is:Conversion to logical form function_handle is not possible.
Afficher commentaires plus anciens
Hi I want to do a comparison with function handle. For example : Fun2=@(x) (4*x+1) While @(x)Fun2(x) >3 do something
The error is:Conversion to logical form function_handle is not possible. Thank a lot
Réponse acceptée
Walter Roberson
le 10 Mai 2020
while Fun2(x) > 3
and be sure to update x inside the loop
2 commentaires
Tara Behmanesh
le 10 Mai 2020
Walter Roberson
le 10 Mai 2020
Modifié(e) : Walter Roberson
le 10 Mai 2020
The message is correct. You do not define a or b before you try to use them in
while fun2(e,a,b)>10^(-6)||fun2(e,a,b)<-10^(-6)
Reminder: when you use
fun1=@(a,b)(b-a)./2;
then that does not define variables a or b: it defines only fun1 and it defines fun1 as being an anonymous function that accepts two positional parameters that for convenience are referred to as a and b.
fun1=@(a,b)(b-a)./2;
is coded sort of like
struct( 'formula', #(_Parameter{2}-_Parameter{1})./2)# , 'ParameterNames', {'a', 'b'})
in the sense that the execution of the code depends only on parameter position and the names of the parameters are (nearly) only used for display purposes.
Plus de réponses (0)
Catégories
En savoir plus sur Programming dans Centre d'aide et File Exchange
le 10 Mai 2020
le 10 Mai 2020
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
