Variable resolution direction finding using the robust symmetrical number system

A digital implementation of a phase sampling interferometer antenna system based on the Robust Symmetrical Number System (RSNS) is built using commercial-off-the-shelf (COTS) items. The RSNS-based direction finding (DF) system uses short baselines to achieve a high resolution DF capability in a phy...

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Main Author: Lee, Anthony Kok Long
Other Authors: Pace, Phillip E.
Format: Others
Published: Monterey, California. Naval Postgraduate School 2012
Subjects:
Online Access:http://hdl.handle.net/10945/2456
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spelling ndltd-nps.edu-oai-calhoun.nps.edu-10945-24562017-05-24T16:07:47Z Variable resolution direction finding using the robust symmetrical number system Lee, Anthony Kok Long Pace, Phillip E. Jenn, David C. Walters, Donald L. Naval Postgraduate School (U.S.). Department of Physics Physics A digital implementation of a phase sampling interferometer antenna system based on the Robust Symmetrical Number System (RSNS) is built using commercial-off-the-shelf (COTS) items. The RSNS-based direction finding (DF) system uses short baselines to achieve a high resolution DF capability in a physically compact system for use as stand-in sensors on unmanned aerial vehicles. The RSNS inherent integer Gray code property minimizes the possible encoding errors and adds a robustness to the accuracy of the estimated Angle of Arrival (AOA). A digital architecture using quadrature demodulators and real-time controllers provide grreater flexibility for signal processing and allows for the implementation of a new virtual spacing algorithm. The virtual spacing concept changes the RSNS moduli values to implement a virtual antenna spacing without having to physically change the antenna element spacing. This enables higher resolution DF in circumstances where the Signal-to-Noise Ratio is high enough to provide error free coding of the AOA. Two four element, digital 3-channel interferometer prototype systems were constructed and tested in the NPS anechoic chamber. The first antenna array is designed using pairwise relatively prime (PRP) moduli. When an extension of the virtual spacing concept for application to N-channel systems was successfully resolved, a second 3-channel array was built using non-PRP moduli for evaluating the performance of the virtual spacing concept. The simulated and experimental results, hardware implementation and testing procedures are presented in this thesis. Results for the first array show that the RSNS-based DF system is able to provide 0.7 degree RMS resolution with a baseline of 66 cm. For the second virtual spacing array, the short physical baseline of 14 cm was sensitive to noise and antenna spacing errors. 2012-03-14T17:35:15Z 2012-03-14T17:35:15Z 2006-12 Thesis http://hdl.handle.net/10945/2456 80984182 This publication is a work of the U.S. Government as defined in Title 17, United States Code, Section 101. As such, it is in the public domain, and under the provisions of Title 17, United States Code, Section 105, may not be copyrighted. xvi, 101 p. : ill. ; application/pdf Monterey, California. Naval Postgraduate School
collection NDLTD
format Others
sources NDLTD
topic Physics
spellingShingle Physics
Lee, Anthony Kok Long
Variable resolution direction finding using the robust symmetrical number system
description A digital implementation of a phase sampling interferometer antenna system based on the Robust Symmetrical Number System (RSNS) is built using commercial-off-the-shelf (COTS) items. The RSNS-based direction finding (DF) system uses short baselines to achieve a high resolution DF capability in a physically compact system for use as stand-in sensors on unmanned aerial vehicles. The RSNS inherent integer Gray code property minimizes the possible encoding errors and adds a robustness to the accuracy of the estimated Angle of Arrival (AOA). A digital architecture using quadrature demodulators and real-time controllers provide grreater flexibility for signal processing and allows for the implementation of a new virtual spacing algorithm. The virtual spacing concept changes the RSNS moduli values to implement a virtual antenna spacing without having to physically change the antenna element spacing. This enables higher resolution DF in circumstances where the Signal-to-Noise Ratio is high enough to provide error free coding of the AOA. Two four element, digital 3-channel interferometer prototype systems were constructed and tested in the NPS anechoic chamber. The first antenna array is designed using pairwise relatively prime (PRP) moduli. When an extension of the virtual spacing concept for application to N-channel systems was successfully resolved, a second 3-channel array was built using non-PRP moduli for evaluating the performance of the virtual spacing concept. The simulated and experimental results, hardware implementation and testing procedures are presented in this thesis. Results for the first array show that the RSNS-based DF system is able to provide 0.7 degree RMS resolution with a baseline of 66 cm. For the second virtual spacing array, the short physical baseline of 14 cm was sensitive to noise and antenna spacing errors.
author2 Pace, Phillip E.
author_facet Pace, Phillip E.
Lee, Anthony Kok Long
author Lee, Anthony Kok Long
author_sort Lee, Anthony Kok Long
title Variable resolution direction finding using the robust symmetrical number system
title_short Variable resolution direction finding using the robust symmetrical number system
title_full Variable resolution direction finding using the robust symmetrical number system
title_fullStr Variable resolution direction finding using the robust symmetrical number system
title_full_unstemmed Variable resolution direction finding using the robust symmetrical number system
title_sort variable resolution direction finding using the robust symmetrical number system
publisher Monterey, California. Naval Postgraduate School
publishDate 2012
url http://hdl.handle.net/10945/2456
work_keys_str_mv AT leeanthonykoklong variableresolutiondirectionfindingusingtherobustsymmetricalnumbersystem
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