Title :
Predictive comparators with adaptive control
Author :
MeVay, Alex C H ; Sarpeshkar, Rahul
Author_Institution :
Massachusetts Inst. of Technol., Cambridge, MA, USA
Abstract :
We describe an architecture that adds a linear predictor and adaptive control to a comparator to greatly reduce its delay. The linear predictor feeds an estimated future signal to the comparator to compensate for the comparator´s inherent delay. On a cycle-by-cycle basis, an adaptive controller adjusts the comparator´s bias current to residual errors that remain after the prediction. Emphasis is placed on low power consumption, including the development of a linear predictor with no static power consumption. In an experimental 1.5-μm VLSI chip implementation, our scheme enabled a 45-fold improvement in the power-delay product of a simple comparator. Our scheme is ideally suited for comparators used in synchronous rectification. It is also broadly useful in applications where an asynchronous comparator is required, such as sensor interfaces, oscilloscope triggers, some types of analog-to-digital converters, and spiking-neuron circuits. The difference equations that govern our adaptive scheme may be represented by a unimodal discrete map. Therefore, near the limits of the scheme´s stable regime of operation, we were able to experimentally confirm that there was a period-doubling route to chaos.
Keywords :
CMOS analogue integrated circuits; VLSI; adaptive control; chaos; circuit feedback; circuit stability; comparators (circuits); low-power electronics; predictive control; 1.5 micron; VLSI chip implementation; adaptive control; analog-to-digital converters; asynchronous comparator; difference equations; linear predictor; low power consumption; oscilloscope triggers; period-doubling route to chaos; power-delay product; predictive comparators; sensor interfaces; spiking-neuron circuits; stable operation regime; synchronous rectification; unimodal discrete map; Adaptive control; Analog-digital conversion; Circuits; Delay estimation; Energy consumption; Error correction; Feeds; Oscilloscopes; Programmable control; Very large scale integration;
Journal_Title :
Circuits and Systems II: Analog and Digital Signal Processing, IEEE Transactions on
DOI :
10.1109/TCSII.2003.815026