thank you all for the answers
since all of your answers do what I wanted I'll choose the "winner" by:
1. short code
2. running time
3. running time on large matrices and/or many numbers to find
find row with certain values
315 vues (au cours des 30 derniers jours)
Afficher commentaires plus anciens
Hello I am looking for a (simple) way to get the index of a row in which two (or n) values exist
example: looking for 4 and 5 in
[1 5 6; 5 4 3; 9 4 2]
will give me 2, because only row 2 has both 4 and 5 in it
Thanks
Daniel
2 commentaires
Réponse acceptée
Robert Cumming
le 21 Déc 2011
similar to the intersect answer - but I recoded intersect as its quite slow:
x=[1 2 3;4 5 6;3 2 1];
[a b]=find(x==4);
[c d]=find(x==5);
index = c.*NaN;
for kk=1:length(c)
check = a(a==c(kk))';
if ~isempty ( check )
index(kk) = check;
end
end
output = index(~isnan(index));
2 commentaires
the cyclist
le 6 Déc 2017
Modifié(e) : the cyclist
le 6 Déc 2017
What do you mean by "doesn't show"?
That code calculates the output (at least for me). Nothing is displayed to the screen because the line ends with a semicolon, which suppresses this display.
You can removed that semicolon, or just type
output
to see the result.
If that code is not even calculating the output for you, then please post the full error message you are getting.
Plus de réponses (5)
Jan
le 20 Déc 2011
X = [1 5 6; 5 4 3; 9 4 2]
index = and(any(X == 4, 2), any(X == 5, 2));
[EDITED: Apply ANY along 2nd dim, thanks Cyclist!]
1 commentaire
Malcolm Lidierth
le 20 Déc 2011
>> x=[1 5 6; 5 4 3; 9 4 2];
>> [a b]=find(x==4);
>> [c d]=find(x==5);
>> intersect(a,c)
ans =
2
0 commentaires
the cyclist
le 20 Déc 2011
Trust but verify this code:
x = [1 5 6; 5 4 3; 9 4 2]
want(1,1,:) = [4 5];
indexToDesiredRows = all(any(bsxfun(@eq,x,want),2),3)
rowNumbers = find(indexToDesiredRows)
0 commentaires
Sean de Wolski
le 20 Déc 2011
How about ismember with a for-loop?
doc ismember
Example
A = [1 5 6; 5 4 3; 9 4 2];
want = [4 5];
szA = size(A,1);
idx = false(szA,1);
for ii = 1:szA
idx(ii) = all(ismember(want,A(ii,:)));
end
idx will be a logical vector of rows with 4 and 5. If you want the numeric values:
find(idx)
This will be the most scalable method if say you want 10 different numbers to be present in each row. Calling any/ intersect / all that many times and/or using that many dimensions is not really feasible.
1 commentaire
Soyy Tuffjefe
le 27 Août 2019
Suppose that A = [1 5 6 13 22; 9 5 4 6 37; 7 1 4 22 37];
and want = [5 6; 1 22; 4,37];
Please, Can you modify your code for find two o more rows; or any idea for me to try this job with your code I have a want matriz of 100x4 and A matrix of 1000x5 order.
Thanks
Ankit
le 20 Avr 2013
>> x = [1 2 3 4 1 2 2 1]; find(sum(bsxfun(@eq,x',[1:3]),2)==1) ans =
1
2
3
5
6
7
8
Similar things can be done for an array rather than just a vector (x above).
0 commentaires
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