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i have the following code which works perfect.

Objective: Given a number n, find the next and previous number of n.

Base on below example : if n = 50, then i will get 60 and 40 separately.

I am able to get 60 by using upper_bound. But how do i get a number before 50 i cant seem to find a provided algorithm to do that.

set<int> myset;
set<int>::iterator it,itlow,itup;

for (int i=1; i<10; i++) myset.insert(i*10); // 10 20 30 40 50 60 70 80 90
itup=myset.upper_bound (50);                 // 
cout << "upper_bound at position " << (*itup) << endl;
    //output: 60

With reference to http://www.cplusplus.com/reference/stl/set/lower_bound/, it says upper_bound "Returns an iterator pointing to the first element in the container which does not compare less than x" but im sure there is something else that point to something that compare less than x.

Thanks in advance! :)

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3  
What about lower_bound? –  chris May 12 '12 at 20:43

3 Answers 3

up vote 4 down vote accepted
it = myset.lower_bound(50);
--it;

Of course, don't dereference that iterator unless you are sure there is an element less than 50 in the set. You can check if it == myset.begin() for that.

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What if 50 isn't present in the set? –  Alan Stokes May 12 '12 at 20:50
    
now i feel so stupid. all i had to do is use "--itup;" 2 times to get to the lower range. thanks! –  mister May 12 '12 at 20:50
    
@AlanStokes it will still go to the upper or lower range as required. which is 60 and 40 respectively –  mister May 12 '12 at 20:51

You want lower_bound(49). Or possibly do lower_bound(50) and be prepared to go back one if needed.

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1  
Wouldn't it still return 50 on lower_bound(49)? –  mister May 12 '12 at 20:54
    
Gah, yes. It returns the first value >= the parameter. So yes, lower_bound(50) and back one if there is a previous element is the answer. These two always confuse me :-( –  Alan Stokes May 12 '12 at 21:00

Use lower_bound like chris says see sgi: http://www.sgi.com/tech/stl/lower_bound.html and MSDN: http://msdn.microsoft.com/en-us/library/awxks70z%28v=vs.80%29.aspx.

lower_bound will return the position where insertion will occur such that the order is maintained which is what you want.

So

itlow = myset.lower_bound (50); // check if this is not pointing to myset.end()
--itlow; // should still check if this is in your container really
cout << "upper_bound at position " << (*itup) << "lower bound" << (*itlow) << endl;

better version I think

// check whether lower_bound returns myset.end() or myset.begin() for sensible and safe assignment
if (myset.lower_bound(50) != myset.end() && myset.lower_bound(50) != myset.begin())
{
  itlow = myset.lower_bound(50);
  --itlow;
}
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