69

Can anybody tell me how to increment the iterator by 2?

iter++ is available - do I have to do iter+2? How can I achieve this?

  • 4
    Judging by the range of answers, you may need to clarify your question. – teabot Jun 29 '09 at 10:14
  • Yes. What kind of iterator is it? Show some code. – Brian Neal Jun 29 '09 at 14:10
104

std::advance( iter, 2 );

This method will work for iterators that are not random-access iterators but it can still be specialized by the implementation to be no less efficient than iter += 2 when used with random-access iterators.

| improve this answer | |
  • 1
    What will happen if the iterator currently points onto the last element? Where will it point after the increment? I tried with VC++ - it just advances and comparison against vector::end() returns false after that. This is straight way to undefined behaviour, I suppose. – sharptooth Jun 29 '09 at 10:38
  • 1
    Yes, if you're going to do std::advance with '2', or +=2, or two '++' without checking for 'end' in the middle, then you need some external guarantee that you're not going to go beyond one past the end. (E.g. you might know that you're iterating through the even numbered (zero based) items of a collection which is guaranteed to have an even number of items.) – CB Bailey Jun 29 '09 at 11:24
  • what is difference between next( iter, 2) and next( iter, 2 ) – m1350 Jul 25 '17 at 6:36
29

http://www.cplusplus.com/reference/std/iterator/advance/

std::advance(it,n);

where n is 2 in your case.

The beauty of this function is, that If "it" is an random access iterator, the fast

it += n

operation is used (i.e. vector<,,>::iterator). Otherwise its rendered to

for(int i = 0; i < n; i++)
    ++it;

(i.e. list<..>::iterator)

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21

If you don't have a modifiable lvalue of an iterator, or it is desired to get a copy of a given iterator (leaving the original one unchanged), then C++11 comes with new helper functions - std::next / std::prev:

std::next(iter, 2);          // returns a copy of iter incremented by 2
std::next(std::begin(v), 2); // returns a copy of begin(v) incremented by 2
std::prev(iter, 2);          // returns a copy of iter decremented by 2
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  • If i have a an iterator like this: map<string,string>::iterator iter; for(iter = variations.begin(); iter != variations.end(); iter++) { map<string,string>::iterator it_tmp = std::next(iter, 1); // increment by 1 it_tmp = std::next(iter, 2); // increment by 2 } Will iter be incremented by 2 ? or iter will just affect it_tmp? – Hani Goc Feb 2 '16 at 11:13
  • @HaniGoc Only it_tmp – metamorphosis Nov 11 '16 at 20:52
8

You could use the 'assignment by addition' operator

iter += 2;
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  • I was wondering if ++iter++ would work, but I think that would just be confusing. – Xetius Jun 29 '09 at 10:10
  • 2
    What will happen if the iterator currently points onto the last element? Where will it point after the increment? – sharptooth Jun 29 '09 at 10:11
  • 4
    @Xetius: You should not do it. It is undefined behavior. – Naveen Jun 29 '09 at 10:12
  • 2
    ++iter++ binds as ++(iter++), iter++ is not a modifiable lvalue so you can't 'do' ++(iter++). If it was allowed, it probably wouldn't do what might be expected of it. – CB Bailey Jun 29 '09 at 10:14
  • 3
    This doesn't work for all iterator types. Only RandomAccessIterators are required to support addition. – Steve Jessop Nov 5 '10 at 23:04
5

If you don't know wether you have enough next elements in your container or not, you need to check against the end of your container between each increment. Neither ++ nor std::advance will do it for you.

if( ++iter == collection.end())
  ... // stop

if( ++iter == collection.end())
  ... // stop

You may even roll your own bound-secure advance function.

If you are sure that you will not go past the end, then std::advance( iter, 2 ) is the best solution.

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4

We can use both std::advance as well as std::next, but there's a difference between the two.

advance modifies its argument and returns nothing. So it can be used as:

vector<int> v;
v.push_back(1);
v.push_back(2);
auto itr = v.begin();
advance(itr, 1);          //modifies the itr
cout << *itr<<endl        //prints 2

next returns a modified copy of the iterator:

vector<int> v;
v.push_back(1);
v.push_back(2);
cout << *next(v.begin(), 1) << endl;    //prints 2
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0

Assuming list size may not be an even multiple of step you must guard against overflow:

static constexpr auto step = 2;

// Guard against invalid initial iterator.
if (!list.empty())
{
    for (auto it = list.begin(); /*nothing here*/; std::advance(it, step))
    {
        // do stuff...

        // Guard against advance past end of iterator.
        if (std::distance(it, list.end()) > step)
            break;
    }
}

Depending on the collection implementation, the distance computation may be very slow. Below is optimal and more readable. The closure could be changed to a utility template with the list end value passed by const reference:

const auto advance = [&](list_type::iterator& it, size_t step)
{
    for (size_t i = 0; it != list.end() && i < step; std::next(it), ++i);
};

static constexpr auto step = 2;

for (auto it = list.begin(); it != list.end(); advance(it, step))
{
    // do stuff...
}

If there is no looping:

static constexpr auto step = 2;
auto it = list.begin();

if (step <= list.size())
{
    std::advance(it, step);
}
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  • What is the Time Complexity of "std::advance(it, step);". – Sanjit Prasad May 30 '18 at 7:35
-6

The very simple answer:

++++iter

The long answer:

You really should get used to writing ++iter instead of iter++. The latter must return (a copy of) the old value, which is different from the new value; this takes time and space.

Note that prefix increment (++iter) takes an lvalue and returns an lvalue, whereas postfix increment (iter++) takes an lvalue and returns an rvalue.

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  • 5
    Undefined behavior if iter is a raw pointer (which some iterator types can be). ++it; ++it; would be fine. – Steve Jessop Nov 5 '10 at 23:09
  • 1
    Please tell me this isn't a serious answer. – Axle Feb 7 '14 at 20:08

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