Title :
Adaptive digital predistortion linearization of frequency multipliers
Author :
Park, Youngcheol ; Kenney, J. Stevenson
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Abstract :
A novel technique to linearize frequency multipliers for use in high-frequency transmission of digitally modulated signals is presented. Using this technique, a bandpass signal containing both amplitude and phase modulation can be translated without distortion to a higher frequency via nonlinear frequency multiplication. A theoretical analysis is performed to identify the bandpass transformation of the signal envelope in highly nonlinear devices in a manner such that its inverse transformation may be estimated. The theory was validated on a 2.46-GHz Schottky-diode frequency tripler constructed by the authors and on an 820-MHz commercially available frequency doubler. As predicted by the theory, the devices showed highly nonlinear characteristics in terms of their AM/AM, AM/PM, and PM/PM distortions. Adaptive lookup-table- and polynomial-based predistortion systems were designed and constructed to linearize the frequency multipliers. The predistortion results show a fair amount of improvements in adjacent-channel power ratio and error vector magnitude.
Keywords :
Schottky diodes; UHF frequency convertors; amplitude modulation; frequency multipliers; intermodulation distortion; linearisation techniques; phase modulation; 2.46 GHz; 820 MHz; AM/AM distortions; AM/PM distortions; PM/PM distortions; Schottky-diode frequency tripler; adaptive digital predistortion linearization; adjacent-channel power ratio; amplitude modulation; bandpass signal; bandpass transformation; digitally modulated signal; error vector magnitude; frequency doubler; frequency multipliers; high-frequency transmission; highly nonlinear devices; inverse transformation; nonlinear frequency multiplication; phase modulation; polynomial-based predistortion systems; signal envelope; theoretical analysis; Chirp modulation; Digital modulation; Frequency conversion; Nonlinear distortion; Performance analysis; Phase distortion; Phase modulation; Predistortion; Signal analysis; Signal processing;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2003.819771