finding the increase in values
Show older comments
suppose i have a column matrix a=( 2 2 2 3 3 3 5 5 5 4 4 3 3 3 2 2 3 3 3 4 4 4 5 5 5 4 4 3 3 )
i want to find the constant and increasing elements and put them separately in different columns of a matrix. eliminating the decreasing elements.
output(:,1) = ( 2 2 2 3 3 3 5 5 5 )
output(:,2) = (2 2 3 3 3 4 4 4 5 5 5 )
Accepted Answer
a = [2;2;2;3;3;3;5;5;5;4;4;3;3;3;2;2;3;3;3;4;4;4;5;5;5;4;4;3;3]
idx = [true;diff(a)~=0];
idy = diff(a(idx))>0;
idd = diff([0;idy;0]);
idb = find(idd>0);
ide = find(idd<0);
ids = cumsum(idx);
fun = @(b,e)a(ismember(ids,b:e));
C = arrayfun(fun,idb,ide,'uni',0);
And checking the output:
>> C{:}
ans =
2
2
2
3
3
3
5
5
5
ans =
2
2
3
3
3
4
4
4
5
5
5
2 Comments
johnson saldanha
on 6 Dec 2018
Guillaume
on 6 Dec 2018
You're certainly not getting this error with the exact code that stephen gave. Of course, if your actual vector is a column vector instead of a row vector you either need to use vertical concatenation (i.e. use ; instead of , resulting in [true; diff(a)~=0]) or transpose your input into a row vector (i.e. [true, diff(a.')~=0]). First option is more efficient.
More Answers (1)
johnson saldanha
on 6 Dec 2018
0 votes
10 Comments
johnson saldanha
on 6 Dec 2018
Stephen23
on 6 Dec 2018
@johnson saldanha: please upload some data that shows this behavior.
johnson saldanha
on 6 Dec 2018
johnson saldanha
on 6 Dec 2018
johnson saldanha
on 6 Dec 2018
Edited: johnson saldanha
on 6 Dec 2018
johnson saldanha
on 6 Dec 2018
johnson saldanha
on 6 Dec 2018
See my edited answer, it should work now. For your .xlsx data it gives this:
>> C{:}
ans =
11.250
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
13.750
13.750
13.750
13.750
13.750
13.750
13.750
13.750
13.750
ans =
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
12.500
13.750
13.750
13.750
13.750
13.750
13.750
15.000
15.000
15.000
15.000
15.000
15.000
15.000
15.000
15.000
15.000
And for your .csv data it gives this:
>> C{:}
ans =
1.2500
1.2500
2.5000
3.7500
3.7500
3.7500
5.0000
5.0000
6.2500
6.2500
7.5000
7.5000
7.5000
8.7500
8.7500
8.7500
8.7500
8.7500
8.7500
8.7500
8.7500
8.7500
8.7500
8.7500
ans =
2.5000
2.5000
2.5000
2.5000
3.7500
3.7500
3.7500
3.7500
3.7500
5.0000
5.0000
5.0000
5.0000
5.0000
5.0000
5.0000
5.0000
5.0000
5.0000
ans =
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
3.7500
5.0000
5.0000
5.0000
5.0000
5.0000
5.0000
6.2500
6.2500
6.2500
6.2500
7.5000
7.5000
7.5000
7.5000
7.5000
8.7500
8.7500
8.7500
8.7500
8.7500
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
10.0000
ans =
8.7500
10.0000
10.0000
10.0000
10.0000
10.0000
11.2500
11.2500
11.2500
12.5000
12.5000
13.7500
13.7500
13.7500
15.0000
15.0000
15.0000
15.0000
16.2500
16.2500
16.2500
16.2500
16.2500
16.2500
17.5000
17.5000
17.5000
17.5000
17.5000
17.5000
18.7500
18.7500
18.7500
johnson saldanha
on 6 Dec 2018
Categories
Find more on Creating and Concatenating Matrices in Help Center and File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
