Title :
Analog DFT Processors for OFDM Receivers: Circuit Mismatch and System Performance Analysis
Author :
Sadeghi, Nima ; Gaudet, Vincent C. ; Schlegel, Christian
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of British Columbia, Vancouver, BC, Canada
Abstract :
An N-symbol discrete Fourier transform (N -DFT) processor based on analog CMOS current mirrors that operate in the strong inversion region is presented. It is shown that transistor mismatch can be modeled as an input-referred noise source that can be used in system-level studies. Simulations of a radix-2, 256-symbol fast Fourier transform (FFT) show that the model produces equivalent results to those of a model that incorporates a mismatch term into each current mirror. It is shown that in general, high-radix FFT structures and specifically the full-radix DFT have reduced sensitivity to mismatch and a reduced number of current mirrors compared to radix-2 structures and have some key advantages in terms of transistor count with respect to comparable digital implementations. Simulations of an orthogonal frequency-division multiplexing system with forward error control coding, that take into account current mirror nonidealities such as mismatch, show that an analog DFT front end loses only 0.5 dB with respect to an ideal circuit.
Keywords :
CMOS integrated circuits; OFDM modulation; current mirrors; digital arithmetic; discrete Fourier transforms; forward error correction; microprocessor chips; radio receivers; N-symbol discrete Fourier transform processor; OFDM receiver; analog CMOS current mirrors; analog DFT processor; circuit mismatch; forward error control coding; orthogonal frequency division multiplexing system; radix symbol fast Fourier transform; strong inversion region; Analog circuits; current mirrors; fast Fourier transform; mismatch; orthogonal frequency division multiplexing;
Journal_Title :
Circuits and Systems I: Regular Papers, IEEE Transactions on
DOI :
10.1109/TCSI.2008.2011582