13

I have a routine that returns a list of integers as a vector.

Those integers come from groups of sequential numbers; for example, it may look like this:

vector = 6 7 8 12 13 14 15 26 27 28 29 30 55 56

Note that above, there are four 'runs' of numbers (6-8, 12-15, 26-30 & 55-56). What I'd like to do is forward the longest 'run' of numbers to a new vector. In this case, that would be the 26-30 run, so I'd like to produce:

newVector = 26 27 28 29 30

This calculation has to be performed many, many times on various vectors, so the more efficiently I can do this the better! Any wisdom would be gratefully received.

4 Answers 4

36

You can try this:

v = [ 6 7 8 12 13 14 15 26 27 28 29 30 55 56];

x = [0 cumsum(diff(v)~=1)];

v(x==mode(x))

This results in

ans =

    26    27    28    29    30
1
  • 6
    I think I just had a nerdgasm Jul 11, 2012 at 15:34
2

Here is a solution to get the ball rolling . . .

vector = [6 7 8 12 13 14 15 26 27 28 29 30 55 56]
d = [diff(vector) 0]


maxSequence = 0;
maxSequenceIdx = 0;
lastIdx = 1;

while lastIdx~=find(d~=1, 1, 'last')

    idx = find(d~=1, 1);
    if idx-lastIdx > maxSequence
        maxSequence = idx-lastIdx;
        maxSequenceIdx = lastIdx;
    end

    d(idx) = 1;

    lastIdx=idx;
end

output = vector(1+maxSequenceIdx:maxSequenceIdx+maxSequence)

In this example, the diff command is used to find consecutive numbers. When numbers are consecutive, the difference is 1. A while loop is then used to find the longest group of ones, and the index of this consecutive group is stored. However, I'm confident that this could be optimised further.

1

Without loops using diff:

vector = [6 7 8 12 13 14 15 26 27 28 29 30 55 56];

seqGroups = [1 find([1 diff(vector)]~=1) numel(vector)+1]; % beginning of group
[~, groupIdx] = max( diff(seqGroups));                     % bigger group index

output = vector( seqGroups(groupIdx):seqGroups(groupIdx+1)-1)

output vector is

ans = 

    26    27    28    29    30
1

Without loops - should be faster

temp = find ( ([(vector(2:end) - vector(1:end-1))==1 0])==0);
[len,ind]=max(temp(2:end)-temp(1:end-1));
vec_out =  vector(temp(ind)+1:temp(ind)+len)
2
  • 1
    You have a mistake. It fails for vector = [1 3 4 5];
    – Eitan T
    Jul 11, 2012 at 13:58
  • Thanks, it failed when the sequence was in the end of the vector. Fixed.
    – Tal Darom
    Jul 11, 2012 at 14:38

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