TY - JOUR
T1 - Micro-motion recognition of spatial cone target based on ISAR image sequences
AU - Shu, Changyong
AU - Xue, Fengli
AU - Zhang, Shengjun
AU - Huang, Peiling
AU - Ji, Jinzu
N1 - Publisher Copyright:
© 2016, Journal of Aerospace Technology and Management. All rights reserved.
PY - 2016/4/1
Y1 - 2016/4/1
N2 - The accurate micro-motions recognition of spatial cone target is the foundation of the characteristic parameter acquisition. For this reason, a micro-motion recognition method based on the distinguishing characteristics extracted from the Inverse Synthetic Aperture Radar (ISAR) sequences is proposed in this paper. The projection trajectory formula of cone node strong scattering source and cone bottom sliptype strong scattering sources, which are located on the spatial cone target, are deduced under three micro-motion types including nutation, precession, and spinning, and the correctness is verified by the electromagnetic simulation. By comparison, differences are found among the projection of the scattering sources with different micro-motions, the coordinate information of the scattering sources in the Inverse Synthetic Aperture Radar sequences is extracted by the CLEAN algorithm, and the spinning is recognized by setting the threshold value of Doppler. The double observation points Interacting Multiple Model Kalman Filter is used to separate the scattering sources projection of the nutation target or precession target, and the cross point number of each scattering source’s projection track is used to classify the nutation or precession. Finally, the electromagnetic simulation data are used to verify the effectiveness of the micro-motion recognition method.
AB - The accurate micro-motions recognition of spatial cone target is the foundation of the characteristic parameter acquisition. For this reason, a micro-motion recognition method based on the distinguishing characteristics extracted from the Inverse Synthetic Aperture Radar (ISAR) sequences is proposed in this paper. The projection trajectory formula of cone node strong scattering source and cone bottom sliptype strong scattering sources, which are located on the spatial cone target, are deduced under three micro-motion types including nutation, precession, and spinning, and the correctness is verified by the electromagnetic simulation. By comparison, differences are found among the projection of the scattering sources with different micro-motions, the coordinate information of the scattering sources in the Inverse Synthetic Aperture Radar sequences is extracted by the CLEAN algorithm, and the spinning is recognized by setting the threshold value of Doppler. The double observation points Interacting Multiple Model Kalman Filter is used to separate the scattering sources projection of the nutation target or precession target, and the cross point number of each scattering source’s projection track is used to classify the nutation or precession. Finally, the electromagnetic simulation data are used to verify the effectiveness of the micro-motion recognition method.
KW - Interacting Multiple Model Kalman Filter
KW - Inverse Synthetic Aperture Radar sequences
KW - Micro-motion recognition
KW - Slip-type strong scattering sources
KW - Spatial cone target
UR - https://www.scopus.com/pages/publications/84971667565
U2 - 10.5028/jatm.v8i2.603
DO - 10.5028/jatm.v8i2.603
M3 - 文章
AN - SCOPUS:84971667565
SN - 1984-9648
VL - 8
SP - 152
EP - 162
JO - Journal of Aerospace Technology and Management
JF - Journal of Aerospace Technology and Management
IS - 2
ER -