DocumentCode
56040
Title
Simulation and analysis of polarimetric radar signatures of human gaits
Author
Park, James ; Johnson, Joel ; Majurec, Ninoslav ; Frankford, Mark ; Stewart, Kyle ; Smith, Graeme ; Westbrook, Lamar
Author_Institution
Air Force Res. Lab., Wright-Patterson AFB, OH, USA
Volume
50
Issue
3
fYear
2014
fDate
Jul-14
Firstpage
2164
Lastpage
2175
Abstract
Radar observations of human activities have a variety of applications in security, defense, and rescue operations. Range-Doppler signatures of human motions are a useful tool for retrieving information on observed activities but require an understanding of the scattering processes involved to enable interpretation. This paper presents a study of human Doppler signatures using simulations, in particular focusing on the impact of the polarization to enable an understanding of any advantages in the use of polarimetric radar. The simulation model utilized is based on an approximate scattering approach combined with a 12-cylinder description of the human body. A comparison with single polarization co-pol measurements is used to show that the model provides reasonable first-order predictions of human signatures. Further simulations for polarimetric signatures illustrate the differing contributions of individual body parts to micro-Doppler returns and suggest that multi-polarization measurements can be useful in future micro-Doppler radar systems for human observation.
Keywords
Doppler radar; approximation theory; digital signatures; electromagnetic wave polarisation; electromagnetic wave scattering; radar polarimetry; 12-cylinder description; approximate scattering; defense application; human Doppler signatures; human activity; human body; human gaits; human motions; information retrieval; microDoppler radar systems; microDoppler returns; multipolarization measurements; polarimetric radar signatures; radar observations; range-Doppler signatures; rescue operations; scattering process; security application; Computational modeling; Doppler effect; Doppler radar; Legged locomotion; Predictive models; Radar polarimetry;
fLanguage
English
Journal_Title
Aerospace and Electronic Systems, IEEE Transactions on
Publisher
ieee
ISSN
0018-9251
Type
jour
DOI
10.1109/TAES.2014.120792
Filename
6965765
Link To Document