Twin-image problems in optical scanning holography

Real-time optical scanning holography, which was first suggested by Poon and Korpel, was originally analyzed by Poon using an optical transfer function approach. The recording of holographic information using the optical heterodyne scanning technique has several advantages over conventional nonscann...

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Main Author: Doh, Kyu-Bong
Other Authors: Electrical Engineering
Format: Others
Language:en
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/39169
http://scholar.lib.vt.edu/theses/available/etd-08142006-110130/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-391692021-12-04T05:44:18Z Twin-image problems in optical scanning holography Doh, Kyu-Bong Electrical Engineering Poon, Ting-Chung Indebetouw, Guy J. Besieris, Ioannis M. Safaai-Jazi, Ahmad Abbott, A. Lynn Optical scanning holography twin-image Fresnel zone pattern LD5655.V856 1996.D64 Real-time optical scanning holography, which was first suggested by Poon and Korpel, was originally analyzed by Poon using an optical transfer function approach. The recording of holographic information using the optical heterodyne scanning technique has several advantages over conventional nonscanning optical holographic recording methods. We first review a new 3-D imaging technique called optical scanning holography (OSH) by acousto-optic two-pupil synthesis. We then derive 3-D holographic magnification, using three points configured as a 3-D object. We demonstrate three-dimensional imaging capability of OSH by holographically recording two planar objects at different depths and reconstructing the hologram digitally and optically using an electron-beam-addressed spatial light modulator (EBSLM). The second part of this dissertation investigates twin-image noise in optical scanning holography. In optical scanning holography, holographic information of an object is generated by 2-D active optical scanning. The optical scanning beam can be a time-dependent Gaussian apodized Fresnel zone pattern. We derive the resolution achievable with such a scanning beam. We then discuss the use of a larger and a smaller Fresnel zone pattern for holographic recording to investigate twin-image noise which results in the unwanted image in the reconstructed field. Finally, we discuss a novel multiplexing technique to solve the twin image problem in optical scanning holography without the use of a spatial carrier as commonly used in conventional off-axis holography. The technique involves simultaneously acquiring a sine and cosine Fresnel zone-lens pattern coded images by optical scanning. A complex addition of the two coded images then will be performed and decoded to give a twin-image rejection reconstruction. Ph. D. 2014-03-14T21:17:46Z 2014-03-14T21:17:46Z 1996-12-12 2006-08-14 2006-08-14 2006-08-14 Dissertation Text etd-08142006-110130 http://hdl.handle.net/10919/39169 http://scholar.lib.vt.edu/theses/available/etd-08142006-110130/ en OCLC# 36678682 LD5655.V856_1996.D64.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ xi, 124 leaves BTD application/pdf application/pdf Virginia Tech
collection NDLTD
language en
format Others
sources NDLTD
topic Optical scanning holography
twin-image
Fresnel zone pattern
LD5655.V856 1996.D64
spellingShingle Optical scanning holography
twin-image
Fresnel zone pattern
LD5655.V856 1996.D64
Doh, Kyu-Bong
Twin-image problems in optical scanning holography
description Real-time optical scanning holography, which was first suggested by Poon and Korpel, was originally analyzed by Poon using an optical transfer function approach. The recording of holographic information using the optical heterodyne scanning technique has several advantages over conventional nonscanning optical holographic recording methods. We first review a new 3-D imaging technique called optical scanning holography (OSH) by acousto-optic two-pupil synthesis. We then derive 3-D holographic magnification, using three points configured as a 3-D object. We demonstrate three-dimensional imaging capability of OSH by holographically recording two planar objects at different depths and reconstructing the hologram digitally and optically using an electron-beam-addressed spatial light modulator (EBSLM). The second part of this dissertation investigates twin-image noise in optical scanning holography. In optical scanning holography, holographic information of an object is generated by 2-D active optical scanning. The optical scanning beam can be a time-dependent Gaussian apodized Fresnel zone pattern. We derive the resolution achievable with such a scanning beam. We then discuss the use of a larger and a smaller Fresnel zone pattern for holographic recording to investigate twin-image noise which results in the unwanted image in the reconstructed field. Finally, we discuss a novel multiplexing technique to solve the twin image problem in optical scanning holography without the use of a spatial carrier as commonly used in conventional off-axis holography. The technique involves simultaneously acquiring a sine and cosine Fresnel zone-lens pattern coded images by optical scanning. A complex addition of the two coded images then will be performed and decoded to give a twin-image rejection reconstruction. === Ph. D.
author2 Electrical Engineering
author_facet Electrical Engineering
Doh, Kyu-Bong
author Doh, Kyu-Bong
author_sort Doh, Kyu-Bong
title Twin-image problems in optical scanning holography
title_short Twin-image problems in optical scanning holography
title_full Twin-image problems in optical scanning holography
title_fullStr Twin-image problems in optical scanning holography
title_full_unstemmed Twin-image problems in optical scanning holography
title_sort twin-image problems in optical scanning holography
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/39169
http://scholar.lib.vt.edu/theses/available/etd-08142006-110130/
work_keys_str_mv AT dohkyubong twinimageproblemsinopticalscanningholography
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