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A RESEARCH ON EFFECTS OF DIFFERENT SCANNING RESOLUTIONS DEPENDING ON THE NUMBER OF TARGET USED IN TERRESTRIAL LASER SCANNING

Gumus, Kutalmis

First published: 2016-06-28https://doi.org/10.5593/sgem2016/b22/s10.100View metrics

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Title
A RESEARCH ON EFFECTS OF DIFFERENT SCANNING RESOLUTIONS DEPENDING ON THE NUMBER OF TARGET USED IN TERRESTRIAL LASER SCANNING
Authors
Gumus, Kutalmis
Proceedings
SGEM International Multidisciplinary Scientific GeoConference EXPO Proceedings; 16th International Multidisciplinary Scientific GeoConference SGEM2016, Informatics, Geoinformatics and Remote Sensing
Publisher
Stef92 Technology
Year
2016
Pages
783-790
ISSN
1314-2704
ISBN
978-619-7105-59-9
Language
en
Publication type
Conference Paper
References28
  1. Ready J.F., Industrial applications of lasers, Academic Press, New York – San Francisco –London, 1978.

  2. Hovanessian S.A., Introduction to sensor systems, Artech House, Norwood, MA, USA, 1988.

  3. Jelalian A.V., Laser Radar Systems, Artech House, Boston – London, 1992.

  4. Marshall G.F. (ed), Laser beam scanning: opto-mechanical devices, systems, and data storage optics. Marcel Dekker, New York, 1985.

  5. Reshetyuk, Y., Investigation and calibration of pulsed time-of-flight terrestrial laser scanne rs”, Licentiate thesis in Geodesy Royal Institute of Technology (KTH) Department of Transport and Economics Division of Geodesy, 2006.

  6. Hebert, M., and Krotkov, E., 3D Measurements From Imaging Laser Radars: How Good Are They , Image And Vision Computing, Vol. 10, No. 3, Pp. 170 – 178, 1992.

  7. Hancock, J.A., Laser Intensity-Based Obstacle Detection and Tracking , Doctoral Dissertation, Technical Report CMU- RI-TR-99-01, Robotics Institute, Carnegie Mellon University, 1999. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org 16th International Multidisciplinary Scientific GeoConference SGEM 2016

  8. Koskinen, M., Kostamovaara, J. And Myllylä, R., Comparison of the Continuous Wave and Pulsed Time- Of-Flight Laser Range Finding Techniques, SPIE Proceedings, Vol. 1614,1991.

  9. Kostamovaara, J., Määttä, K., And Myllylä, R., Pulsed Time -of-Flight Laser Range-Finding Techniques for Industrial Applications, SPIE Proceedings, Vol. 1614, Pp. 283 – 295,1991.

  10. Määttä, K., Kostamovaara, J. And Myllylä, R., Profiling of Hot Surfaces by Pulsed Time-of Flight Laser Range Finder Techniques, Applied Optics, Vol. 32, No. 27, Pp. 5324 – 5347, 1993.

  11. Wehr, A. Ve Lohr, U., Airborne Laser Scanning – An Introduction and Overview, ISPRS Journal of Photogrammetry and Remote Sensing, Vol. 54, Pp. 68 – 82, 1999.

  12. Baltsavias, E.P., A Comparison Between Photogrammetry and Laser Scanning, ISPRS Journal of Photogrammetry and Remote Sensing, Vol. 54, Pp. 83 – 94, 1999.

  13. Bryan, P., An Addendum To The Metric Survey Specifications For English Heritage - The Collection And Archiving Of Point Cloud Data Obtained By Terrestrial Laser Scanning Or Other Methods, Version – 06/11/2006 09:12:00, English Heritage, 2006.

  14. Gumus, K., The Investigation of Accuracy and Usability in the Engineering Structures of Terrestrial Laser Scanners: The Case Study of Oymapinar Dam, Doctoral thesis in Department of Geomatics Engineering, Yildiz technica l University, İstanbul/Turkey, February 2014. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

  15. Ready J.F., Industrial applications of lasers, Academic Press, New York – San Francisco –London, 1978.

  16. Hovanessian S.A., Introduction to sensor systems, Artech House, Norwood, MA, USA, 1988.

  17. Jelalian A.V., Laser Radar Systems, Artech House, Boston – London, 1992.

  18. Marshall G.F. (ed), Laser beam scanning: opto-mechanical devices, systems, and data storage optics. Marcel Dekker, New York, 1985.

  19. Reshetyuk, Y., Investigation and calibration of pulsed time-of-flight terrestrial laser scanne rs”, Licentiate thesis in Geodesy Royal Institute of Technology (KTH) Department of Transport and Economics Division of Geodesy, 2006.

  20. Hebert, M., and Krotkov, E., 3D Measurements From Imaging Laser Radars: How Good Are They , Image And Vision Computing, Vol. 10, No. 3, Pp. 170 – 178, 1992.

  21. Hancock, J.A., Laser Intensity-Based Obstacle Detection and Tracking , Doctoral Dissertation, Technical Report CMU- RI-TR-99-01, Robotics Institute, Carnegie Mellon University, 1999. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org 16th International Multidisciplinary Scientific GeoConference SGEM 2016

  22. Koskinen, M., Kostamovaara, J. And Myllylä, R., Comparison of the Continuous Wave and Pulsed Time- Of-Flight Laser Range Finding Techniques, SPIE Proceedings, Vol. 1614,1991.

  23. Kostamovaara, J., Määttä, K., And Myllylä, R., Pulsed Time -of-Flight Laser Range-Finding Techniques for Industrial Applications, SPIE Proceedings, Vol. 1614, Pp. 283 – 295,1991.

  24. Määttä, K., Kostamovaara, J. And Myllylä, R., Profiling of Hot Surfaces by Pulsed Time-of Flight Laser Range Finder Techniques, Applied Optics, Vol. 32, No. 27, Pp. 5324 – 5347, 1993.

  25. Wehr, A. Ve Lohr, U., Airborne Laser Scanning – An Introduction and Overview, ISPRS Journal of Photogrammetry and Remote Sensing, Vol. 54, Pp. 68 – 82, 1999.

  26. Baltsavias, E.P., A Comparison Between Photogrammetry and Laser Scanning, ISPRS Journal of Photogrammetry and Remote Sensing, Vol. 54, Pp. 83 – 94, 1999.

  27. Bryan, P., An Addendum To The Metric Survey Specifications For English Heritage - The Collection And Archiving Of Point Cloud Data Obtained By Terrestrial Laser Scanning Or Other Methods, Version – 06/11/2006 09:12:00, English Heritage, 2006.

  28. Gumus, K., The Investigation of Accuracy and Usability in the Engineering Structures of Terrestrial Laser Scanners: The Case Study of Oymapinar Dam, Doctoral thesis in Department of Geomatics Engineering, Yildiz technica l University, İstanbul/Turkey, February 2014. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

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