My piecewise function becomes NaN
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Shailee Yagnik
le 31 Août 2019
Commenté : Shailee Yagnik
le 1 Sep 2019
In the function below my integral becomes -inf when b is nonzero.
I think because of that my ans yields NaN instead of 2. How do I solve this problem?
Nz2=@(a,b) ((b==0)*integral(myfun,itta,inf)+(a>0 & b>0)*2)
Ans=Nz2(a,b)
4 commentaires
Adam Danz
le 1 Sep 2019
See walter's answer to understand why you're getting a NaN and see his comment(s) under his answer.
Réponse acceptée
Walter Roberson
le 31 Août 2019
You indicate that your integral becomes infinite when b is non-zero. You try to compensate for that by using (b==0) * integral() thinking that it will "select" the integral() calculation when b is 0 and thinking that otherwise it will skip it. But that is not what happens. When you calculate (b==0)*integral() then both sides are calculated no matter what the value of b is. When b is 0 then that is fine, as you get (0==0)*finite_value which is the finite_value. But when b is non-zero then you get (nonzero==0)*infinite_value which is 0*infinite_value which is NaN.
You cannot use the logical_condition*expression calculation form when the expression can be infinite or nan in any situation where the logical_condition is false.
To deal with this, you will either need to use the symbolic toolbox piecewise() function, or you will need to write a small function that uses if or logical indexing so that you do not calculate the integral in the b ~= 0 case.
3 commentaires
Walter Roberson
le 1 Sep 2019
Nz2=piecewise( sym(t1n(j))>0 & sym(t1d(j))==0,integral(), sym(t1n(j))>0 & sym(t1d(j)) > 0, 1, 0);
The extra 0 is needed for the cast where t1n(j) <= 0 or t1n(j) < 0
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