TY - JOUR
T1 - Pseudorandom Time-Modulated Metasurface Cloaked Target Detection Based on Encoded Modulation Sequence Reconstruction
AU - Cui, Guonan
AU - Zhang, Zhaolin
AU - Su, Jia
AU - He, Chong
AU - Tao, Mingliang
AU - Li, Shiyuan
AU - Wang, Ling
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - Time-modulated metasurfaces (TMMs) encoded by pseudorandom sequences (PSs) present emerging challenges to radar detection by spreading the echo spectrum and defocusing target energy after matched filtering. As a result, the radar receiver fails to reconstruct the correct range profile, severely degrading detection performance. To address this issue, this article proposes a single-channel phase-domain reconstruction framework for noncooperative 1-bit PS-TMM cloaked targets, where the metasurface elements switch between two phase states governed by a pseudorandom binary sequence. Unlike multichannel or high-dimensional solutions, the proposed method requires only one receiving channel, offering low computational complexity, low hardware cost, and ease of implementation, while maintaining high accuracy. For 1-bit PS-TMM cloaked targets with unknown range and velocity, the algorithm compensates for range-velocity coupling terms and reconstructs the encoded modulation sequence directly in the time domain. The effectiveness of the method is validated through theoretical analysis, simulations, and experimental measurements under various conditions. Results demonstrate that the proposed single-channel algorithm can effectively recover the spectral distribution of 1-bit PS-TMM echoes and restore high-resolution range profiles, showing robust performance across different modulation rates, nonideal conditions, and multitarget scenarios.
AB - Time-modulated metasurfaces (TMMs) encoded by pseudorandom sequences (PSs) present emerging challenges to radar detection by spreading the echo spectrum and defocusing target energy after matched filtering. As a result, the radar receiver fails to reconstruct the correct range profile, severely degrading detection performance. To address this issue, this article proposes a single-channel phase-domain reconstruction framework for noncooperative 1-bit PS-TMM cloaked targets, where the metasurface elements switch between two phase states governed by a pseudorandom binary sequence. Unlike multichannel or high-dimensional solutions, the proposed method requires only one receiving channel, offering low computational complexity, low hardware cost, and ease of implementation, while maintaining high accuracy. For 1-bit PS-TMM cloaked targets with unknown range and velocity, the algorithm compensates for range-velocity coupling terms and reconstructs the encoded modulation sequence directly in the time domain. The effectiveness of the method is validated through theoretical analysis, simulations, and experimental measurements under various conditions. Results demonstrate that the proposed single-channel algorithm can effectively recover the spectral distribution of 1-bit PS-TMM echoes and restore high-resolution range profiles, showing robust performance across different modulation rates, nonideal conditions, and multitarget scenarios.
KW - Electronic counter-countermeasure (ECCM)
KW - pseudorandom sequence (PS)
KW - radar target detection
KW - spectrum recovery
KW - time-modulated metasurface (TMM)
UR - https://www.scopus.com/pages/publications/105035693974
U2 - 10.1109/TRS.2026.3676208
DO - 10.1109/TRS.2026.3676208
M3 - 文章
AN - SCOPUS:105035693974
SN - 2832-7357
VL - 4
SP - 709
EP - 729
JO - IEEE Transactions on Radar Systems
JF - IEEE Transactions on Radar Systems
ER -