Calculation of cosh, sinh big numbers

17 Ansichten (letzte 30 Tage)
john
john am 27 Feb. 2014
Kommentiert: john am 9 Mär. 2014
Hi,
let t is time. How can I calculate and plot:
for i=1:10
y=0.912*sin(314.0*t) - 3.31*cos(314.0*t) + (3.31*(cosh(1399.0*t) + 0.484*sinh(1399.0*t)))/exp(1500.0*t)
current(:,i)=(eval(y))'
end
I got NaN from cosh and sinh for time 0.51....how can I block cosh, sinh if actual value is NaN?
Thank you

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Roger Stafford
Roger Stafford am 27 Feb. 2014
Bearbeitet: Roger Stafford am 27 Feb. 2014
All three quantities, cosh(1399.0*t), sinh(1399.0*t), and exp(1500.0*t), will fall far beyond the realmax limit. I would suggest you refer to the definitions of sinh and cosh and modify your expression as follows. Replace cosh(1399.0*t)/exp(1500.0*t) by (exp(-101*t)+exp(-2899*t))/2 and similarly with sinh. That way you will not get NaNs even though these are equivalent expressions.
  4 Kommentare
2 ältere Kommentare anzeigen
Roger Stafford
Roger Stafford am 9 Mär. 2014
I would replace that particular expression with this equivalent one:
a=[ -5.1 0.794 -0.794 -0.794 4.06 4.06 ;
5.1 -0.794 0.794 0.794 4.06 4.06 ;
5.1 -0.794 0.794 0.794 4.06 4.06 ;
0.912 -3.31 3.31 3.31 0.484 0.484 ;
0.912 -3.31 3.31 3.31 0.484 0.484 ;
4.19 2.52 -2.52 -2.52 -0.644 -0.644 ] * ...
[ sin(314.0*t)*exp(-1500.0*t);
cos(314.0*t)*exp(-1500.0*t);
exp(-101*t)/2 ;
exp(-1899*t)/2 ;
exp(-101*t)/2 ;
-exp(-1899*t)/2 ];
I don't know any way of doing this sort of thing "automatically", but maybe the method you see here will suggest some kind of simplification for whatever you are doing. You will notice that the terms in the above never grow large with t. In fact they will essentially disappear after t takes on appreciable sizes.
Note: I would suggest that you let t = 0.001*rand several times and for each value of t compare your original 'a' with the above 'a' to ensure that they are essentially equivalent and that I didn't make some algebraic blunder.
john
john am 9 Mär. 2014
OK, thank you.
It is not your fault, that there is no automatic function.
Thank you

Melden Sie sich an, um zu kommentieren.

Weitere Antworten (0)

Kategorien

Mehr zu Image Arithmetic finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by