Infinite Loop help Riemann sums
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For some reason it's get stuck in an infinite loop. The programs says line 8 is the problem so the "first = first" line so I'm assuming its the bound problem? I don't see the problem any suggestions?
Note: my functions needs to give me an approx that has an difference from the previous estimate less than the tol that's why I'm running a while and for loop.
3 commentaires
Walter Roberson
le 24 Fév 2013
I suggest you step through it line by line with the debugger.
Azzi Abdelmalek
le 24 Fév 2013
It's difficult to say if we don not know a,b,tol and your function f.
Kenny
le 24 Fév 2013
Réponse acceptée
Youssef Khmou
le 24 Fév 2013
Modifié(e) : Youssef Khmou
le 24 Fév 2013
hi Kenny, your program works fine for most of cases
Note : no need to declare syms x ,
I tried to to make some change according to your model , like number of samples n, no need to increase through the loop, the theorem states that the Sum converges when N->Inf :
function y = myintegralapprox(f,a,b,tol)
tol=100*tol;
n = 1000;
c = tol + 1;
first = 0;
second = 0;
counter=1;
while (c > tol)
for m=a+(((b-a)/n)/2):((b-a)/n):(b-((b-a)/n)/2)
first = first + ((b-a)/n)*(f(m));
end
counter=counter+1;
if counter>1e+6
break;
end
y = first;
c = abs(first - second);
second = first;
end
I made some tests comparing you func with "quad" function :
>>myintegralapprox(@(x) 1/(1+exp(x)),0,pi,.1)
>>quad(@(x) 1./(1+exp(x)),0,pi)
>>myintegralapprox(@(x) cos(x),0,pi,.1)
>>quad(@(x) cos(x),0,pi)
>>myintegralapprox(@(x) exp(-x^2),0,pi,.1)
>>quad(@(x) exp(-x.^2),0,pi,.1)
>>myintegralapprox(@(x) (x^3)+(x^2)+1,0,pi,1)
>>quad(@(x) (x.^3)+(x.^2)+1,0,pi)
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