TY - GEN
T1 - Channel Estimation for MIMO-OCDM Systems as an Emerging 6G Radio Access Technology
AU - Ouyang, Xing
AU - Dobre, Octavia
AU - Guan, Yong Liang
AU - Townsend, Paul
N1 - Publisher Copyright:
© 2022 IEEE.
PY - 2022
Y1 - 2022
N2 - In multiple-input multiple-output (MIMO) systems, channel estimation is of crucial importance to ensure the reliable recovery of the high-speed MIMO signals through severe multi-path propagation. In this work, we propose a novel and efficient channel estimation algorithm for the emerging MIMO orthogonal chirp-division multiplexing (OCDM) systems by taking advantage of the unique features of OCDM signals. In the proposed algorithm, a set of pilot signals is deliberately designed based on the Fresnel basis, which are essentially linearly frequency-modulated (or chirped) waveforms and mutually orthogonal. The pilot signals are assigned to different transmit antennas and transmitted simultaneously, occupying the same time interval and frequency band for channel acquisition. Based on the convolution-preservation theory of the Fresnel transform, the transfer matrices of the MIMO channel can be readily estimated at the receiver without any inter-antenna interference even if the pilots overlap in both time and frequency. The proposed algorithm avoids bandwidth waste in the conventional channel estimators, in which silent pilots are required in time and/or frequency domain to ensure that the received MIMO pilots are still distinguishable. Moreover, by virtue of the unique features of the chirped pilots, the proposed algorithm is unbiased and thus has better accuracy. Numerical results are provided to validate the advantages of the proposed estimator with improved performance over other algorithms. As a result, the proposed channel estimation algorithm holds great promise for future MIMO-OCDM as an emerging radio access technology for 6G wireless systems.
AB - In multiple-input multiple-output (MIMO) systems, channel estimation is of crucial importance to ensure the reliable recovery of the high-speed MIMO signals through severe multi-path propagation. In this work, we propose a novel and efficient channel estimation algorithm for the emerging MIMO orthogonal chirp-division multiplexing (OCDM) systems by taking advantage of the unique features of OCDM signals. In the proposed algorithm, a set of pilot signals is deliberately designed based on the Fresnel basis, which are essentially linearly frequency-modulated (or chirped) waveforms and mutually orthogonal. The pilot signals are assigned to different transmit antennas and transmitted simultaneously, occupying the same time interval and frequency band for channel acquisition. Based on the convolution-preservation theory of the Fresnel transform, the transfer matrices of the MIMO channel can be readily estimated at the receiver without any inter-antenna interference even if the pilots overlap in both time and frequency. The proposed algorithm avoids bandwidth waste in the conventional channel estimators, in which silent pilots are required in time and/or frequency domain to ensure that the received MIMO pilots are still distinguishable. Moreover, by virtue of the unique features of the chirped pilots, the proposed algorithm is unbiased and thus has better accuracy. Numerical results are provided to validate the advantages of the proposed estimator with improved performance over other algorithms. As a result, the proposed channel estimation algorithm holds great promise for future MIMO-OCDM as an emerging radio access technology for 6G wireless systems.
KW - 6G
KW - air interface
KW - Channel estimation
KW - MIMO
KW - OFDM
KW - orthogonal chirp-division multiplexing (OCDM)
UR - https://www.scopus.com/pages/publications/85146894504
U2 - 10.1109/GCWkshps56602.2022.10008784
DO - 10.1109/GCWkshps56602.2022.10008784
M3 - Conference proceeding
AN - SCOPUS:85146894504
T3 - 2022 IEEE GLOBECOM Workshops, GC Wkshps 2022 - Proceedings
SP - 1573
EP - 1578
BT - 2022 IEEE GLOBECOM Workshops, GC Wkshps 2022 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2022 IEEE GLOBECOM Workshops, GC Wkshps 2022
Y2 - 4 December 2022 through 8 December 2022
ER -