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I have a std::vector. I want to create iterators representing a slice of that vector. How do I do it. In psudo C++:

class InterestingType;

void doSomething(slice& s) {
    for (slice::iterator i = s.begin(); i != s.end(); ++i) {
       std::cout << *i << endl;
    }
}
int main() {
   std::vector v();
   for (int i= 0; i < 10; ++i) { v.push_back(i); }
   slice slice1 = slice(v, 1, 5);
   slice slice2 = slice(v, 2, 4);
   doSomething(slice1);
   doSomething(slice2);
   return 0;
}

I would prefer not to have to copy the elements to a new datastructure.

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5  
Why is this community wiki? –  Tom Jul 10 '09 at 16:21
    
That's a good question Tom. –  Burkhard Jul 10 '09 at 16:26
    
Typically it is called a "slice" when you require both a range, and a stride not equal to one. For example see std::gslice and std::valarray. With a stride of one it would usually be called a "range". –  Greg Rogers Jul 10 '09 at 17:24
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4 Answers

up vote 13 down vote accepted

You'd just use a pair of iterators:

typedef std::vector<int>::iterator vec_iter;

void doSomething(vec_iter first, vec_iter last) {
    for (vec_iter cur = first; cur != last; ++cur) {
       std::cout << *cur << endl;
    }
}

int main() {
   std::vector v();
   for (int i= 0; i < 10; ++i) { v.push_back(i); }

   doSomething(v.begin() + 1, v.begin() + 5);
   doSomething(v.begin() + 2, v.begin() + 4);
   return 0;
}

Alternatively, the Boost.Range library should allow you to represent iterator pairs as a single object, but the above is the canonical way to do it.

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Thanks you for your help. –  No Name Jul 10 '09 at 16:25
    
I would write "two iterator arguments" iso iterator pairs (std::pair<it,it>) –  xtofl Jul 10 '09 at 17:15
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I learnt Python before I learnt C++. I wondered if C++ offered slicing of vectors like slicing in Python lists. Took a couple of minutes to write this function that allows you to slice a vector analogous to the way its done in Python.

vector<int> slice(const vector<int>& v, int start=0, int end=-1) {
    int oldlen = v.size();
    int newlen;

    if (end == -1 or end >= oldlen){
        newlen = oldlen-start;
    } else {
        newlen = end-start;
    }

    vector<int> nv(newlen);

    for (int i=0; i<newlen; i++) {
        nv[i] = v[start+i];
    }
    return nv;
}

Usage:

vector<int> newvector = slice(vector_variable, start_index, end_index);

The start_index element will be included in the slice, whereas the end_index will not be included.

Example:

For a vector v1 like {1,3,5,7,9}

slice(v1,2,4) returns {5,7}

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Python's slicing also has an optional third parameter, just like range(), for the step. This is why x[::-1] is a quick and easy way to reverse a string or list. –  Kevin Mills Jan 24 at 23:23
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You can represent those "slices" with a pair of iterators.

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As others have said, you can represent the "slice" as pair of iterators. If you are willing to use Boost, you can use the range concept. Then you will have even begin()/end() member functions available and the whole thing looks a lot like a container.

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