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Can somebody explain to me why the code below works and produce true? v1.begin() produces an iterator but when debugging if I inspect the value of v1.begin() inside the compare function I see the value of the first element of the vector.

Is this related to the fact that one needs to use typename vector<T>::iterator it to name an iterator inside a template? It would be great if somebody could elaborate on this

Thanks

template<class U, class V> bool compare(const U &v1, const U &v2, const V &v3) {
    if ((v1 == v2) && (v2 == v3) ){
        return 1;
    } else {
        return 0;
    }
}


#include<iostream>
#include<vector>
using namespace std;

int main() {

    vector<int>     v1(10,3);
    vector<int>     v2(10,3);
    bool iComp = compare(v1.begin(), v1.begin() + 2, v2.begin());
    cout << typeid(v1.begin()).name() << "    "  << *v2.begin() << endl;

    return 1;
}
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2  
iComp evaluates to false. So I don't understand the question! – Oliver Charlesworth Apr 5 '11 at 23:39
    
You are right, I had not checked the value of iComp but simply the value of v1, v2 and v3 in the function. I dont know for what reason but hovering over v1, v2 and v3 in VC++ 2010 inisde the fucntion shows the value of 3 for the three variables so I asssumed that it would produce True. It is great that it doesnt as that is what logic was telling me. Sorry for not having checked this carefully. – RandomCPlusPlus Apr 5 '11 at 23:47
2  
Visual C++ helpfully displays what is pointed to by the iterator. That is what you are seeing. v1, v2 and v3 are all iterators. – Oliver Charlesworth Apr 5 '11 at 23:53
    
@Oli - that may be helpful when you are sure about the logic of a language not when you are trying to learn it ;-) – RandomCPlusPlus Apr 5 '11 at 23:59
    
Upvoted question: I learned a lot about C++ by playing with it under a debugger. – Howard Hinnant Apr 6 '11 at 1:49

compare returns true if and only if all three iterators point to the same object. If the iterators pointed to objects of different types, there could be a compilation error.

The iterators point to different objects, because the arguments are all different, so compare returns false. This result is thrown away.

Then the program prints a unique string identifying the type std::vector< int >::iterator. This might be a long string mentioning the fragments std, vector, and iterator, or it might be simply pi for "pointer to integer," if the <vector> implementation uses typedef T *iterator.

Finally it prints 10 because that is the first value in v2.

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