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Jason Stafford Dissertation (FinalFinalFinal)-1- final format approved LW.pdf (3.76 MB)
ETD Abstract Container
Abstract Header
Range Compressed Holographic Aperture Ladar
Author Info
Stafford, Jason W.
Permalink:
http://rave.ohiolink.edu/etdc/view?acc_num=dayton1480681728748929
Abstract Details
Year and Degree
2016, Doctor of Philosophy (Ph.D.), University of Dayton, Electro-Optics.
Abstract
3-D holographic ladar uses digital holography with frequency diversity to allow the ability to resolve targets in range. A key challenge is that since individual frequency samples are not recorded simultaneously, differential phase aberrations may exist between them making it difficult to achieve range compression. Specific steps for this modality are described so that phase gradient algorithms (PGA) can be applied to 3-D holographic ladar data for phase corrections across multiple temporal frequency samples. Substantial improvement of range compression is demonstrated in a laboratory experiment where our modified PGA technique is applied. Additionally, the PGA estimator is demonstrated to be efficient for this application and the maximum entropy saturation behavior of the estimator is analytically described. Simultaneous range-compression and aperture synthesis is experimentally demonstrated with a stepped linear frequency modulated waveform and holographic aperture ladar. The resultant 3D data has high resolution in the aperture synthesis dimension and is recorded using a conventional low bandwidth focal plane array. Individual cross-range field segments are coherently combined using data driven registration, while range-compression is performed without the benefit of a coherent waveform. Furthermore, a synergistically enhanced ability to discriminate image objects due to the coaction of range-compression and aperture synthesis is demonstrated. Two objects are then precisely located in 3D space, despite being unresolved in two directions, due to resolution gains in both the range and azimuth cross-range dimensions.
Committee
Bradley Duncan, Ph.D. (Committee Chair)
David Rabb, Ph.D. (Advisor)
Joseph Haus, Ph.D. (Advisor)
Matthew Dierking, Ph.D. (Advisor)
Pages
123 p.
Subject Headings
Electrical Engineering
;
Optics
;
Physics
;
Remote Sensing
Keywords
Synthetic aperture Ladar, aperture synthesis, digital holography, 3D, range compression, pulse compression, PGA
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Citations
Stafford, J. W. (2016).
Range Compressed Holographic Aperture Ladar
[Doctoral dissertation, University of Dayton]. OhioLINK Electronic Theses and Dissertations Center. http://rave.ohiolink.edu/etdc/view?acc_num=dayton1480681728748929
APA Style (7th edition)
Stafford, Jason.
Range Compressed Holographic Aperture Ladar.
2016. University of Dayton, Doctoral dissertation.
OhioLINK Electronic Theses and Dissertations Center
, http://rave.ohiolink.edu/etdc/view?acc_num=dayton1480681728748929.
MLA Style (8th edition)
Stafford, Jason. "Range Compressed Holographic Aperture Ladar." Doctoral dissertation, University of Dayton, 2016. http://rave.ohiolink.edu/etdc/view?acc_num=dayton1480681728748929
Chicago Manual of Style (17th edition)
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Document number:
dayton1480681728748929
Download Count:
1,198
Copyright Info
© 2016, all rights reserved.
This open access ETD is published by University of Dayton and OhioLINK.