Delete rows in a matrix that contain ONLY a negative number
Mostra commenti meno recenti
Hello
I've got a really large matrix (say 2000 x 3000) and I want to delete the rows that contain ONLY the negative number -999.
For example, I've got A = [5 3 -999 ; -999 -999 -999; 4 1 7 ; -999 -999 -999]
and I want my new matrix to be A = [5 3 -999 ; 4 1 7]
How can I do that?
Thanks!
Risposta accettata
Walter Roberson
il 14 Gen 2013
idx = all(A == -999, 2);
A(idx, :) = [];
Più risposte (3)
Kye Taylor
il 14 Gen 2013
Modificato: Kye Taylor
il 14 Gen 2013
Try
isNegRow = all( A==-999, 2 );
A(isNegRow,:) = [];
Shashank Prasanna
il 14 Gen 2013
Modificato: Shashank Prasanna
il 14 Gen 2013
2 voti
If you don't want to use loops and keep it simple in a single line, I suggest logical indexing as follows:
A(all(A==-999,2),:)=[]
This should do the trick.
Amith Kamath
il 14 Gen 2013
Modificato: Amith Kamath
il 14 Gen 2013
I'm quite positive that this does the trick. There would probably be more optimal ways to do it!
X = 100.*rand(12,5); %for example.
X([2 5],:) = -999; % artificially create rows to remove.
i = 1;
while i <= size(X,1)
if(sum(X(i,:) == -999) == size(X,2))
X(i,:) = [];
else
i = i+1;
end
end
3 Commenti
Walter Roberson
il 14 Gen 2013
No, that will not work if you have two consecutive rows to be deleted. Suppose rows 3 and 4 are to be deleted, then after you delete row 3, row 4 will move "up" to row 3, but then you add 1 to i and next examine what is now row 4 (which used to be row 5), failing to examine what is now at row 3. To fix this, you should only add 1 to i if you did not delete a row.
Amith Kamath
il 14 Gen 2013
Edited: Thanks Walter! Didn't catch that case earlier! Your answer is much more elegant anyways.
James Tursa
il 15 Gen 2013
Modificato: James Tursa
il 15 Gen 2013
Using a loop in this manner is very bad for performance. At each row that is deleted, potentially huge amounts of data will need to be copied. The same data can end up being copied many, many times. For a large matrix with many rows being deleted, this can easily result in a performance hit that is one or more orders of magnitude slower than the other answers shown above. (This is basically the same problem as increasing the size of an array in a loop). Best to get the indices of everything to be deleted first and then delete it all at once as shown above.
Categorie
Scopri di più su Creating and Concatenating Matrices in Centro assistenza e File Exchange
il 14 Gen 2013
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
