How to use symsum function inside a function

11 views (last 30 days)
Chandra Sekhar Kommineni
Chandra Sekhar Kommineni on 9 Jan 2022
Commented: Learns Du on 24 Dec 2024
Below I'm trying to write a small function, but I'm getting following error message
Unable to create a symbolic variable 'j' by using 'syms' inside a MATLAB function because 'j' is an existing function name, class name, method name, and so on. Use 'sym' instead.
the code is working outside the function module, I don't know the exact reason behind this? could someone explain me how to rectify this?
Thank yyou so much in advance
function [Area sigma]= Fractalblock(L0,t0,Rt,N,T);
syms j
Area= (L0*t0*symsum((4^(j+1))*((0.5)^j)*(Rt^j),j,0,N-1))-((t0^2)*symsum(2^(2*j+1)*(Rt^((2*j)-1)),j,1,N-1))-((t0^2)*symsum(2^(2*j+2)*Rt^(2*j),j,0,N-1));
sigma= area/T^2;
end

Sign in to answer this question.

Accepted Answer

Walter Roberson
Walter Roberson on 9 Jan 2022
I have not seen that message before, but the work-around is
function [Area sigma]= Fractalblock(L0,t0,Rt,N,T);
j = sym('j');
Area= (L0*t0*symsum((4^(j+1))*((0.5)^j)*(Rt^j),j,0,N-1))-((t0^2)*symsum(2^(2*j+1)*(Rt^((2*j)-1)),j,1,N-1))-((t0^2)*symsum(2^(2*j+2)*Rt^(2*j),j,0,N-1));
sigma= area/T^2;
end
You could have the same problem for i, j, pi, and eulergamma and possibly other names
syms does a hidden assignment to a variable, and when there are hidden assignments to a variable name that happens to be the same as the name of a function, then MATLAB is permitted to treat the name as a function, because MATLAB does static analysis instead of dynamic analysis.

More Answers (0)

Categories

Find more on Operations on Strings in Help Center and File Exchange

Tags

Products


Release

R2021b

Community Treasure Hunt

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

Start Hunting!