TY - GEN
T1 - Hybrid Predistortion of RF Power Amplifiers with Nearly 25% Reduction in Digital Predistortion Complexity
AU - Elarbi, Mustafa
AU - Kouki, Ammar
AU - Outaleb, Noureddine
N1 - Publisher Copyright:
© 2026 IEEE.
PY - 2026
Y1 - 2026
N2 - This paper presents a hybrid analog-digital predistortion (HADPD) architecture combining an analog predistorter with a digital predistortion platform. The analog predistorter is designed to provide coarse linearization of the power amplifier (PA), thereby reducing the burden on the digital predistortion (DPD) stage. Measurements were carried out at 3.5 GHz, at 5 dB backoff from the 1 dB compression point at different signal bandwidths. Without predistortion, the PA exhibits an ACPR of -35 dBc, which improves to -42 dBc using the analog predistorter alone. When applying conventional digital predistortion with a 190-coefficient generalized memory polynomial (GMP) model, an ACPR of -54 dBc is achieved. By contrast, the proposed hybrid predistortion approach achieves an ACPR of -56 dBc using only 95 digital coefficients, a 50% reduction in the number of digital coefficients. This yields approximately a 25% overall reduction in DPD complexity and relaxes the requirement of the DPD's hardware. These results demonstrate that the analog predistorter effectively mitigates the dominant nonlinearities, enabling a substantially simpler digital predistorter to achieve superior linearization performance.
AB - This paper presents a hybrid analog-digital predistortion (HADPD) architecture combining an analog predistorter with a digital predistortion platform. The analog predistorter is designed to provide coarse linearization of the power amplifier (PA), thereby reducing the burden on the digital predistortion (DPD) stage. Measurements were carried out at 3.5 GHz, at 5 dB backoff from the 1 dB compression point at different signal bandwidths. Without predistortion, the PA exhibits an ACPR of -35 dBc, which improves to -42 dBc using the analog predistorter alone. When applying conventional digital predistortion with a 190-coefficient generalized memory polynomial (GMP) model, an ACPR of -54 dBc is achieved. By contrast, the proposed hybrid predistortion approach achieves an ACPR of -56 dBc using only 95 digital coefficients, a 50% reduction in the number of digital coefficients. This yields approximately a 25% overall reduction in DPD complexity and relaxes the requirement of the DPD's hardware. These results demonstrate that the analog predistorter effectively mitigates the dominant nonlinearities, enabling a substantially simpler digital predistorter to achieve superior linearization performance.
KW - analog predistortion
KW - digital predistortion
KW - hybrid predistortion
KW - linearization
KW - power amplifier
UR - https://www.scopus.com/pages/publications/105046180223
U2 - 10.1109/CCECE68150.2026.11610183
DO - 10.1109/CCECE68150.2026.11610183
M3 - Contribution to conference proceedings
AN - SCOPUS:105046180223
T3 - Canadian Conference on Electrical and Computer Engineering
SP - 36
EP - 40
BT - IEEE Canadian Conference on Electrical and Computer Engineering, CCECE 2026
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 39th IEEE Canadian Conference on Electrical and Computer Engineering, CCECE 2026
Y2 - 18 May 2026 through 20 May 2026
ER -