why the 0.1 is a high require in f2 line

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JICHAO ZHANG
JICHAO ZHANG le 20 Juin 2023
Commenté : JICHAO ZHANG le 20 Juin 2023
f = @(r,theta,phi,xi) r.^3 .* sin(theta).^2 .* sin(phi);
f1=@(theta,phi,xi)integral(@(r)f(r,theta,phi,xi),0,2,'ArrayValued',1);
df2=@(theta,phi,xi)cell2mat(arrayfun(@(theta,phi,xi)f1(theta,phi,xi),theta,phi,xi,'UniformOutput',0));
f2=integral3(@(theta,phi,xi)f(theta,phi,xi),0,pi,0,pi,0,2*pi,'AbsTol', 0,'RelTol',0.1);
ret=f2
  1 commentaire
Walter Roberson
Walter Roberson le 20 Juin 2023
f = @(r,theta,phi,xi) r.^3 .* sin(theta).^2 .* sin(phi);
So f expects 4 input parameters
f2=integral3(@(theta,phi,xi)f(theta,phi,xi),0,pi,0,pi,0,2*pi,'AbsTol', 0,'RelTol',0.1);
but here f is invoked with three input parameters

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Réponses (1)

Naman
Naman le 20 Juin 2023
Hi Jichao Zhang,
The 'RelTol' parameter in the integral3 function sets the relative error tolerance for the numerical integration.
In the given code, 'RelTol' is set to 0.1, which allows for a maximum relative error of 10% in the numerical integration. This value is relatively high and may not be appropriate for some applications that require high accuracy. However, depending on the specific requirements of the application, a 'RelTol' of 0.1 may be sufficient to achieve reasonable accuracy while still maintaining computational efficiency.
Hope it helps.

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