MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRY
Systematic errors may result from the adoption of an incomplete functional model that is not able to properly incorporate all the effects involved in the image formation process. These errors very likely appear as systematic residual patterns in image observations and produce deformations of the pho...
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Copernicus Publications
2020-08-01
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Series: | The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences |
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doaj-7163b1d5bab64b609c0b614a668172462020-11-25T03:39:14ZengCopernicus PublicationsThe International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences1682-17502194-90342020-08-01XLIII-B2-202097798410.5194/isprs-archives-XLIII-B2-2020-977-2020MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRYF. Menna0E. Nocerino1S. Ural2A. Gruen33D Optical Metrology (3DOM) unit, Bruno Kessler Foundation (FBK), Trento, ItalyLIS UMR 7020, Aix-Marseille Université, CNRS, ENSAM, Université De Toulon, Marseille, FranceInstitute of Theoretical Physics, ETH Zurich, Zurich, SwitzerlandInstitute of Theoretical Physics, ETH Zurich, Zurich, SwitzerlandSystematic errors may result from the adoption of an incomplete functional model that is not able to properly incorporate all the effects involved in the image formation process. These errors very likely appear as systematic residual patterns in image observations and produce deformations of the photogrammetric model in object space. The Brown/Beyer model of self-calibration is often adopted in underwater photogrammetry, although it does not take into account the refraction introduced by the passage of the optical ray through different media, i.e. air and water. This reduces the potential accuracy of photogrammetry underwater. In this work, we investigate through simulations the depth-dependent systematic errors introduced by unmodelled refraction effects when both flat and dome ports are used. The importance of camera geometry to reduce the deformation in the object space is analyzed and mitigation measures to reduce the systematic patterns in image observations are investigated. It is shown how, for flat ports, the use of a stochastic approach, consisting in radial weighting of image observations, improves the accuracy in object space up to 50%. Iterative look-up table corrections are instead adopted to reduce the evident systematic residual patterns in the case of dome ports.https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLIII-B2-2020/977/2020/isprs-archives-XLIII-B2-2020-977-2020.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
F. Menna E. Nocerino S. Ural A. Gruen |
spellingShingle |
F. Menna E. Nocerino S. Ural A. Gruen MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRY The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences |
author_facet |
F. Menna E. Nocerino S. Ural A. Gruen |
author_sort |
F. Menna |
title |
MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRY |
title_short |
MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRY |
title_full |
MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRY |
title_fullStr |
MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRY |
title_full_unstemmed |
MITIGATING IMAGE RESIDUALS SYSTEMATIC PATTERNS IN UNDERWATER PHOTOGRAMMETRY |
title_sort |
mitigating image residuals systematic patterns in underwater photogrammetry |
publisher |
Copernicus Publications |
series |
The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences |
issn |
1682-1750 2194-9034 |
publishDate |
2020-08-01 |
description |
Systematic errors may result from the adoption of an incomplete functional model that is not able to properly incorporate all the effects involved in the image formation process. These errors very likely appear as systematic residual patterns in image observations and produce deformations of the photogrammetric model in object space. The Brown/Beyer model of self-calibration is often adopted in underwater photogrammetry, although it does not take into account the refraction introduced by the passage of the optical ray through different media, i.e. air and water. This reduces the potential accuracy of photogrammetry underwater. In this work, we investigate through simulations the depth-dependent systematic errors introduced by unmodelled refraction effects when both flat and dome ports are used. The importance of camera geometry to reduce the deformation in the object space is analyzed and mitigation measures to reduce the systematic patterns in image observations are investigated. It is shown how, for flat ports, the use of a stochastic approach, consisting in radial weighting of image observations, improves the accuracy in object space up to 50%. Iterative look-up table corrections are instead adopted to reduce the evident systematic residual patterns in the case of dome ports. |
url |
https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLIII-B2-2020/977/2020/isprs-archives-XLIII-B2-2020-977-2020.pdf |
work_keys_str_mv |
AT fmenna mitigatingimageresidualssystematicpatternsinunderwaterphotogrammetry AT enocerino mitigatingimageresidualssystematicpatternsinunderwaterphotogrammetry AT sural mitigatingimageresidualssystematicpatternsinunderwaterphotogrammetry AT agruen mitigatingimageresidualssystematicpatternsinunderwaterphotogrammetry |
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1724540068693016576 |