DocumentCode :
580501
Title :
Range estimation of floating-point variables in Simulink models
Author :
Chapoutot, Alexandre ; Didier, Laurent-Stéphane ; Villers, Fanny
Author_Institution :
Dept. of Comput. Sci. & Syst. Eng., ENSTA ParisTech, Paris, France
fYear :
2012
fDate :
23-25 Oct. 2012
Firstpage :
1
Lastpage :
8
Abstract :
Fixed-point arithmetic is widely used in embedded applications because it allows to build compact, fast and low-power application-specific integrated circuits designs. Practically, many of them are designed using model-based design tool such as Matlab/Simulink which allow simulations in floating-point representations. From such a high level simulable model, embedded system designers have to size the proper fixed-point representation. Thus, the challenge is to transform floating-point algorithms into numerical equivalent fixed-point programs. As software increases in complexity and both arithmetics do not have the same behaviors, designers need tools to help them in this task. In this article, we present a new statistical method based on Extreme Value Theory to estimate the dynamic range of program variables. We show that this model fits better than Gumbel model to the range estimation in digital signal processing applications both for linear and nonlinear systems. We present several experiments to illustrate the practical use of our approach. We show few simulations are required in order to estimate the bit-width of the bound of the range.
Keywords :
application specific integrated circuits; embedded systems; floating point arithmetic; integrated circuit design; low-power electronics; mathematics computing; statistical analysis; Gumbel model; Matlab-Simulink; bit-width estimation; digital signal processing applications; dynamic range estimation; embedded system designers; extreme value theory; fixed-point arithmetic; floating-point variables; high level simulable model; linear systems; low-power application-specific integrated circuits designs; model-based design tool; nonlinear systems; numerical equivalent fixed-point programs; program variables; statistical method; Computational modeling; Estimation; Manganese; Mathematical model; Numerical models; Random variables; Software packages; Fixed-point arithmetic; dynamic range estimation; extreme value distribution; statistical method;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Design and Architectures for Signal and Image Processing (DASIP), 2012 Conference on
Conference_Location :
Karlsruhe
Print_ISBN :
978-1-4673-2089-4
Electronic_ISBN :
978-2-9539987-4-0
Type :
conf
Filename :
6385374
Link To Document :
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