Details
Original language | English |
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Title of host publication | Optical Measurement Systems for Industrial Inspection XIII |
Editors | Peter Lehmann |
Publisher | SPIE |
ISBN (electronic) | 9781510664456 |
Publication status | Published - 15 Aug 2023 |
Event | SPIE Optical Measurement Systems for Industrial Inspection XIII - München, Germany Duration: 26 Jun 2023 → 29 Jun 2023 Conference number: 12618 |
Publication series
Name | Proceedings of SPIE - The International Society for Optical Engineering |
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Volume | 12618 |
ISSN (Print) | 0277-786X |
ISSN (electronic) | 1996-756X |
Abstract
Keywords
- magnification factor identification, reconstruction uncertainties, telecentric fringe projection
ASJC Scopus subject areas
- Materials Science(all)
- Electronic, Optical and Magnetic Materials
- Physics and Astronomy(all)
- Condensed Matter Physics
- Mathematics(all)
- Applied Mathematics
- Engineering(all)
- Electrical and Electronic Engineering
- Computer Science(all)
- Computer Science Applications
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- BibTeX
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Optical Measurement Systems for Industrial Inspection XIII. ed. / Peter Lehmann. SPIE, 2023. 126180I (Proceedings of SPIE - The International Society for Optical Engineering; Vol. 12618).
Research output: Chapter in book/report/conference proceeding › Conference contribution › Research
}
TY - GEN
T1 - Identification and correction of magnification factor deviations of a telecentric fringe projection system
AU - Kern, Pascal
AU - Hinz, Lennart
AU - Kästner, Markus
AU - Reithmeier, Eduard
N1 - Conference code: 12618
PY - 2023/8/15
Y1 - 2023/8/15
N2 - For high-precision measurements through a inspection window, a 3D scanner based on fringe projection profilometry is being researched. The 3D scanner combines a micromirror array projector and two telecentric cameras. The affine camera model is commonly used to calibrate telecentric imaging systems, in which a single magnification factor is introduced and optimized for each lens. However, 3D reconstructions based on this model indicated that reconstruction uncertainties in the peripheral areas of the measuring volume are significanty affected by a possible inspection window. These uncertainties may occur due to the model-based determination of the magnification factor and the reduction in parallelism of the visible rays within the telecentric lens that can occur at larger working distances. To address this issue, a new method for calculating and identifying the influence of the magnification factor on the 3D point scaling for telecentric measuring systems is proposed. First, the measuring system is calibrated using an affine camera model. Then, the reconstructed 3D target points are used to estimate the magnification factor locally and assessing the influence of an inspection window in the optical path. In order to further investigate the influence of the inspection window on the imaging performance of the cameras the focus is estimated locally within the measuring volume. Initial measurements using these methods reveal that scale variations and the reduction of focus can be quantified locally and a model based correction as well as the removal of poorly reconstructed points is feasible.
AB - For high-precision measurements through a inspection window, a 3D scanner based on fringe projection profilometry is being researched. The 3D scanner combines a micromirror array projector and two telecentric cameras. The affine camera model is commonly used to calibrate telecentric imaging systems, in which a single magnification factor is introduced and optimized for each lens. However, 3D reconstructions based on this model indicated that reconstruction uncertainties in the peripheral areas of the measuring volume are significanty affected by a possible inspection window. These uncertainties may occur due to the model-based determination of the magnification factor and the reduction in parallelism of the visible rays within the telecentric lens that can occur at larger working distances. To address this issue, a new method for calculating and identifying the influence of the magnification factor on the 3D point scaling for telecentric measuring systems is proposed. First, the measuring system is calibrated using an affine camera model. Then, the reconstructed 3D target points are used to estimate the magnification factor locally and assessing the influence of an inspection window in the optical path. In order to further investigate the influence of the inspection window on the imaging performance of the cameras the focus is estimated locally within the measuring volume. Initial measurements using these methods reveal that scale variations and the reduction of focus can be quantified locally and a model based correction as well as the removal of poorly reconstructed points is feasible.
KW - magnification factor identification
KW - reconstruction uncertainties
KW - telecentric fringe projection
UR - http://www.scopus.com/inward/record.url?scp=85172676840&partnerID=8YFLogxK
U2 - 10.1117/12.2673617
DO - 10.1117/12.2673617
M3 - Conference contribution
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Optical Measurement Systems for Industrial Inspection XIII
A2 - Lehmann, Peter
PB - SPIE
T2 - SPIE Optical Measurement Systems for Industrial Inspection XIII
Y2 - 26 June 2023 through 29 June 2023
ER -