matrix dimensions must agree.

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Onur Totos
Onur Totos on 7 Jan 2019
Commented: Rik on 8 Jan 2019
Hi everyone, I hope you all are doing very well. I have been working on Matlab about taylor series recently, however, I usually get an error about matrix dimensions. Line 17 which starts with y1=y0 + ... . So can anybody help me out? thank you from now!
clc;
clear;
clear all;
x= -2:0.5:2;
dx=0.5;
yy=sin(x);
a=1;
b = diff(yy)/dx;
b1= diff(diff(yy)/dx)/dx;
b2= diff(diff(diff(yy)/dx)/dx)/dx;
b3= diff(diff(diff(diff(yy)/dx)/dx)/dx)/dx;
b4= diff(diff(diff(diff(diff(yy)/dx)/dx)/dx)/dx)/dx;
b5= diff(diff(diff(diff(diff(diff(yy)/dx)/dx)/dx)/dx)/dx)/dx;
b6= diff(diff(diff(diff(diff(diff(diff(yy)/dx)/dx)/dx)/dx)/dx)/dx)/dx;
b7= diff(diff(diff(diff(diff(diff(diff(diff(yy)/dx)/dx)/dx)/dx)/dx)/dx)/dx)/dx;
y0= sin(a);
y1= y0 + b.*(x-a);
y2= y0 + b.*(x-a) + b1/factorial(2).*((x-a)^2);
y3= y0 + b.*(x-a) + b1/factorial(2).*((x-a)^2) + b2/factorial(3).*((x-a)^3);
y4= y0 + b.*(x-a) + b1/factorial(2).*((x-a)^2) + b2/factorial(3).*((x-a)^3) + b3/factorial(4).*((x-a)^4);
y5= y0 + b.*(x-a) + b1/factorial(2).*((x-a)^2) + b2/factorial(3).*((x-a)^3) + b3/factorial(4).*((x-a)^4) + b4/factorial(5).*((x-a)^5);
y6= y0 + b.*(x-a) + b1/factorial(2).*((x-a)^2) + b2/factorial(3).*((x-a)^3) + b3/factorial(4).*((x-a)^4) + b4/factorial(5).*((x-a)^5) + b5/factorial(6).*((x-a)^6);
y7= y0 + b.*(x-a) + b1/factorial(2).*((x-a)^2) + b2/factorial(3).*((x-a)^3) + b3/factorial(4).*((x-a)^4) + b4/factorial(5).*((x-a)^5) + b5/factorial(6).*((x-a)^6) + b6/factorial(7).*((x-a)^7);
y8= y0 + b.*(x-a) + b1/factorial(2).*((x-a)^2) + b2/factorial(3).*((x-a)^3) + b3/factorial(4).*((x-a)^4) + b4/factorial(5).*((x-a)^5) + b5/factorial(6).*((x-a)^6) + b6/factorial(7).*((x-a)^7) + b7/factorial(8).*((x-a)^8);
  8 Comments
Jan
Jan on 8 Jan 2019
@Onur Totos: Please use the code style to improve the readability of your code in the forum.
Rik
Rik on 8 Jan 2019
There are a few problems here:
  1. you insist on numbered variables
  2. you did not account for diff changing the size of your vector
  3. you are still using clear all, instead of clear variables

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Accepted Answer

nanren888
nanren888 on 7 Jan 2019
Edited: per isakson on 7 Jan 2019
>> whos
Name Size Bytes Class Attributes
a 1x1 8 double
b 1x8 64 double
b1 1x7 56 double
b2 1x6 48 double
b3 1x5 40 double
b4 1x4 32 double
b5 1x3 24 double
b6 1x2 16 double
b7 1x1 8 double
dx 1x1 8 double
x 1x9 72 double
yy 1x9 72 double
The result of diff is shorter, being always the difference between elements.
sometimes;
something = [0,diff(somethingElse)]
can be useful.
  1 Comment
Onur Totos
Onur Totos on 7 Jan 2019
Thank you very much for your respons. It makes sense. However, I am tired of dealing with this problem since the morning. So what exactly do I have to do for fixing this problem? Regards

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