Loading [MathJax]/extensions/tex2jax.js

Evaluation of system models for an endoscopic fringe projection system

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autorschaft

Plum Print visual indicator of research metrics
  • Citations
    • Citation Indexes: 17
  • Captures
    • Readers: 5
see details

Details

OriginalspracheEnglisch
Aufsatznummer3407
Seiten (von - bis)239-246
Seitenumfang8
FachzeitschriftMeasurement
Jahrgang73
PublikationsstatusVeröffentlicht - 1 Juni 2015

Abstract

Abstract To be able to perform inline inspection of complex geometries, which exhibit for example undercuts or internal structures, a new endoscopic micro fringe projection system has been developed. It is designed to perform areal measurements for tool inspection inside the limited space of metal forming presses by employing flexible image fibers to couple the measurement system's camera and projector to a compact sensor head. The projector features a laser light source and a digital micro-mirror device to generate high-contrast fringe patterns. To increase the depth of field of the sensor heads, custom gradient-index lenses have been designed as an approximation to the Scheimpflug principle. Challenges arise for both calibration and phase measuring algorithms from the optics, as well as from the reduction in resolution introduced by the fiber bundles. This paper presents an evaluation of two different system models for the endoscopic fringe projection system, which are based on the pinhole camera model and a black box model. An automated calibration process, which gathers the calibration data for two calibration algorithms that are robust to artifacts introduced by the optical path, is demonstrated. Based on a comparison of measurements, differences between the two modeling approaches are discussed. Finally, results of measurements of a demonstrational metal forming tool are shown as an application example.

ASJC Scopus Sachgebiete

Zitieren

Evaluation of system models for an endoscopic fringe projection system. / Matthias, Steffen; Kästner, Markus; Reithmeier, Eduard.
in: Measurement, Jahrgang 73, 3407, 01.06.2015, S. 239-246.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Matthias S, Kästner M, Reithmeier E. Evaluation of system models for an endoscopic fringe projection system. Measurement. 2015 Jun 1;73:239-246. 3407. doi: 10.1016/j.measurement.2015.05.024
Matthias, Steffen ; Kästner, Markus ; Reithmeier, Eduard. / Evaluation of system models for an endoscopic fringe projection system. in: Measurement. 2015 ; Jahrgang 73. S. 239-246.
Download
@article{078fa6915d2e4fa8ae007a4d0a03d7b4,
title = "Evaluation of system models for an endoscopic fringe projection system",
abstract = "Abstract To be able to perform inline inspection of complex geometries, which exhibit for example undercuts or internal structures, a new endoscopic micro fringe projection system has been developed. It is designed to perform areal measurements for tool inspection inside the limited space of metal forming presses by employing flexible image fibers to couple the measurement system's camera and projector to a compact sensor head. The projector features a laser light source and a digital micro-mirror device to generate high-contrast fringe patterns. To increase the depth of field of the sensor heads, custom gradient-index lenses have been designed as an approximation to the Scheimpflug principle. Challenges arise for both calibration and phase measuring algorithms from the optics, as well as from the reduction in resolution introduced by the fiber bundles. This paper presents an evaluation of two different system models for the endoscopic fringe projection system, which are based on the pinhole camera model and a black box model. An automated calibration process, which gathers the calibration data for two calibration algorithms that are robust to artifacts introduced by the optical path, is demonstrated. Based on a comparison of measurements, differences between the two modeling approaches are discussed. Finally, results of measurements of a demonstrational metal forming tool are shown as an application example.",
keywords = "Calibration, Endoscopy, Fringe projection, Inline inspection, Metal forming",
author = "Steffen Matthias and Markus K{\"a}stner and Eduard Reithmeier",
note = "Funding information: The authors would like to thank the German Research Foundation (DFG) for funding the project B6 “Endoscopic geometry inspection” within the Collaborative Research Center (CRC)/ TR 73.",
year = "2015",
month = jun,
day = "1",
doi = "10.1016/j.measurement.2015.05.024",
language = "English",
volume = "73",
pages = "239--246",
journal = "Measurement",
issn = "0263-2241",
publisher = "Elsevier",

}

Download

TY - JOUR

T1 - Evaluation of system models for an endoscopic fringe projection system

AU - Matthias, Steffen

AU - Kästner, Markus

AU - Reithmeier, Eduard

N1 - Funding information: The authors would like to thank the German Research Foundation (DFG) for funding the project B6 “Endoscopic geometry inspection” within the Collaborative Research Center (CRC)/ TR 73.

PY - 2015/6/1

Y1 - 2015/6/1

N2 - Abstract To be able to perform inline inspection of complex geometries, which exhibit for example undercuts or internal structures, a new endoscopic micro fringe projection system has been developed. It is designed to perform areal measurements for tool inspection inside the limited space of metal forming presses by employing flexible image fibers to couple the measurement system's camera and projector to a compact sensor head. The projector features a laser light source and a digital micro-mirror device to generate high-contrast fringe patterns. To increase the depth of field of the sensor heads, custom gradient-index lenses have been designed as an approximation to the Scheimpflug principle. Challenges arise for both calibration and phase measuring algorithms from the optics, as well as from the reduction in resolution introduced by the fiber bundles. This paper presents an evaluation of two different system models for the endoscopic fringe projection system, which are based on the pinhole camera model and a black box model. An automated calibration process, which gathers the calibration data for two calibration algorithms that are robust to artifacts introduced by the optical path, is demonstrated. Based on a comparison of measurements, differences between the two modeling approaches are discussed. Finally, results of measurements of a demonstrational metal forming tool are shown as an application example.

AB - Abstract To be able to perform inline inspection of complex geometries, which exhibit for example undercuts or internal structures, a new endoscopic micro fringe projection system has been developed. It is designed to perform areal measurements for tool inspection inside the limited space of metal forming presses by employing flexible image fibers to couple the measurement system's camera and projector to a compact sensor head. The projector features a laser light source and a digital micro-mirror device to generate high-contrast fringe patterns. To increase the depth of field of the sensor heads, custom gradient-index lenses have been designed as an approximation to the Scheimpflug principle. Challenges arise for both calibration and phase measuring algorithms from the optics, as well as from the reduction in resolution introduced by the fiber bundles. This paper presents an evaluation of two different system models for the endoscopic fringe projection system, which are based on the pinhole camera model and a black box model. An automated calibration process, which gathers the calibration data for two calibration algorithms that are robust to artifacts introduced by the optical path, is demonstrated. Based on a comparison of measurements, differences between the two modeling approaches are discussed. Finally, results of measurements of a demonstrational metal forming tool are shown as an application example.

KW - Calibration

KW - Endoscopy

KW - Fringe projection

KW - Inline inspection

KW - Metal forming

UR - http://www.scopus.com/inward/record.url?scp=84930942913&partnerID=8YFLogxK

U2 - 10.1016/j.measurement.2015.05.024

DO - 10.1016/j.measurement.2015.05.024

M3 - Article

AN - SCOPUS:84930942913

VL - 73

SP - 239

EP - 246

JO - Measurement

JF - Measurement

SN - 0263-2241

M1 - 3407

ER -

Von denselben Autoren