-4

suppose i have a vector [[3,4],[1,2],[8,10], [15,20]] i want to merge this overlapping sequence in [[1,4],[8,10],[15,20]]

basically my approach was to sort this vector based on start time interval and compare each interval for ex- [1,2] [3,4] is compared and if this two interval overlaps then i make this as [1,4] and i needed to delete [3,4] from the actual vector.

so i used erase function to do this, my code snippet is given below.

for(int i = 1; i<intervals.size(); i = prev+1){
           if(intervals[prev][1] >= intervals[i][0] && intervals[prev][0] <= intervals[i][1]){
               if(intervals[prev][1] < intervals[i][1]){
                   intervals[prev][1] = intervals[i][1];
                   intervals.erase(intervals.begin()+i, intervals.begin()+(i+1));
               }
               else{
               intervals.erase(intervals.begin()+i, intervals.begin()+(i+1));
               }
           }else{
               prev++;
           }

the erase function makes this function O(n*n) time. my question is how to erase a particular element in vector in constant time. i hope my explanation is clear

4
  • std::vector::erase is O(n), so that makes your total algorithm O(n^2) in the case where all ranges overlap. – Botje Oct 26 '20 at 11:54
  • Any solution where you are erasing elements in the container while looping over the container is bound to give time-out errors -- for each erase() call, the container has to be shrunk by one item, and that is expensive. The trick is to find another solution where you are not erasing each time. Use a different data structure, or structure the elements so that the erasure until the very end, where you only need one single erasure call to erase the range of (bad) values.. – PaulMcKenzie Oct 26 '20 at 13:00
  • thankyou @PaulMcKenzie but the constraint is no extra space is allowed, the problem should be done inplace. – Ratna Kumar Singh Oct 26 '20 at 14:31
  • @RatnaKumarSingh -- You can do erasure "inplace" by partitioning off the items to erase instead of actually erasing them. Then, as my comment suggested, you erase everything from the start of the partition until the end with one single erase() call. The solution requires you to smartly swap items and put the items to erase at the end of the container. See algorithm functions such as std::remove and std::partition The "erase one-at-a-time while looping" is the naive way of doing this. – PaulMcKenzie Oct 26 '20 at 14:50
3

Erase is O(n), so your function is O(n*n).

If you want to avoid that, you can increment i instead of erasing, and not set it in the loop

2
  • Is there a better container for this scenario or another way to erase with a better time complexity? – darclander Oct 26 '20 at 11:57
  • 2
    @darclander the best thing is to not erase in the loop – Caleth Oct 26 '20 at 12:00

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