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int* m = new int [d1*d2];

This is my array.

 for ( j = 0; j < d2; j++ )
{       for ( i = j; i < d1*d2; i +=d2){
         cout << *(m+i);
       }
  cout << endl;
}

And by using that i can group and print largest integer in each column if i think it as a multidimensional array.

Hard to explain what i want to do. I'll try giving an example.

Assume my input is 1 4 2 5 2 1 0 3 4

Output would be

1 5 0

4 2 3

2 1 4

I only want the largest integer and keep listing the following largest integers behind of that integer.

For first row i only want 5, 0

For second row i want 4 and 3.

For third row i want only 4.

Output would be:

5, 0, 4, 3, 4

share|improve this question
    
What is largestS? –  leppie May 8 '13 at 14:16
    
I think you should try this. Instead of workin on columns. Just transpose the Matrix. Work on rows. Things will be simpler. Then transpose again if you need it. –  Named May 8 '13 at 14:17
    
for example for this case you will have a vector of vectors. Then you find the max of one row or vector you list all elements after it. And then you repeat for the next vector. –  Named May 8 '13 at 14:18
    
I mixed rows with columns fixed that. –  SpiderRico May 8 '13 at 14:21
2  
Your sample output for the first column doesn't seem to mesh with what you're almost asking for. It should/could include 5,0 for the first "row" (which is actually a column), assuming something resembling logic is being used in this algorithm. Determining the largest integer in each column is easy enough (and would yield 5,4,4). You need to explain far better exactly what "... and keep listing the following largest integers behind of that integer." means. –  WhozCraig May 8 '13 at 14:47

2 Answers 2

up vote 1 down vote accepted

if a[] contains your row, it looks like what you want is:

int i = column_count - 1;
deque<int> largests_list;
largests_list.push_front(a[i]);
int largest_found = a[i];

while (i-- > 0) {
    if (a[i] > largest_found) {
       largests_list.push_front(a[i]);
       largest_found = a[i];   
    }
}
share|improve this answer
    
Hard to tell what he means, but re-reading the question I think you might be right. –  OlivierD May 8 '13 at 15:49

Try two inner loops (inside the first):

int largest = m[j];
for (i = j + 1; i < d1*d2; i+=d2)
{
   largest = max(largest, m[i]);
}
for (i = j; i < d1*d2; i+=d2)
{
   if (m[i] == largest)
   {
      cout << largest--;
   }
}
share|improve this answer

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