getting rid of a loop

1 vue (au cours des 30 derniers jours)
joseph Frank
joseph Frank le 25 Juil 2012
Hi,
I have a cell array X which has around 1 million rows. each row has a 1x18 cell in it. I want to select columns 4,5,10,18 from each row. To do so I am running a loop v = regexp( X, ',', 'split'); ncol=[4 5 10 18];%numeric columns v2=nan(length(v),length(ncol));% numeric variables empty matrix
for j=1:length(v)
v0=[v{j,1}];
v2(j,1:length(ncol))=str2double(v0(1,ncol));
end
end
is it possible to avoid the loop and select columns 4,5,10,18 of each row of X?
  1 commentaire
Image Analyst
Image Analyst le 26 Juil 2012
Edit your question. Highlight the code part of the question. Click the "{} Code" box above to format it so that it looks like a regular program.

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Réponses (2)

Nirmal
Nirmal le 25 Juil 2012
Modifié(e) : Nirmal le 25 Juil 2012
b=[V(:,4) V(:,5) V(:,10) V(:,18)]
b will be what you want.
  2 commentaires
joseph Frank
joseph Frank le 25 Juil 2012
No,
It is giving an error that index exceeds Matrix dimenssions.
V has only one column and in each row of this column I have 1x18 cells
Nirmal
Nirmal le 25 Juil 2012
change that V with X. I misread.

Connectez-vous pour commenter.

joseph Frank
joseph Frank le 26 Juil 2012
Modifié(e) : joseph Frank le 26 Juil 2012
Thanks Nirmal for your efforts but still it doesn't work. Just in case my question wasn't clear I will rephrase it here
X has the following format:is 00846UAB7,A.GB,A,07/01/2002,11:10:26,T,500000,101.84,2.21429,000,@,,,101.84,2.21429,101.84,2.21429,101.84 v = regexp( X, ',', 'split');
to obtain v=
<1x18 cell>
... for 1 million rows.
I want a matrix v2 that consists of columns 4 ,5,10 and 18 without running a loop/ I used in my initial codes v2=str2double(v0(1,ncol)); where v0 is a row obtained as :
for j=1:length(v)
v0=[v{j,1}];
v2(j,1:length(ncol))=str2double(v0(1,ncol));
end
end
from the loop descibed in the intial post;

Catégories

En savoir plus sur Data Type Conversion dans Help Center et File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by