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I know that you cannot have a break statement for an OpenMP loop, but I was wondering if there is any workaround while still the benefiting from parallelism. Basically I have 'for' loop, that loops through the elements of a large vector looking for one element that satisfies a certain condition. However there is only one element that will satisfy the condition so once that is found we can break out of the loop, Thanks in advance

for(int i = 0; i <= 100000; ++i)
  {
    if(element[i] ...)
     {
          ....
          break;
      }
   }
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are you bound to omp? –  inf Mar 20 '12 at 20:01
3  

6 Answers 6

up vote 2 down vote accepted

You could try to manually do what the openmp for loop does, using a while loop:

const int N = 100000;
bool go = true;
uint give = 0;

#pragma omp parallel
{
    uint start, stop;

    #pragma omp critical
    {
        start = give;
        give += N/omp_get_num_threads();
        stop = give;

        if(omp_get_thread_num() == omp_get_num_threads()-1)
            stop = N;
    } 


    while(start < stop && go)
    {
        ...
        if(element[i]...)
        {
            #pragma omp atomic
                go = false;
        }
        start++;
    }
}

This way you have to test "go" each cycle, but that should not matter that much. More importent is that this would correspond to a "static" omp for loop, which is only usefull, if you can expect all iterations to take a similar amount of time. Otherwise 3 threads may be allready finished while one still has half way to got...

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See this snippet:

volatile bool flag=false;

#pragma omp parallel for shared(flag)
for(int i = 0; i <= 100000; ++i)
  {

    if(flag) continue;
    if(element[i] ...)
     {
          ....
          flag=true;
      }
   }

This situation is more suitable for pthread.

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I would probably do (copied a bit from yyfn)

volatile bool flag=false;

for(int j=0; j<=100 && !flag; ++j) {
  int base = 1000*j;
  #pragma omp parallel for shared(flag)
  for(int i = 0; i <= 1000; ++i)
  {

    if(flag) continue;
    if(element[i+base] ...)
     {
          ....
          flag=true;
      }
   }
}
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One way to do it is by setting i to a number that will break the loop. Since you have the loop set to continue running while i ≤ 100000, you can break the loop by setting it to 100001:

for(int i = 0; i <= 100000; ++i)
{
    if(element[i] ...)
    {
        ....
        i = 100001; // break
    }
}

You may want to use a cleaner solution though, whereas you make a bool indicating whether to break:

bool shouldBreak = false;
for(int i = 0; i <= 100000 && !shouldBreak; ++i)
{
    if(element[i] ...)
    {
        ....
        shouldBreak = true;
    }
}
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brilliant. seriously, the most elegant solution here for me :) –  test30 Jul 13 at 19:51
bool foundCondition = false;
#pragma omp parallel for
for(int i = 0; i <= 100000; i++)
{
    // We can't break out of a parallel for loop, so this is the next best thing.
    if (foundCondition == false && satisfiesComplicatedCondition(element[i]))
    {
        // This is definitely needed if more than one element could satisfy the
        // condition and you are looking for the first one.  Probably still a
        // good idea even if there can only be one.
        #pragma omp critical
        {
            // do something, store element[i], or whatever you need to do here
                ....

            foundCondition = true;
        }
    }
}
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Here is a simpler version of the accepted answer.

int ielement = -1;
#pragma omp parallel
{
    int i = omp_get_thread_num()*n/omp_get_num_threads();
    int stop = (omp_get_thread_num()+1)*n/omp_get_num_threads();        
    for(;i <stop && ielement<0; ++i){
        if(element[i]) {
            ielement = i;
        }
    }
}
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