Converting Anonymous Function to a Symbolic Function

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Keenan Descartin
Keenan Descartin le 11 Mar 2019
Commenté : Steven Lord le 30 Déc 2023
Hello,
I have an anonymous function that looks like this (v=velocity, t=time):
v = @(t) exp(1).^(sin(t)) - 1;
and I want to turn it into a symbolic function. How can I achieve this?

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Réponse acceptée

Adam Danz
Adam Danz le 11 Mar 2019
Modifié(e) : Adam Danz le 28 Mar 2019
Is this what you're looking for?
v = @(t) exp(1).^(sin(t)) - 1;
sym(v)
%ans =
%(3060513257434037/1125899906842624)^sin(t) - 1
% where 3060513257434037/1125899906842624 is an approximation of exp(1)
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Josué Jiménez
Josué Jiménez le 13 Nov 2020
I love you
Walter Roberson
Walter Roberson le 13 Nov 2020
Or equivalently,
sym t
v(t)
Caution: not everything can be converted these ways, and not everything will convert the way you expect.

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Plus de réponses (2)

Walter Roberson
Walter Roberson le 23 Avr 2021
Ran in:
v = @(t) exp(1).^(sin(t)) - 1;
str2sym(char(v)) %r2017b or later
ans = 
  1 commentaire
Ryan
Ryan le 19 Oct 2021
Modifié(e) : Ryan le 19 Oct 2021
doesnt work with nested functions ... :(
ie
www = @(t) t+1
yyy = @(t) www(t)+1

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madhan ravi
madhan ravi le 29 Mar 2019
Modifié(e) : madhan ravi le 29 Mar 2019
This turns the function handle argument as symbolic variable as well as the function handle into a symbolic function:
V=func2str(v);
z=regexp(V,'[^()]*','match');
syms(regexp(z{2},'\,','split'))
str2sym(regexp(V,'(?<=[\)])\S*','match')) % requires 2017b or later
sym(regexp(V,'(?<=[\)])\S*','match','once')) % prior to 2017b (haven't tested)
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Walter Roberson
Walter Roberson le 30 Déc 2023
You cannot convert calls to integral() into symbolic calls -- not unless you do text manipulation.
I recommend that you give up on this.
Steven Lord
Steven Lord le 30 Déc 2023
Ran in:
The problem occurs well before the sym call.
%at = 1;
%bt = 1;
w = @(k,T) log(1 - exp(-k.^2 + 1/T)).*(at./k + bt*k)
w = function_handle with value:
@(k,T)log(1-exp(-k.^2+1/T)).*(at./k+bt*k)
try % Using try/catch so I can evaluate other code later in this comment
w(1, 2)
catch ME
fprintf("MATLAB threw the following error:\n\n%s\n", ME.message)
end
MATLAB threw the following error: Unrecognized function or variable 'at'.
Neither at nor bt are defined before the anonymous function w is defined, and neither of those identifiers are specified in the list of input arguments. Therefore they are left undefined. When you try to evaluate the anonymous function, MATLAB checks to see if there are functions named at and bt that can be called with 0 input arguments; if there are, it can call them and use their output in the anonymous function.
Since there are no such functions, MATLAB complains that it cannot evaluate the anonymous function.
If all the operations you perform in your anonymous function were supported for symbolic variables, you could just evaluate the anonymous function.
f = @(x) sin(x)+cos(1/x)-exp(x^2);
syms t
ft = f(t) % sin, cos, exp, /, and ^ are all defined for sym objects
ft = 
But if you know you're going to want to integrate symbolically, don't call the numeric integration function integral and then convert the result to a symbolic expression. Call the symbolic integration function int instead.

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