rely on complex optimization methods. This method performs robustly even in the conditions of low resolution, significant depth distortion, nonlinearity of depth accuracy and presence of noise." @default.
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- W974365504 date "2013-01-01" @default.
- W974365504 modified "2023-09-25" @default.
- W974365504 title "21/2 D Scene Reconstruction of Indoor Scenes from Single RGB-D Images" @default.
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- W974365504 doi "https://doi.org/10.1007/978-3-642-36700-7_22" @default.
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