How to find a chunk of a certain number of zeros inside a vector
Afficher commentaires plus anciens
Hi all,
I have a vector of ones and zeros randomly distributed.
i.e: A = [0;1;1;0;0;0;0;1;1;1;1;0;1;]
What I want is to find the location of the first zero of the first chunk with 4 OR MORE zeros appearing in the vector.
In this example the result would be:
pos = 4;
The size of the group of zeros doesn't have to be necessarily 4, this was just an example.
I cannot find a simple way to do this but most probably there's a command for for this kind of operations that I cannot recall.
Many thanks in advance,
Pedro Cavaco
Réponse acceptée
David Young
le 21 Juin 2011
A = [0;1;1;0;0;0;0;1;1;1;1;0;1;]
n = 4;
To find the first group of 4 or more zeros:
p = regexp(char(A.'), char(zeros(1, n)), 'once')
To find the first group of exactly 4 zeros:
zz = char(zeros(1,n));
p = regexp(char(A.'), ['(?<=^|' char(1) ')' zz '(' char(1) '|$)'], 'once')
5 commentaires
Pedro Cavaco
le 21 Juin 2011
David Young
le 21 Juin 2011
It gives 4 when I run it!
Pedro Cavaco
le 21 Juin 2011
David Young
le 21 Juin 2011
There are two solutions in this answer. The first of them works for the case of n or more zeros. The ?<= is a lookbehind operator to ensure that the match is at the start of the group of zeros - there is a requirement that the character before the zeros is char(1) or the start of the string. See doc regexp and follow the link to "Regular Expressions" for more details. You don't need this for the simple solution which finds groups of 4 or more zeros.
David Young
le 21 Juin 2011
By the way, in the case of n or more zeros, it's not obvious whether to use my first answer, with regexp, or Andrei's answer, with strfind. For very long strings, it may be faster to use regexp because of its 'once' option; however, strfind is simpler and will have a lower overhead.
Plus de réponses (3)
Andrei Bobrov
le 21 Juin 2011
EDIT
A1 = A(:)';
out = strfind([1 A1],[1 0])-1; % all groups zeros
strfind([A1 1],[0 0 1]); % all groups two zeros
...
strfind([A1 1],[zeros(1,4) 1]); % all groups 4 zeros
6 commentaires
Titus Edelhofer
le 21 Juin 2011
Nice! I guess, you mean something like strfind(A1, zeros(1,n)) where n=4 was asked?
Titus
Pedro Cavaco
le 21 Juin 2011
David Young
le 21 Juin 2011
Even with Titus Edelhofer's correction, this still finds all occurrences, not just the first.
Andrei Bobrov
le 21 Juin 2011
@Titus Edelhofer. strfind([1 A1 1],[zeros(1,4) 1])-1
Andrei Bobrov
le 21 Juin 2011
speed
>> A = +(rand(10000,1)<.2);
tic, zz = char(zeros(1,4));
p = regexp(char(A(:).'), ['(?<=^|' char(1) ')' zz '(' char(1) '|$)'], 'once'); toc
Elapsed time is 0.002538 seconds.
>> tic, A1 = A(:)';strfind([A1 1],[zeros(1,4) 1]);toc
Elapsed time is 0.000652 seconds.
Andrei Bobrov
le 21 Juin 2011
it's idea of Matt Fig
Gerd
le 21 Juin 2011
Hi Pedro,
just programming straigforward I would use
A = [0;1;1;0;0;0;0;1;1;1;1;0;1;];
cons = 4;
indices = find(A==0);
for ii=1:numel(indices)-cons
if (indices(ii+1)-indices(ii) == 1) && (indices(ii+2)-indices(ii+1)==1) && indices(ii+3)-indices(ii+2)==1
disp(indices(ii));
end
end
Result is 4
Gerd
3 commentaires
David Young
le 21 Juin 2011
You could put a "break" in the conditional to make this more efficient, since only the first occurrence is required. Also, it's probably more useful to assign the result to a variable rather than calling disp.
Pedro Cavaco
le 21 Juin 2011
Gerd
le 21 Juin 2011
Hi Pedro,
I tried both solution in a .m-file(David's and mine)
Please have a look at the result.
tic;
A = [0;1;1;0;0;0;0;1;1;1;1;0;1;];
cons = 4;
indices = find(A==0);
for ii=1:numel(indices)-cons
if (indices(ii+1)-indices(ii) == 1) && (indices(ii+2)-indices(ii+1)==1) && indices(ii+3)-indices(ii+2)==1
disp(indices(ii));
end
end
t1 = toc;
tic;
A = [0;1;1;0;0;0;0;1;1;1;1;0;1;];
n = 4;
p = regexp(char(A.'), char(zeros(1, n)), 'once');
disp(p);
t2 = toc;
With your testvector the result is really fast.
David Young
le 21 Juin 2011
Another approach to finding the first group of 4 or more zeros:
A = [0;1;1;1;0;0;0;0;1;1;1;1;0;1;0;0;0;1];
n = 4;
c = cumsum(A);
pad = zeros(n, 1)-1;
ppp = find([c; pad] == [pad; c]) - (n-1);
p = ppp(1)
EDIT Code corrected - n replaced by (n-1) to give correct offset.
3 commentaires
Pedro Cavaco
le 21 Juin 2011
Pedro Cavaco
le 21 Juin 2011
David Young
le 21 Juin 2011
Sorry, you are right!
Catégories
En savoir plus sur Characters and Strings dans Centre d'aide et File Exchange
le 21 Juin 2011
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
