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A global 3D map-building approach using stereo vision

J. M. Górriz, Francisco Escolano

Year
2004
Citations
35

Abstract

We present a stereo-based approach for building 3D maps. First, the best local alignment between successive point clouds is computed by a fast ego-motion/action-estimation algorithm which relies on an incremental matches filtering process followed by energy minimization. Then, a quasi-random updating algorithm, a kind of multi-view ICP, minimizes the global inconsistency of the map. Such an inconsistency is defined in terms of the sum of local inconsistencies and an additional entropy-based regularization term which is effective in plane-parallel environments. For the sake of efficiency, we assume a flat floor and a fixed stereo camera mounted on the robot. We have successfully tested the approach by performing several indoor mapping experiments.

Keywords

Point cloudArtificial intelligenceComputer visionComputer scienceRegularization (linguistics)Global MapStereopsisEntropy (arrow of time)RobotDepth map

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