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arxiv: 1706.05999 · v1 · pith:KKV3RZQEnew · submitted 2017-06-19 · 💻 cs.CG

Guided Depth Upsampling for Precise Mapping of Urban Environments

classification 💻 cs.CG
keywords upsamplingapproachdepthguidedmappingmodelregularizationsurfaces
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We present an improved model for MRF-based depth upsampling, guided by image- as well as 3D surface normal features. By exploiting the underlying camera model we define a novel regularization term that implicitly evaluates the planarity of arbitrary oriented surfaces. Our method improves upsampling quality in scenes composed of predominantly planar surfaces, such as urban areas. We use a synthetic dataset to demonstrate that our approach outperforms recent methods that implement distance-based regularization terms. Finally, we validate our approach for mapping applications on our experimental vehicle.

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