how do i fix inline function error?

5 vues (au cours des 30 derniers jours)
Ann Lee
Ann Lee le 1 Avr 2022
Commenté : Ann Lee le 1 Avr 2022
i m trying to make matrix (4x16)
in forloop, three modifies of 'a' are series (1 to infinite)
it works untill i added 4th a series (which means inline function. i think this line makes error)
i should add inline function and show series's sum to 160 on 4th row in matrix A
and I got this error
>> work5(0.5)
error: sum: wrong type argument 'class'
function A=work5(x)
m=1;
for k=10:10:160
n=1:k;
a= sum(nthroot(n.^2,5)./((3.^n).*(n+1)));
A(1,m)=a;
a= sum((3*n.^2+n)/(2*n.^4+nthroot(n,2)));
A(2,m)=a;
a= sum((nthroot(37,2)*n.^3)/((2*n.^3)+(3*n.^2)));
A(3,m)=a;
a= sum(inline('log(n)./(n.^2)','n'));
A(4,m)=a;
m=m+1;
end

Connectez-vous pour répondre à cette question.

Réponse acceptée

Riccardo Scorretti
Riccardo Scorretti le 1 Avr 2022
Ran in:
Hi,
you can try this:
work5(0.5)
ans = 4×16
0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.2361 0.0183 0.0047 0.0021 0.0012 0.0008 0.0005 0.0004 0.0003 0.0002 0.0002 0.0002 0.0001 0.0001 0.0001 0.0001 0.0001 2.6037 2.8014 2.8760 2.9152 2.9394 2.9558 2.9677 2.9766 2.9837 2.9893 2.9939 2.9978 3.0011 3.0040 3.0064 3.0086 0.6185 0.7415 0.7927 0.8215 0.8401 0.8532 0.8630 0.8706 0.8767 0.8817 0.8859 0.8895 0.8926 0.8952 0.8976 0.8997
function A=work5(x)
m=1;
fun = @(n) log(n)./(n.^2); % ***
for k=10:10:160
n=1:k;
a= sum(nthroot(n.^2,5)./((3.^n).*(n+1)));
A(1,m)=a;
a= sum((3*n.^2+n)/(2*n.^4+nthroot(n,2)));
A(2,m)=a;
a= sum((nthroot(37,2)*n.^3)/((2*n.^3)+(3*n.^2)));
A(3,m)=a;
% a= sum(inline('log(n)./(n.^2)','n')); % ***
a = sum(fun(n));
A(4,m)=a;
m=m+1;
end
end
The problem seems to be related with the deprecated function inline.
  1 commentaire
Ann Lee
Ann Lee le 1 Avr 2022
thank you it worked!!! have a nice day!!!

Connectez-vous pour commenter.

Plus de réponses (0)

Catégories

En savoir plus sur Function Creation dans Help Center et File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by