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CHAOTIC DYNAMICS OF IONOSPHERIC CLUTTER FROM HIGH FREQUENCY SURFACE WAVE RADAR

  • School of electronic and Information Engineering

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

The detection performance of high frequency surface wave radar is impacted by the ionospheric clutter. In order to suppress the ionospheric clutter, it is important to research the physical mechanism of ionosphere. In this paper, it is demonstrated, convincingly for the first time, the chaotic dynamics of the ionospheric clutter. The results are obtained using the actual data collected from a series of experiments in Weihai Radar Station, China. The study includes the stationarity and nonlinearity test, phase-space reconstruction, correlation dimension analysis and Lyapunov exponents analysis. And finally, it is found that ionospheric clutter in HFSWR is a chaotic dynamical process with relatively few degrees of freedom, in contrast to the stochastic approach where the ionospheric clutter is viewed as a random process with a large number of degrees of freedom[1]. Also, this new approach will further provide an original way to analyse the ionospheric clutter suppression method.

Original languageEnglish
Title of host publicationIET Conference Proceedings
PublisherInstitution of Engineering and Technology
Pages1640-1646
Number of pages7
Volume2020
Edition9
ISBN (Electronic)9781839535406
DOIs
StatePublished - 2020
Externally publishedYes
Event5th IET International Radar Conference, IET IRC 2020 - Virtual, Online
Duration: 4 Nov 20206 Nov 2020

Conference

Conference5th IET International Radar Conference, IET IRC 2020
CityVirtual, Online
Period4/11/206/11/20

Keywords

  • CHAOTIC DYNAMICAL PROCESS
  • CORRELATION DIMENSION
  • IONOSPHERIC CLUTTER
  • LYAPUNOV EXPONENTS
  • PHASE-SPACE RECONSTRUCTION

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