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I would like to perform a binary search on c++, on a sorted vector V. In particular, I am not interested in finding a exact value of the entry of the vector. I would like to find the position j of the entry which satisfy V[j-1] <= X < V[j], where X is an input values.

for example: for a vector v={1, 4, 7, 12, 17, 55} and X=8, the function should return 3.

Can I use the STD function binary_search, with O(log(2)) complexity?

And how?

Many thanks,

Al.

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1  
Shouldn't it return 7? – user1944441 Jun 11 '13 at 16:02
    
binary_search is only a function to look whether or not an entry is present, it does not return an index. @Armin He wants to return the index that holds the first value bigger than X. – Egari Jun 11 '13 at 16:06
1  
@Egari Then it should be 3. – user1944441 Jun 11 '13 at 16:07
    
He says he doesn't want a value returned, he wants the index. However, your example doesn't satisfy V[3] <= 8 <= V[4] since V[3] = 12 and V[4] = 12. Did you mean to return 3 instead? – Kent Munthe Caspersen Jun 11 '13 at 16:08
    
@Armin Indeed, I'm guessing he forgot zero based indexing – Egari Jun 11 '13 at 16:08
up vote 2 down vote accepted

Per your requirement, the correct STL function to use is upper_bound. Syntax:

upper_bound(V.begin(),V.end(),val)-V.begin()

Will return the 0 based index you seek.

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Thanks to all for your answers!! – altroware Jun 12 '13 at 22:18

The standard functions for this are upper_bound and lower_bound. Read these

http://www.cplusplus.com/reference/algorithm/upper_bound/ http://www.cplusplus.com/reference/algorithm/lower_bound/

If you scroll down these pages a bit, you will find examples which should make things clear :)

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A note on the functions Bartosz linked:

  • upper_bound(begin, end, value) returns the first element greater than the given value. This is the end (or one-past-the-end) of the interval where it could be inserted and preserve ordering
  • lower_bound(begin, end, value) return the first element not less than the given value. This is the beginning of the interval where it could be inserted

So in practice:

std::vector<int> v = {1, 4, 7, 12, 17, 55};
int x = 8;
auto first = std::lower_bound(v.begin(), v.end(), x);
auto last = std::upper_bound(first, v.end(), x);

should give first == last && *first == 12. This is because the half-open interval [first,last) where x could be inserted is empty.

Note that this is generally more useful than what you actually asked for, because

std::vector::insert(iterator, value)

inserts before the given iterator, so you can always use the result of upper_bound here.

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