DocumentCode
3450186
Title
A new class of asynchronous A/D converters based on time quantization
Author
Allier, E. ; Sicard, G. ; Fesquet, L. ; Renaudin, M.
Author_Institution
Concurrent Integrated Syst. Group, TIMA Lab., Grenoble, France
fYear
2003
fDate
12-15 May 2003
Firstpage
196
Lastpage
205
Abstract
This work is a contribution to a drastic change in standard signal processing chains. The main objective is to reduce the power consumption by one or two orders of magnitude. Integrated Smart Devices and Communicating Objects are application domains targeted by this work. In this context, we present a new class of Analog-to-Digital Converters (ADCs), based on an irregular sampling of the analog signal, and an asynchronous design. Because they are not conventional, a complete design methodology is presented. It determines their characteristics given the required effective number of bits and the analog signal properties. it is shown that our approach leads to a significant reduction in terms of hardware complexity and power consumption. A prototype has been designed for speech applications, using the STMicroelectronics 0.18-μm CMOS technology. Electrical simulations prove that the factor of merit is increased by more than one order of magnitude compared to synchronous Nyquist ADCs.
Keywords
CMOS integrated circuits; analogue-digital conversion; asynchronous circuits; integrated circuit design; mixed analogue-digital integrated circuits; quantisation (signal); 0.18 micron; CMOS ADC; STMicroelectronics CMOS technology; analog-to-digital converters; asynchronous design; communicating objects; hardware complexity reduction; integrated smart devices; power consumption reduction; speech applications; Analog-digital conversion; CMOS technology; Context; Design methodology; Energy consumption; Hardware; Quantization; Signal design; Signal processing; Signal sampling;
fLanguage
English
Publisher
ieee
Conference_Titel
Asynchronous Circuits and Systems, 2003. Proceedings. Ninth International Symposium on
ISSN
1522-8681
Print_ISBN
0-7695-1898-2
Type
conf
DOI
10.1109/ASYNC.2003.1199179
Filename
1199179
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