extracting rows based on string in first column (Should be fairly simple ... not for me apparently)

1 Ansicht (letzte 30 Tage)
mashtine
mashtine am 23 Apr. 2014
Bearbeitet: per isakson am 23 Apr. 2014
Hey everyone,
I have a large cell array with 8 columns (8758 x 8 cell). The first containing time in the string format of '2010-01-01 00:00'. I am trying to extract all the rows where the timestamp is '01' at the 9th and 10th characters.
I know this is relatively basic but cannot get the indexing right. I had this so far:
rows = find(a{:,1}(9,10) == '01')
extrdata = a{rows,1};
I have also tried the following but get the following error:
>> a( a{:,1}(9:10) == '01' , : )
Bad cell reference operation.
If I were to index just for one row then it works but my indexing is wrong to work for all rows:
>> a{1,1}(9:10)
ans =
01
Thanks for any help!

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

per isakson
per isakson am 23 Apr. 2014
Bearbeitet: per isakson am 23 Apr. 2014
Problem: extracting first day of each month from one year of hourly data (two missing hours). One alternative is to compare day number
%%Create sample data
vec = datevec( '2010-01-01 00:00', 'yyyy-mm-dd HH:MM' );
num = datenum( vec(1),vec(2),vec(3),[vec(4)+transpose([0:8757])],0,0 );
str = datestr( num, 'yyyy-mm-dd HH:MM' );
cac = cat( 2, num2cell( str, 2 ), num2cell( ones(8758,7) ) );
%%find first day of each month
vec = datevec( cac(:,1), 'yyyy-mm-dd HH:MM' );
is1 = vec(:,3)==1;
ix1 = find( is1 );
%%extract rows
selection = cac( is1, : );
or comparing characters
str = char( cac(:,1) );
cel = num2cell( str( :, 9:10 ), 2 );
is1 = strcmp( '01', cel );
IMO: Neither of these two solutions is simple

Weitere Antworten (0)

Kategorien

Mehr zu Logical finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by