Missing input in the argument

2 visualizzazioni (ultimi 30 giorni)
Mathew
Mathew il 15 Feb 2025
Risposto: Walter Roberson il 15 Feb 2025
Ran in:
clear all; close all;
a=0.35; M=1; r0=0; r1=0; p=0.5; d=0.5; Z=100;
K=@(t,p,Z,d,r1) (p*Z-d-exp(-t))*r1;
P = 0:0.1:10;
for i = 1:numel(P)
V(i) = r0 + ((1-a)./M)*integral(K,0,P(i))+ (a./M)*integral(K,0,P(i));
r1=v(i);
end
Not enough input arguments.

Error in solution>@(t,p,Z,d,r1)(p*Z-d-exp(-t))*r1 (line 3)
K=@(t,p,Z,d,r1) (p*Z-d-exp(-t))*r1;

Error in integralCalc>midpArea (line 416)
fx = f(x);

Error in integralCalc (line 66)
q = midpArea(FUN,A,B,opstruct);

Error in integral (line 87)
Q = integralCalc(fun,a,b,opstruct);
plot(P,V),grid

Accedi per rispondere a questa domanda.

Risposta accettata

Walter Roberson
Walter Roberson il 15 Feb 2025
K=@(t,p,Z,d,r1) (p*Z-d-exp(-t))*r1;
K is defined needing 5 input parameters.
V(i) = r0 + ((1-a)./M)*integral(K,0,P(i))+ (a./M)*integral(K,0,P(i));
integral() calls the given function with exactly one input parameter. p, Z, d, r1 are all undefined as far as K is concerned.
If you had defined
K=@(t) (p*Z-d-exp(-t))*r1;
then the existing numeric values of p, Z, d, and r1 would be "captured" by the function handles, and everything would be fine.

Più risposte (0)

Categorie

Scopri di più su Programming in Help Center e File Exchange

Tag

Prodotti


Release

R2024b

Community Treasure Hunt

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

Start Hunting!

Translated by