15

For example I have set of values in std::set:

{1, 2, 3, 5, 6}

And a search key, let it be 4, I want to find the first val. less than search key, 3 in this case, how to do it?

In Java there're functions greater(), lower() in TreeSet

2
25

Simply find the lower_bound for that key and then decrement it once.

set<int> a;
set<int>::iterator it = a.lower_bound(5);
if (it != a.begin()) {
  it--;
  cout << *it << endl;
} else {
  cout << "No smaller element found!" << endl;
}

You can find a complete example here.

6
  • 3
    It's a bit redundant to say "decrement by one". Set iterators are not random access, you can't decrement them by 2. (-=2 doesn't even compile). – MSalters Apr 11 '14 at 15:37
  • What is the time complexity of this code? This is crucial information for everyone involved in competetive programming. – StLuke5 Feb 2 at 21:14
  • 1
    @StLuke5 lower_bound is guaranteed to be with logarithmic complexity. Following operations are constant, so overall complexity of the snippet is O(log(n)) – Ivaylo Strandjev Feb 3 at 10:02
  • @IvayloStrandjev That helps a lot, I was never sure as to whether it is O(log(n)) or more, since set dosnt have random access – StLuke5 Feb 4 at 11:15
  • @StLuke5 most implementations are based on red-black trees and lower_bound in this data structure is O(log(n)), although it does not support random access. I think what confuses you is that you expect that the method is implemented using binary search while it is not – Ivaylo Strandjev Feb 4 at 12:01
2

You can use lower_bound and then go one back i.e.

auto it = set.lower_bound(4);
if(it != set.begin())
{
  --it;
}
else
{
   //Add error handling
}
2
  • This one will result in exception if lower_bound returns first element – Ixanezis Apr 11 '14 at 11:42
  • 4
    @Naveen set is a horrible name for a variable in c++. I like the use of auto. You may consider adding a comment this is c++11 solution. – Ivaylo Strandjev Apr 11 '14 at 11:50

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