Title :
A Low-Voltage Energy-Sampling IR-UWB Digital Baseband Employing Quadratic Correlation
Author :
Mercier, Patrick P. ; Bhardwaj, Manish ; Daly, Denis C. ; Chandrakasan, Anantha P.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Massachusetts Inst. of Technol. (MIT), Cambridge, MA, USA
fDate :
6/1/2010 12:00:00 AM
Abstract :
This paper describes a digital baseband designed for use in a non-coherent IR-UWB system. Owing to the nonlinear statistics introduced by the energy-sampling RF front-end, the baseband employs a new quadratic correlation technique that achieves comparable performance to a matched filter classifier, with the added benefit of being robust to SNR estimation errors. Additionally, “alias-free codes” are introduced that allow for pulse-level synchronization accuracy without requiring any increase in front-end complexity. Fabricated in a 90 nm CMOS process, the digital baseband utilizes significant parallelism in addition to clock and data gating to achieve low-power operation, with supply voltages as low as 0.55 V. At a clock frequency of 32 MHz, the baseband requires 14-to-79 μs to process a preamble during which it consumes an average power of 1.6 mW, while payload demodulation requires 12 pJ/bit.
Keywords :
CMOS integrated circuits; codes; error statistics; synchronisation; ultra wideband communication; CMOS process; SNR estimation errror; alias-free codes; filter classifier; impulse radio ultrawideband systems; low-voltage energy-sampling IR-UWB digital baseband; nonlinear statistics; pulse level synchronization; quadratic correlation; Baseband; CMOS process; Clocks; Error analysis; Estimation error; Frequency synchronization; Low voltage; Matched filters; Radio frequency; Robustness; Correlation; UWB; VLSI; energy detection; maximum likelihood; modem; non-coherent; ultra-wideband;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2010.2046245