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July 27, 2005107 citations

Modelling Dynamic Scenes by Registering Multi-View Image Sequences

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JPJean-Philippe PonsRKRenaud KerivenOFOlivier Faugeras

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Abstract

In this paper, we present a new variational method for multi-view stereovision and non-rigid three-dimensional motion estimation from multiple video sequences. Our method minimizes the prediction error of the shape and motion estimates. Both problems then translate into a generic image registration task. The latter is entrusted to a similarity measure chosen depending on imaging conditions and scene properties. In particular, our method can be made robust to appearance changes due to non-Lambertian materials and illumination changes. It results in a simpler, more flexible, and more efficient implementation than existing deformable surface approaches. The computation time on large datasets does not exceed thirty minutes. Moreover, our method is compliant with a hardware implementation with graphics processor units. Our stereovision algorithm yields very good results on a variety of datasets including specularities and translucency. We have successfully tested our scene flow algorithm on a very challenging multi-view video sequence of a non-rigid scene.

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Cite This Study

Pons et al. (2005) studied this question.

synapsesocial.com/papers/6a090fd1a2bc65e38873c485https://doi.org/10.1109/cvpr.2005.227
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