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my problem is as follows, I use iterator , and I want to compare some element, with a value for this element in next iteration. Prototype looks like below, how can I increase the iterator to be able to compare? Also, how can I set a proper condition for this to happen? I mean how to point on the last element, not on the next after the last like with end() function:

std::vector<T>::const_iterator it;
std::vector<T>::const_iterator it2;
for (it = set.begin(), it != set.end(); it++)
{
  // some things happen
  if ( final == it )
  {
     if ( it != set.end()-1 ) // how to write properly condition?
     {
        it2 = it + 1; //how to assign the next here?
        if (...)//some condition
        {
          if ( it->func1() - it2->func1()) < 20 ) //actual comparison of two consecutive element values
            // do something
        }
      }
   }
}
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What is the problem you're trying to solve with those multiple iterators? –  tehlexx Feb 12 '13 at 12:52
    
I'm using till now just one iterator (this is just part of code). I want to be able to compare func1 of two consecutive in the set. so I need one iterator pointing on actual, one on the next one. is there a better approach? I might have done some overkill here, plz correct me –  berndh Feb 12 '13 at 12:55
    
See my answer to this recent question How to loop over consecutive pairs in an STL container?. –  Peter Wood Feb 12 '13 at 12:58
1  
for set.end()-1, use set.rbegin() –  Deamonpog Feb 12 '13 at 13:08

3 Answers 3

You can use adjacent_find to solve that. You should use the second form of that function (with predicate) and pass to the predicate your some things happen and some condition in c-tor

auto found = std::adjacent_find( set.begin(), set.end(),
    [some_comdition]( const T & left, const T & right ) {
        if ( some_comdition ) {
            if ( left.func1() - right.func1() < 20 ) {
                do_smth();
                // return true; if there's no need to continue
            }
        }
        return false;
    }
);
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In the for loop, you use it++ which means it = it + 1, which is perfectly ok. So this one will be fine also it2 = it + 1. it2 will be pointing to the next value.

In the for loop again, you use it != set.end(), which is again perfectly ok. So you can also it + 1 < set.end(), just like you did in your code.

I don't see anything wrong in your code, just wanted to explain.

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That's true for std::vector, but in general, it++ does not mean it = it + 1. All iterators support increment, but only random access iterators support addition. –  Pete Becker Feb 12 '13 at 13:03
    
I may want use it for other containers also, so that's my problem, how to assign the next element to my new iterator. I pointed in the answers above this problem with number –  berndh Feb 12 '13 at 13:14

If I understand you correctly, you need something like this:

std::vector<T>::const_iterator it;
std::vector<T>::const_iterator it2;

for (it = set.begin(), it2 = set.begin()+1;
     it2 != set.end();  // this condition ensures that both iterators
                        // can be dereferenced inside the loop
     ++it, ++it2) {

     // do stuff
}

A generic way to get an iterator right after some other iterator is std::next:

it2 = std::next(it);

Some iterators don't support addition, so if you don't yet have std::next (it's C++11 feature) you need to use increment. You could write:

auto it = set.begin();
auto it2 = it;
++it2;

Where auto is the type of your iterator or the actual keyword if your compiler supports C++11.

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It does not go, returns error if I set set.begin()+1 : error C2678: binary '+' : no operator found which takes a left-hand operand of type 'std::_Tree<_Traits>::const_iterator' (or there is no acceptable conversion) –  berndh Feb 12 '13 at 13:12
1  
can do it2=it++ at the end of the for loop for more optimization so that the incrementing is done only once. –  Deamonpog Feb 12 '13 at 13:13
    
@berndh That's because you didn't post real code. Vector's iterators support addition, std::set's do not. –  jrok Feb 12 '13 at 13:13
    
@berndh Updated the answer. –  jrok Feb 12 '13 at 13:16
    
@Deamonpog You get rid of an increment, but you introduce a copy. –  jrok Feb 12 '13 at 13:32

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