Statistical characterization of evaluation strategies for fringe projection systems by means of a model-based noise prediction

Author:

Fischer Marc,Petz Marcus,Tutsch Rainer

Abstract

Abstract. For optical 3-D measurement systems, camera noise is the dominant uncertainty factor when optically cooperative surfaces are measured in a stable and controlled environment. In industrial applications repeated measurements are seldom executed for this kind of measurement system. This leads to statistically suboptimal results in subsequent evaluation steps as the important information about the quality of individual measurement points is lost. In this work it will be shown that this information can be recovered for phase measuring optical systems with a model-based noise prediction. The capability of this approach will be demonstrated exemplarily for a fringe projection system and it will be shown that this method is indeed able to generate an individual estimate for the spatial stochastic deviations resulting from image sensor noise for each measurement point. This provides a valuable tool for a statistical characterization and comparison of different evaluation strategies, which is demonstrated exemplarily for two different triangulation procedures.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Copernicus GmbH

Subject

Electrical and Electronic Engineering,Instrumentation

Reference10 articles.

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3. Fischer, M., Petz, M., and Tutsch, R.: Vorhersage des Phasenrauschens in optischen Messsystemen mit strukturierter Beleuchtung, Tech. Mess., 79, 451–458, https://doi.org/10.1524/teme.2012.0256, 2012.

4. Fischer, M.: Deflektometrie in Transmission – Ein neues Messverfahren zur Erfassung der Geometrie asphärischer refraktiver Optiken, Dissertation, Technische Universität Braunschweig, Schriftenreihe des Instituts für Produktionsmesstechnik, Band 12, Aachen: Shaker, ISBN 978-3844043211, 83–87, 2016.

5. Haskamp, K., Kästner, M., Ohrt, C., and Reithmeier, E.: Estimation of measurement uncertainties using virtual fringe projection technique, Appl. Opt., 51, 1516–1520, https://doi.org/10.1364/AO.51.001516, 2012.

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