Cloud photogrammetry with dense stereo for fisheye cameras

Author:

Beekmans Christoph,Schneider Johannes,Läbe Thomas,Lennefer Martin,Stachniss Cyrill,Simmer ClemensORCID

Abstract

Abstract. We present a novel approach for dense 3-D cloud reconstruction above an area of 10 × 10 km2 using two hemispheric sky imagers with fisheye lenses in a stereo setup. We examine an epipolar rectification model designed for fisheye cameras, which allows the use of efficient out-of-the-box dense matching algorithms designed for classical pinhole-type cameras to search for correspondence information at every pixel. The resulting dense point cloud allows to recover a detailed and more complete cloud morphology compared to previous approaches that employed sparse feature-based stereo or assumed geometric constraints on the cloud field. Our approach is very efficient and can be fully automated. From the obtained 3-D shapes, cloud dynamics, size, motion, type and spacing can be derived, and used for radiation closure under cloudy conditions, for example. Fisheye lenses follow a different projection function than classical pinhole-type cameras and provide a large field of view with a single image. However, the computation of dense 3-D information is more complicated and standard implementations for dense 3-D stereo reconstruction cannot be easily applied. Together with an appropriate camera calibration, which includes internal camera geometry, global position and orientation of the stereo camera pair, we use the correspondence information from the stereo matching for dense 3-D stereo reconstruction of clouds located around the cameras. We implement and evaluate the proposed approach using real world data and present two case studies. In the first case, we validate the quality and accuracy of the method by comparing the stereo reconstruction of a stratocumulus layer with reflectivity observations measured by a cloud radar and the cloud-base height estimated from a Lidar-ceilometer. The second case analyzes a rapid cumulus evolution in the presence of strong wind shear.

Funder

Bundesministerium für Bildung und Forschung

Publisher

Copernicus GmbH

Subject

Atmospheric Science

Reference34 articles.

1. Abraham, S. and Förstner, W.: Fish-eye-stereo calibration and epipolar rectification, ISPRS J. Photogramm., 59, 278–288, 2005.

2. Abraham, S. and Hau, T.: Towards Autonomous High-Precision Calibration of Digital Cameras, in: Proc. of SPIE Videometrics, 25 July–1 August 1997, San Diego, CA, USA, 82–93, 1997.

3. Allmen, M. C. and Kegelmeyer, W. P.: The Computation of Cloud-Base Height from Paired Whole-Sky Imaging Cameras, J. Atmos. Ocean. Tech., 1, 97–113, 1996.

4. Bakstein, H. and Pajdla, T.: Calibration of a fish eye lens with field of view larger than 180°, in: Proc. of the Computer Vision Winter Workshop (CVWW), 4–7 February 2002, Bad Aussee, Austria, 276–285, 2002.

5. Blender Foundation: Blender, available at: https://www.blender.org/, last access: March 2016.

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