TY - JOUR
T1 - Millimeter-wave beamformed full-dimensional MIMO channel estimation based on atomic norm minimization
AU - Tsai, Yingming
AU - Zheng, Le
AU - Wang, Xiaodong
N1 - Publisher Copyright:
© 1972-2012 IEEE.
PY - 2018/12
Y1 - 2018/12
N2 - The millimeter-wave (mmWave) full-dimensional (FD) MIMO system employs planar arrays at both the base station and the user equipment and can simultaneously support both azimuth and elevation beamforming. In this paper, we propose atomic-norm-based methods for mm-wave FD-MIMO channel estimation under both uniform planar arrays (UPA) and non-uniform planar arrays (NUPA). Unlike existing algorithms, such as compressive sensing (CS) or subspace methods, the atomic-norm-based algorithms do not require to discretize the angle spaces of the angle of arrival and angle of departure into grids, thus provide much better accuracy in estimation. In the UPA case, to reduce the computational complexity, the original large-scale atomic norm minimization problem is approximately reformulated as a semi-definite program (SDP) containing two decoupled two-level Toeplitz matrices. The SDP is then solved via the alternating direction method of multipliers where each iteration involves only closed-form computations. In the NUPA case, the atomic-norm-based formulation for channel estimation becomes nonconvex and a gradient-decent-based algorithm is proposed to solve the problem. Simulation results show that the proposed algorithms achieve better performance than the CS-based and subspace-based algorithms.
AB - The millimeter-wave (mmWave) full-dimensional (FD) MIMO system employs planar arrays at both the base station and the user equipment and can simultaneously support both azimuth and elevation beamforming. In this paper, we propose atomic-norm-based methods for mm-wave FD-MIMO channel estimation under both uniform planar arrays (UPA) and non-uniform planar arrays (NUPA). Unlike existing algorithms, such as compressive sensing (CS) or subspace methods, the atomic-norm-based algorithms do not require to discretize the angle spaces of the angle of arrival and angle of departure into grids, thus provide much better accuracy in estimation. In the UPA case, to reduce the computational complexity, the original large-scale atomic norm minimization problem is approximately reformulated as a semi-definite program (SDP) containing two decoupled two-level Toeplitz matrices. The SDP is then solved via the alternating direction method of multipliers where each iteration involves only closed-form computations. In the NUPA case, the atomic-norm-based formulation for channel estimation becomes nonconvex and a gradient-decent-based algorithm is proposed to solve the problem. Simulation results show that the proposed algorithms achieve better performance than the CS-based and subspace-based algorithms.
KW - Full-dimensional (FD) MIMO
KW - alternating direction method of multipliers (ADMM)
KW - atomic norm
KW - channel estimation
KW - gradient descent
KW - millimeter-wave
KW - non-uniform planar array (NUPA)
KW - uniform planar array (UPA)
UR - http://www.scopus.com/inward/record.url?scp=85052576770&partnerID=8YFLogxK
U2 - 10.1109/TCOMM.2018.2864737
DO - 10.1109/TCOMM.2018.2864737
M3 - Article
AN - SCOPUS:85052576770
SN - 1558-0857
VL - 66
SP - 6150
EP - 6163
JO - IEEE Transactions on Communications
JF - IEEE Transactions on Communications
IS - 12
M1 - 8432470
ER -