Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm using importdata to extract ASCII files as in the example

u(1,1) = importdata('folder/file1_1.asc' ' ', 9)
u(1,2) = importdata('folder/file1_2.asc' ' ', 9)
u(2,1) = importdata('folder/file2_1.asc' ' ', 9)

and so on. Now I have to extract the data. Everything is all right if I do something like

a = u(1,1).data(:,2)

but if instead I do

a(1,1) = u(1,1).data(:,2)

then MATLAB returns an error (Subscripted assignment dimension mismatch) and doesn't run. I should extract 272 data sets, therefore I'm doing as above. Is this a bug? What should I do? Thanks

share|improve this question
1  
is there a reason why you do not "accept" any answer for your questions? –  Shai May 22 '13 at 14:15

1 Answer 1

After a = u(1,1).data(:,2), what is size(a)? I'm betting it's not [1 1]! You are trying to put an array, i,e, data(:,2) into a single element, i.e. a(1,1). Perhaps you want to put it in a cell array rather?

a{1,1} = u(1,1).data(:,2)

Otherwise something like this (I'm guessing at your data structure here though)

a(1:272,1) = u(1,1).data(:,2)
share|improve this answer
    
I tried them both. a{1,1} = u(1,1).data(:,2) returns cell contents assignment to a non-cell array object, while a(1:1001,1) = u(1,1).data(:,2) returns subscripted assignment dimension mismatch. What is strange is that if I type a = u(1,1).data there is no problem: a becomes an array with the elements I need. –  ragnar Apr 17 '13 at 12:43
    
Yes but what is size(u(1,1).data(:,2)), unless it is [1001, 1] then it's no surprise a(1:1001,1) = u(1,1).data(:,2) didn't work. You have to have the same dimensions on both sides of an assignment! As for the error with the cell matrix, make sure you clear a first. Try this: clear; u(1,1).data = rand(10) a{1,1}= u(1,1).data(:,2); b(1:10, 1) = u(1,1).data(:,2) and you'll see that both methods actually do work –  Dan Apr 17 '13 at 12:54

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.