DocumentCode :
1319941
Title :
Design and Exploration of Low-Power Analog to Information Conversion Based on Compressed Sensing
Author :
Mamaghanian, Hossein ; Khaled, Nadia ; Atienza, David ; Vandergheynst, Pierre
Author_Institution :
Sch. of Eng., Ecole Polytech. Fed. de Lausanne (EPFL), Lausanne, Switzerland
Volume :
2
Issue :
3
fYear :
2012
Firstpage :
493
Lastpage :
501
Abstract :
The long-standing analog-to-digital conversion paradigm based on Shannon/Nyquist sampling has been challenged lately, mostly in situations such as radar and communication signal processing where signal bandwidth is so large that sampling architectures constraints are simply not manageable. Compressed sensing (CS) is a new emerging signal acquisition/compression paradigm that offers a striking alternative to traditional signal acquisition. Interestingly, by merging the sampling and compression steps, CS also removes a large part of the digital architecture and might thus considerably simplify analog-to-information (A2I) conversion devices. This so-called “analog CS,” where compression occurs directly in the analog sensor readout electronics prior to analog-to-digital conversion, could thus be of great importance for applications where bandwidth is moderate, but computationally complex, and power resources are severely constrained. In our previous work (Mamaghanian, 2011), we quantified and validated the potential of digital CS systems for real-time and energy-efficient electrocardiogram compression on resource-constrained sensing platforms. In this paper, we review the state-of-the-art implementations of CS-based signal acquisition systems and perform a complete system-level analysis for each implementation to highlight their strengths and weaknesses regarding implementation complexity, performance and power consumption. Then, we introduce the spread spectrum random modulator pre-integrator (SRMPI), which is a new design and implementation of a CS-based A2I read-out system that uses spread spectrum techniques prior to random modulation in order to produce the low rate set of digital samples. Finally, we experimentally built an SRMPI prototype to compare it with state-of-the-art CS-based signal acquisition systems, focusing on critical system design parameters and constraints, and show that this new proposed architecture offers a compelling alternativ- , in particular for low power and computationally-constrained embedded systems.
Keywords :
analogue-digital conversion; compressed sensing; electrocardiography; embedded systems; information theory; readout electronics; signal detection; A2I conversion devices; SRMPI; Shannon/Nyquist sampling; analog sensor readout electronics; analog-to-digital conversion; analog-to-information; compressed sensing; critical system design parameters; embedded systems; energy-efficient electrocardiogram compression; information conversion; low-power analog; signal acquisition; signal bandwidth; signal compression; spread spectrum random modulator pre-integrator; Bandwidth; Compressed sensing; Computer architecture; Demodulation; Electrocardiography; Sensors; Spread spectrum communication; Analog-to-information; compressed sensing (CS); electrocardiogram (ECG) compression; low-power; random modulation pre-integrator (RMPI); spread spectrum; system-level design;
fLanguage :
English
Journal_Title :
Emerging and Selected Topics in Circuits and Systems, IEEE Journal on
Publisher :
ieee
ISSN :
2156-3357
Type :
jour
DOI :
10.1109/JETCAS.2012.2220253
Filename :
6332541
Link To Document :
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