How i can use function handle in another function handle?

20 Nov 2018
1 Answer
Updated 7 Dec 2018
6 Views (30 days)

0 votes

f1 = @(x, y1, y2, y3) y2;
f2 = @(x, y1, y2, y3) y3;
f3 = @(x, y1, y2, y3) -0.5*y1*y3;
ff1 = @(xxx, yy1, yy2) yy2;
ff2 = @(xxx, yy1, yy2) -.5*f1.*yy2;
When i run the code i get the error
Undefined operator '*' for input arguments of type 'function_handle'.
I need to use f1 in ff2

Sign in to answer this question.

Answers (1)

Stephen23
Stephen23 on 20 Nov 2018
Edited: Stephen23 on 20 Nov 2018

0 votes

"How i can use function handle in another function handle?"
Exactly like any other time you use a function, you have to call it with all of its required input arguments. E.g.:
>> f1 = @(x,y) 2*x + sqrt(y);
>> f2 = @(a,b) f1(a,b) - 1;
>> f2(2,4)
ans = 5

7 Comments
Show 5 older comments Hide 5 older comments

Guillaume
Guillaume on 20 Nov 2018
Edited: Guillaume on 20 Nov 2018
So to be explicit,
ff2 = @(xxx, yy1, yy2) -.5*f1(xxx, yy1, yy2).*yy2;
While we're at it, I would define ff1 as:
ff1 = @(~, ~, yy2) yy2;
to make it clear that the fact it doesn't use the first two inputs is intended.
Mohammad Qasem
Mohammad Qasem on 20 Nov 2018
thank you
but if i need to use y1 what i should do as follow
f1 = @(x, y1, y2, y3) y2; %% f^
f2 = @(x, y1, y2, y3) y3; %% f^^
f3 = @(x, y1, y2, y3) -0.5*y1*y3; %% f^^^
i need to use y1 in f22 as follow but it does not work
ff1 = @(xxx, yy1, yy2) yy2; %% theta ^
ff2 = @(xxx, yy1, yy2) -0.5.*y1.*yy2; %% theta^^
Stephen23
Stephen23 on 20 Nov 2018
"i need to use y1 in f22 as follow but it does not work"
y1 either needs to be defined as an input argument, or it needs to exist in the workspace where you create that anonymous function. Only you can decide which of these is appropriate for your situation.
What you cannot do is refer to a variable that simply does not exist anywhere, which is what you are currently trying to do.
Mohammad Qasem
Mohammad Qasem on 20 Nov 2018
could you please find the solution for me because i don't have an experiance in MATLAB?
Stephen23
Stephen23 on 21 Nov 2018
Edited: Stephen23 on 21 Nov 2018
"could you please find the solution for me because i don't have an experiance in MATLAB?"
Of course, I am happy to help you. You just need to tell us where y1 is defined, either
  1. in the workspace where the anonymous function is created, or
  2. as an input argument to the anonymous function.
I cannot decide this for you. Only you can decide this, becuse only you know the algorithm that you are trying to encode. Once you tell us which of 1. or 2. you need for the variable y1, then we can show you how to write that using MATLAB.
Stephen23
Stephen23 on 22 Nov 2018
@Mohammad Qasem: you forgot to answer my question: is the answer 1. or 2. ?
Mohammad Qasem
Mohammad Qasem on 27 Nov 2018
Thank you very much
I found the solution

Sign in to comment.

Categories

Find more on Function Handles in Help Center and File Exchange

Tags

Asked:

Mohammad Qasem
Mohammad Qasem
on 20 Nov 2018

Reopened:

Guillaume
Guillaume
on 7 Dec 2018

Community Treasure Hunt

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

Start Hunting!