Help vectors size doesn't match...why?
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This is my code to evaluate Lagrange where x_in are the given interpolation points and x_out is suppose to be f(x_in), but it keeps saying x_in and x_out don;t have the same vector length
x = -1:50;
y = 1.0 ./ (1+9*x.^2);
x_in=linspace(-1,1,100);
x_out=(1.0) ./ (1+9*(x_in).^2);
y_out=make_Ln(x,x_in,x_out);
plot(x,y,':',x_in,y_out,'*');
title('Lagrange Interpolation:x_in=linspace(-1,1,100)')
legend('y','Interpolation');
figure;
6 Commenti
Zoltán Csáti
il 23 Ott 2014
Show your make_Ln function.
Guillaume
il 23 Ott 2014
And also give us the exact error message you get, particularly the bit that shows you the failing instruction.
cakey
il 23 Ott 2014
cakey
il 23 Ott 2014
cakey
il 23 Ott 2014
cakey
il 23 Ott 2014
Modificato: Andrei Bobrov
il 24 Ott 2014
Risposta accettata
Julia
il 23 Ott 2014
Hi,
x_in and x_out have the same length (100).
x and y are shorter (52), but I don't know if this bothers your function make_Ln().
I suppose y_out and x_in do not match, but without knowing your function make_Ln() I cannot say more.
To plot x_in and x_out is no problem
plot(x,y,':',x_in,x_out,'*')
7 Commenti
cakey
il 23 Ott 2014
Your problem is the definition of L. In the last loop you create a vector y with length 52 (but you need 100). This is because of the second dimension of L (which is only 52).
plot(x,y,':',x_in(1:52),y_out,'*');
works. But I don't think you can use that plot ... I don't get much information out of it.
cakey
il 23 Ott 2014
cakey
il 23 Ott 2014
Julia
il 24 Ott 2014
I guessed that you changed the name, otherwise it would give you a completely different error ;)
How to find the length/size of a matrix or vector:
>> x=-1:50;
>> length(x)
ans =
52
>> [m,n]=size(x)
m =
1
n =
52
Patrik Ek
il 24 Ott 2014
Cakey i think that you should take a look at the debugger. You can easily set breakpoints in the code and check dimensions, values, etc. It is also possible to set a breakpoint if error. Both under the editor menu under breakpoints, or simply by typing dbstop error. This can be of help in the future and also to make it easier to find solutions of problems.
cakey
il 16 Nov 2014
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