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dc.contributor.authorKurdzo, James M.
dc.contributor.authorCho, John Y
dc.contributor.authorCheong, Boon Leng
dc.contributor.authorPalmer, Robert D.
dc.date.accessioned2019-12-30T23:24:27Z
dc.date.available2019-12-30T23:24:27Z
dc.date.issued2019-09
dc.date.submitted2019-04
dc.identifier.isbn9781728116792
dc.identifier.issn2375-5318
dc.identifier.urihttps://hdl.handle.net/1721.1/123328
dc.description.abstractNonlinear frequency modulated (NLFM) pulse compression waveforms have become a mainstream methodology for radars across multiple sectors and missions, including weather observation, target tracking, and target detection. NLFM affords the ability to generate a low-sidelobe autocorrelation function and matched filter while avoiding aggressive amplitude modulation, resulting in more power incident on the target. This capability can lead to significantly lower system design costs due to the possibility of sensitivity gains on the order of 3 dB or more compared with traditional, amplitude-modulated linear frequency modulated (LFM) waveforms. Generation of an optimal NLFM waveform, however, can be an arduous task, and may involve complex optimization and non-closed-form solutions. For a multi-mission or cognitive radar, which may utilize a wide combination of frequencies, pulse lengths, and amplitude modulations (among other factors), this could lead to an extremely large waveform table for selection. This paper takes a neural network approach to this problem by optimizing a set of over 100 waveforms spanning a wide space and using the results to interpolate the waveform possibilities to a higher resolution. A modified form of a previous NLFM method is combined with a four-hidden-layer neural network to show the integrated and peak range sidelobes of the generated waveforms across the model training space. The results are applicable to multi-mission and cognitive radars that need precise waveform specifications in rapid succession. The expected waveform generation times are addressed and quantified, and the potential applicability to multi-mission and cognitive radars is discussed.en_US
dc.publisherInstitute of Electrical and Electronics Engineers (IEEE)en_US
dc.relation.isversionofhttp://dx.doi.org/10.1109/radar.2019.8835803en_US
dc.rightsCreative Commons Attribution-Noncommercial-Share Alikeen_US
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/en_US
dc.sourceJohn Choen_US
dc.titleA Neural Network Approach for Waveform Generation and Selection with Multi-Mission Radaren_US
dc.typeArticleen_US
dc.identifier.citationKurdzo, James M. et al. "A Neural Network Approach for Waveform Generation and Selection with Multi-Mission Radar." IEEE Radar Conference (RadarConf), April 2019, Boston, Massachusetts, USA, Institute of Electrical and Electronics Engineers (IEEE), September 2019 © 2019 IEEEen_US
dc.contributor.departmentLincoln Laboratoryen_US
dc.relation.journalIEEE Radar Conference (RadarConf)en_US
dc.eprint.versionAuthor's final manuscripten_US
dc.type.urihttp://purl.org/eprint/type/ConferencePaperen_US
eprint.statushttp://purl.org/eprint/status/NonPeerRevieweden_US
dc.identifier.doi10.1109/RADAR.2019.8835803en_US
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dspace.date.submission2019-12-06T15:31:08Z


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