??? Index exceeds matrix dimensions. please help me

1 visualizzazione (ultimi 30 giorni)
matpan community
matpan community il 2 Mar 2013
[m n]=size(handles.data1);%menentukan ukuran citra
for o=1:m
for p=1:n
if o<0
o=1;
end
if p<0
p=1;
end
[d c l]=size(handles.data1);
masuk_enkripsi=double(handles.data1(p:p+d-1,o:o+c-1,:));
??? Index exceeds matrix dimensions.
Error in ==> enkripsi>btn_enkripsi_Callback at 148
masuk_enkripsi=double(handles.data1(p:p+d-1,o:o+c-1,:));
  2 Commenti
matpan community
matpan community il 9 Mar 2013
it is not Using lowercase and uppercase but "the letter o < the number 0" :)
ChristianW
ChristianW il 11 Mar 2013
What are you trying to do in this line:
masuk_enkripsi=double(handles.data1(p:p+d-1,o:o+c-1,:));

Accedi per commentare.

Accedi per rispondere a questa domanda.

Risposta accettata

ChristianW
ChristianW il 2 Mar 2013
With your image height d and if p gets p=2, then you are trying to address with (p+d-1) the (d+1) pixel. Thats not possible.
  2 Commenti
ChristianW
ChristianW il 3 Mar 2013
Yes, I've got an infinite amount of solutions. I'll rub my crystal ball for visions regarding the purpose of your code.

Accedi per commentare.

Più risposte (2)

Jan
Jan il 4 Mar 2013
It is confusing to change the loop counter of A FOR loop inside the loop.
Using lowercase and uppercase Oh's as names of variables is confusing also: "if o<0" looks funny, but is to hard to read.
I confirm, that CristianW's answer is exhaustive: Obviously either p+d-1 and/or d+1 exceed the available size. But it is impossible to guess what you want to do instead.
  2 Commenti
matpan community
matpan community il 11 Mar 2013
it is not Using lowercase and uppercase but "the letter o < the number 0" :)
Walter Roberson
Walter Roberson il 11 Mar 2013
But no explanation for what you think the code should be doing??

Accedi per commentare.

Walter Roberson
Walter Roberson il 11 Mar 2013
In your line
[m n]=size(handles.data1);%menentukan ukuran citra
you are using size() as if you expect handles.data1 to be two-dimensional. But later you have
[d c l]=size(handles.data1);
which is expecting handles.data1 to be 3 dimensional. If it is 3 dimensional then when you ask for its size() using only two outputs (e.g., [m n]) then size() will set the second output equal to the product of the second and third dimensions -- so although m would be the same as the later d, n would be the product of c and l. This is going to lead to problems when you do your looping over "n" and try to use that value as the index to the second dimension.

Categorie

Scopri di più su Matrix Indexing in Help Center e File Exchange

Tag

Community Treasure Hunt

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

Start Hunting!

Translated by