Matrix dimension does not agree when using .*

1 Ansicht (letzte 30 Tage)
Sena Ece Uzungil
Sena Ece Uzungil am 1 Apr. 2019
Beantwortet: Kelly Kearney am 1 Apr. 2019
Our code is calculating Taylor polynomials. We are sure that the problem is about P1 because program is plotting PO and f(x). We would really appreciate if anyone can solve our problem.
clc
clear all
close all
h = 0.01; % step size
X = -pi/8:h:7*pi/8; % domain
f=@(X) cot(X); % range
a=5*pi/8
Z1=@(X) diff(cot(X)) %first derivative
Z2=@(X) diff(cot(X),2) ; %second derivative
Z3=@(X) diff(cot(X),3) ; %third derivative
P0=@(X) f(a)*ones(size(X))
P1=@(X) f(a) + Z1(a).*(X-a);
P2=@(X) P1 + Z2(a) ./ factorial(2).*((X-a).^2);
P3=@(X) P2 + Z3(a) ./ factorial(3).*((X-a).^3);
xlim([0.1 3])
ylim([-2.5 2.5])
hold on
plot(X,f(X),'k','Linewidth',2)
plot(X,P0(X),'r','Linewidth',2)
plot(X,P1(X),'g-.','Linewidth',2)
plot(X,P2(X),'b--','Linewidth',2)
plot(X,P3(X),'m:','Linewidth',2)
The error we received:
Error using .*
Matrix dimensions must agree.
Error in Untitled>@(X)f(a)+Z1(a).*(X-a)
Error in Untitled (line 26)
plot(X,P1(X),'g-.','Linewidth',2)

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Kelly Kearney
Kelly Kearney am 1 Apr. 2019
When you calculate
Y = diff(X,n)
where X is a vector, Y will have length length(X)-n. So you need to adjust X accordingly when plotting, e.g.
plot(X,f(X),'k','Linewidth',2)
plot(X,P0(X),'r','Linewidth',2)
plot(X(1:end-1),P1(X),'g-.','Linewidth',2)
plot(X(1:end-2),P2(X),'b--','Linewidth',2)
plot(X(1:end-3),P3(X),'m:','Linewidth',2)

Weitere Antworten (0)

Kategorien

Mehr zu Mathematics finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by