Investigation of the systematic axial measurement error caused by the space variance effect in digital holography

Digital holography (DH) is one of the most promising quantitative phase measurement techniques and has been successfully used in 3D imaging and measurement. One of its attractive advantages is its excellent theoretical axial measurement accuracy of better than 1 nanometer. However, in practice, the...

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Main Authors: Hao, Yan, Liu, Chiyue, long, Jun, Cai, Ping, Qian, Kemao, Asundi, Anand Krishna
Other Authors: School of Computer Science and Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/151315
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1513152021-06-22T04:28:00Z Investigation of the systematic axial measurement error caused by the space variance effect in digital holography Hao, Yan Liu, Chiyue long, Jun Cai, Ping Qian, Kemao Asundi, Anand Krishna School of Computer Science and Engineering School of Mechanical and Aerospace Engineering Engineering::Electrical and electronic engineering Holography Measurement Errors Digital holography (DH) is one of the most promising quantitative phase measurement techniques and has been successfully used in 3D imaging and measurement. One of its attractive advantages is its excellent theoretical axial measurement accuracy of better than 1 nanometer. However, in practice, the axial accuracy has been quoted to be in the range of tens nanometers limited by the axial errors existing in DH system. In order to improve the axial measurement accuracy to approach the theoretical value, it is necessary to identify error sources and then reduce the errors according to their properties. In this paper, the space-variance effect of digital holography system is investigated and demonstrated to be an important systematic axial measurement error (SAME) source, especially for features with high frequency. The properties of the space-variant SAME are investigated through simulations and experiments. The object position, object height, object frequency content and object-CCD distance are found to be related to the space-variant SAME. Careful and appropriate placement of the object according to its features is thus necessary to reduce such SAME in a DH system. Based on the investigation, the guideline to appropriately position an object according to its properties is provided in this work. 2021-06-22T04:27:59Z 2021-06-22T04:27:59Z 2019 Journal Article Hao, Y., Liu, C., long, J., Cai, P., Qian, K. & Asundi, A. K. (2019). Investigation of the systematic axial measurement error caused by the space variance effect in digital holography. Optics and Lasers in Engineering, 112, 16-25. https://dx.doi.org/10.1016/j.optlaseng.2018.06.009 0143-8166 0000-0003-3835-4624 https://hdl.handle.net/10356/151315 10.1016/j.optlaseng.2018.06.009 2-s2.0-85054149034 112 16 25 en Optics and Lasers in Engineering © 2018 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Electrical and electronic engineering
Holography
Measurement Errors
spellingShingle Engineering::Electrical and electronic engineering
Holography
Measurement Errors
Hao, Yan
Liu, Chiyue
long, Jun
Cai, Ping
Qian, Kemao
Asundi, Anand Krishna
Investigation of the systematic axial measurement error caused by the space variance effect in digital holography
description Digital holography (DH) is one of the most promising quantitative phase measurement techniques and has been successfully used in 3D imaging and measurement. One of its attractive advantages is its excellent theoretical axial measurement accuracy of better than 1 nanometer. However, in practice, the axial accuracy has been quoted to be in the range of tens nanometers limited by the axial errors existing in DH system. In order to improve the axial measurement accuracy to approach the theoretical value, it is necessary to identify error sources and then reduce the errors according to their properties. In this paper, the space-variance effect of digital holography system is investigated and demonstrated to be an important systematic axial measurement error (SAME) source, especially for features with high frequency. The properties of the space-variant SAME are investigated through simulations and experiments. The object position, object height, object frequency content and object-CCD distance are found to be related to the space-variant SAME. Careful and appropriate placement of the object according to its features is thus necessary to reduce such SAME in a DH system. Based on the investigation, the guideline to appropriately position an object according to its properties is provided in this work.
author2 School of Computer Science and Engineering
author_facet School of Computer Science and Engineering
Hao, Yan
Liu, Chiyue
long, Jun
Cai, Ping
Qian, Kemao
Asundi, Anand Krishna
format Article
author Hao, Yan
Liu, Chiyue
long, Jun
Cai, Ping
Qian, Kemao
Asundi, Anand Krishna
author_sort Hao, Yan
title Investigation of the systematic axial measurement error caused by the space variance effect in digital holography
title_short Investigation of the systematic axial measurement error caused by the space variance effect in digital holography
title_full Investigation of the systematic axial measurement error caused by the space variance effect in digital holography
title_fullStr Investigation of the systematic axial measurement error caused by the space variance effect in digital holography
title_full_unstemmed Investigation of the systematic axial measurement error caused by the space variance effect in digital holography
title_sort investigation of the systematic axial measurement error caused by the space variance effect in digital holography
publishDate 2021
url https://hdl.handle.net/10356/151315
_version_ 1703971190294446080