Concatenate Columns of Cells
1 vue (au cours des 30 derniers jours)
Afficher commentaires plus anciens
Hi,
I have asked this question earlier, but I think I have though of how to better phrase it.
Columns 1 through 5
'01/04/2004' [ 0] [ 0] [ 0] [ 0]
'01/04/2004' [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] '02/04/2004' [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
'01/04/2004' [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] '03/04/2004' [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
'01/04/2004' [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] '03/04/2004' [ 0] [ 0]
[ 0] [ 0] '03/04/2004' [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'
There is only ever one date per row, and I want to concatenate them into one column, removing all the zeros.
I think it is difficult because of the cell/date format that I have going on. I've managed to make one very long vector of it all, and get rid of the zeros but lose the order they are in.
Any thoughts would be very much appreciated! Or any reading, or hints even...
Thanks!
1 commentaire
Réponses (3)
Jan Orwat
le 2 Juin 2015
Hello, I can see that date is of type string in your cell array and non-date fields are zeros (non-string). Assuming that in every row there is just one date you can get those like that:
c = yourCell.'; % rows becomes columns, columns becomes rows - this is for MATLAB indexing purposes
datesOnly = c(cellfun(@isstr,c));
This method will delete those rows which doesn't contain dates at all. It won't work properly if row contain more than one date because it gets all dates from array row by row.
2 commentaires
Jan Orwat
le 2 Juin 2015
Hope this will help:
>> a = {
[ 0] [ 0] '20/7/2014'
[ 0] '23/7/2014' [ 0]
'26/7/2014' [ 0] [ 0]
[ 0] [ 0] [ 0]
'21/7/2014' [ 0] [ 0]};
>> [r,c] = find(cellfun(@isstr,a));
>> dates = accumarray(r,r+(c-1)*size(a,1),[],@(x)a(x),{'missing'})
dates =
'20/7/2014'
'23/7/2014'
'26/7/2014'
'missing'
'21/7/2014'
>> % or:
>> dates = accumarray(r,r+(c-1)*size(a,1),[],@(x)a(x),{0})
dates =
'20/7/2014'
'23/7/2014'
'26/7/2014'
[0]
'21/7/2014'
Thomas Koelen
le 2 Juin 2015
I think this does what you want :)
a={'20/7/2014' 0 0; 0 '23/7/2014' 0; 0 0 '26/7/2014'};
j=1;
for i=1:size(a,1)*size(a,2)
if a{i}~=0
x(j)=i;
j=j+1;
end
end
for k=1:j-1
anew{k,1}=a{x(k)};
end
anew
a =
'20/7/2014' [ 0] [ 0]
[ 0] '23/7/2014' [ 0]
[ 0] [ 0] '26/7/2014'
anew =
'20/7/2014'
'23/7/2014'
'26/7/2014'
1 commentaire
Jan Orwat
le 2 Juin 2015
Hi Thomas, in your example, when you change a:
>> a={0 0 '20/7/2014'; 0 '23/7/2014' 0; '26/7/2014' 0 0}
a =
[ 0] [ 0] '20/7/2014'
[ 0] '23/7/2014' [ 0]
'26/7/2014' [ 0] [ 0]
it gives:
>> anew
anew =
'26/7/2014'
'23/7/2014'
'20/7/2014'
so it looks like it does not work.
Andrei Bobrov
le 2 Juin 2015
d = { '01/04/2004' [ 0] [ 0] [ 0] [ 0]
'01/04/2004' [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] '02/04/2004' [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] [ 0] [ 0] '04/04/2004' [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
'01/04/2004' [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] '03/04/2004' [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
'01/04/2004' [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] '03/04/2004' [ 0] [ 0]
[ 0] [ 0] '03/04/2004' [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] [ 0]
[ 0] [ 0] [ 0] [ 0] '05/04/2004'};
[ii,jj] = find( cellfun('ischar',d));
k = sortrows([ii,jj],1);
out = d(sub2ind(size(d),k(:,1),k(:,2)));
2 commentaires
Stephen23
le 22 Déc 2021
The supported backward compatibility** options are described here:
and the correct syntax is:
cellfun('isclass',C,'char')
** It is worth nothing that these are more efficient than supplying a function handle.
Voir également
Catégories
En savoir plus sur Loops and Conditional Statements dans Help Center et File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!