Matlab Triple Integration Error. Thank You

3 visualizaciones (últimos 30 días)
sun
sun el 28 de Dic. de 2014
Comentada: sun el 28 de Dic. de 2014
Dear guys, I am trying to do a triple integration. But I am not very understand the meaning of error message. could you take a look for it? Thank you so much
The code is
clear all;
%%%== just some parameters here ========
a=4;
la1=1/(pi*500^2); la2= la1*5;
p1=25; p2=p1/25;
sgma2=10^(-11);
index=1;
g=2./a;
syms r u1 u2 u3
powe= -2
seta= 10^powe;
q=pi.*(la1.*p1.^(2./a)+la2.*p2.^(2./a));
%%%=== parameters end ================
yi = @(u3,u2,u1) exp(-u3.*(1+2.*...
(pi./4 - atan(10.*(u3.^2./u1.^2 + u3.^2./u2.^2 + 1).^(1./2))./2 )./...
((( (u3./u1).^(a./2) + (u3./u2).^(a./2) + 1 ).^(2./a)).*seta.^(-2./a)))).*...
exp(-sgma2.*q.^(-a./2).* seta.*u3.^(a./2)./...
((( (u3./u1).^(a./2) + (u3./u2).^(a./2) + 1 ).^(2./a)).^(a./2)) );
maxF2 =@(u2) u2;
maxF3 =@(u3) u3;
out2 = integral3(yi, 0, Inf , 0, maxF3 , 0, maxF2)
As you see, u3 is [0, Inf], u2 is [0, u3], u1 is [0, u2]. Error is showing me as
Error using @(u2)u2
Too many input arguments.
Error in integral3>@(y)ZMAXXY(x(1)*ones(size(y)),y) (line 142)
@(y)ZMAXXY(x(1)*ones(size(y)),y), ...
Error in integral2Calc>integral2t/tensor (line 191)
top = YMAX(x);
Error in integral2Calc>integral2t (line 56)
[Qsub,esub] = tensor(thetaL,thetaR,phiB,phiT);
Error in integral2Calc (line 10)
[q,errbnd] = integral2t(fun,xmin,xmax,ymin,ymax,optionstruct);
Error in integral3/innerintegral (line 138)
Q1 = integral2Calc( ...
Error in integralCalc/iterateScalarValued (line 314)
fx = FUN(t);
Error in integralCalc/vadapt (line 133)
[q,errbnd] = iterateScalarValued(u,tinterval,pathlen);
Error in integralCalc (line 84)
[q,errbnd] = vadapt(@AToInfInvTransform,interval);
Error in integral3 (line 122)
Q = integralCalc(@innerintegral,xmin,xmax,integralOptions);
Error in ref7_equ11n3 (line 33)
out2 = integral3(yi, 0, Inf , 0, maxF3 , 0, maxF2)
What's meaning of 'Error using @(u2)u2 Too many input arguments.' ?? If I change u2,u3's range to real number (e.g. out2 = integral3(yi, 0, Inf , 0, 1000 , 0, 1000). ), then it's working. out2 will be a real number. Thanks for your time!

Respuesta aceptada

Shoaibur Rahman
Shoaibur Rahman el 28 de Dic. de 2014
Replace out2 by
out2 = integral3(yi, 0, Inf , 0, @(u3) u3 , 0, @(u3,u2) u2)
If you want to use function handles as the integration limit, then
ymax should be function x, in your case u3
zmax should be a function x and y, in your case u3 and u2, although u3 has no effect
  3 comentarios
Shoaibur Rahman
Shoaibur Rahman el 28 de Dic. de 2014
It's my pleasure, and thanks a lot for accepting!
Go down to the Input Arguments, and click on ymin, ymax, zmin, and zmax to see their acceptable types.
sun
sun el 28 de Dic. de 2014
Dear ShoaiburRahman, I see this information as below,
You also can specify zmax to be a function handle (a function of x,y) when integrating over a nonrectangular region.
Does this mean zmax MUST be a function of x,y? hmmm. at first time, I think this is not necessary.

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