TY - JOUR
T1 - Radio-Frequency Interference Suppression Under Amplitude and Phase Distortions via Spectral Flatness
AU - Cai, Bowen
AU - Chen, Xinliang
AU - Zhu, Rui
AU - Liu, Quanhua
N1 - Publisher Copyright:
© 1994-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - Radar systems in practical environments are often affected by radio-frequency interference, which is commonly mitigated by spatial cancellation using auxiliary antennas. However, the use of auxiliary antennas inevitably introduces frequency-dependent amplitude and phase distortions between antennas, degrading signal synthesis and suppression performance. Existing calibration methods usually rely on prior measurements or explicit parameter estimation, making them sensitive to model mismatch, especially in multi-interference scenarios with spectral overlap. This letter proposes a spectral flatness measure (SFM)-based method for distortion compensation and interference suppression. The received signal is decomposed into subbands, where distortions are approximated as locally constant and compensated independently, and all parameters are jointly optimized via a genetic algorithm using the SFM criterion. The method requires no prior information or external calibration signals and achieves robust interference suppression. Simulation and experimental results validate its effectiveness in real interference environments.
AB - Radar systems in practical environments are often affected by radio-frequency interference, which is commonly mitigated by spatial cancellation using auxiliary antennas. However, the use of auxiliary antennas inevitably introduces frequency-dependent amplitude and phase distortions between antennas, degrading signal synthesis and suppression performance. Existing calibration methods usually rely on prior measurements or explicit parameter estimation, making them sensitive to model mismatch, especially in multi-interference scenarios with spectral overlap. This letter proposes a spectral flatness measure (SFM)-based method for distortion compensation and interference suppression. The received signal is decomposed into subbands, where distortions are approximated as locally constant and compensated independently, and all parameters are jointly optimized via a genetic algorithm using the SFM criterion. The method requires no prior information or external calibration signals and achieves robust interference suppression. Simulation and experimental results validate its effectiveness in real interference environments.
KW - Frequency-dependent distortion
KW - genetic algorithm
KW - spatial interference cancellation
KW - spectral flatness
UR - https://www.scopus.com/pages/publications/105039588909
U2 - 10.1109/LSP.2026.3694691
DO - 10.1109/LSP.2026.3694691
M3 - Article
AN - SCOPUS:105039588909
SN - 1070-9908
VL - 33
SP - 2235
EP - 2239
JO - IEEE Signal Processing Letters
JF - IEEE Signal Processing Letters
ER -