DocumentCode :
1487150
Title :
Analytical Approach for Numerical Accuracy Estimation of Fixed-Point Systems Based on Smooth Operations
Author :
Rocher, Romuald ; Menard, Daniel ; Scalart, Pascal ; Sentieys, Olivier
Author_Institution :
INRIA/IRISA, Univ. of Rennes 1, Lannion, France
Volume :
59
Issue :
10
fYear :
2012
Firstpage :
2326
Lastpage :
2339
Abstract :
In embedded systems using fixed-point arithmetic, converting applications into fixed-point representations requires a fast and efficient accuracy evaluation. This paper presents a new analytical approach to determine an estimation of the numerical accuracy of a fixed-point system, which is accurate and valid for all systems formulated with smooth operations (e.g., additions, subtractions, multiplications and divisions). The mathematical expression of the system output noise power is determined using matrices to obtain more compact expressions. The proposed approach is based on the determination of the time-varying impulse-response of the system. To speedup computation of the expressions, the impulse response is modelled using a linear prediction approach. The approach is illustrated in the general case of time-varying recursive systems by the Least Mean Square (LMS) algorithm example. Experiments on various and representative applications show the fixed-point accuracy estimation quality of the proposed approach. Moreover, the approach using the linear-prediction approximation is very fast even for recursive systems. A significant speed-up compared to the best known accuracy evaluation approaches is measured even for the most complex benchmarks.
Keywords :
embedded systems; fixed point arithmetic; least mean squares methods; analytical approach; embedded systems; fixed-point accuracy estimation; fixed-point arithmetic; fixed-point representations; fixed-point systems; least mean square algorithm; linear prediction approach; linear-prediction approximation; mathematical expression; numerical accuracy estimation; smooth operations; system output noise power; time-varying impulse-response; time-varying recursive systems; Accuracy; Mathematical model; Noise; Numerical models; Object oriented modeling; Quantization; Vectors; Accuracy evaluation; adaptive filters; fixed-point arithmetic; quantization noises;
fLanguage :
English
Journal_Title :
Circuits and Systems I: Regular Papers, IEEE Transactions on
Publisher :
ieee
ISSN :
1549-8328
Type :
jour
DOI :
10.1109/TCSI.2012.2188938
Filename :
6179319
Link To Document :
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