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I need help in the simple matter

Im trying to create class

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

template<class T> class merge_sort
{
protected:

    vector<T> merge(const vector<T> &a, const vector<T> &b)
    {
        vector<T> v;

        typename vector<T>::iterator A;
        A= a.begin();
        typename vector<T>::iterator B;
        B= b.begin();
...

but compiler gives me next error:

no match for ‘operator=’ in ‘A = ((const std::vector<int, std::allocator<int> >*)a)->std::vector<_Tp, _Alloc>::begin [with _Tp = int, _Alloc = std::allocator<int>]()’  merge.cpp   /merge_sort line 23 C/C++ Problem
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why do you put "typename" in front of vector<T>::iterator A; ? –  Kiril Kirov Jan 18 '11 at 13:37
3  
@Kiril: because vector<T>::iterator is a dependent name ? –  Alexandre C. Jan 18 '11 at 13:42
    
And what do you get by having the typename A which you only use once, in the next line? Also, since this is a template class and would sit in a header - don't put any using namespace declarations in header files, ever. –  Mephane Jan 18 '11 at 14:15
    
@Mephane: template definitions sometimes belong to .cpp files, if the template is to be used only in this file. –  Alexandre C. Jan 18 '11 at 14:22
    
@Alexandre - whoop, my bad, right. 10x –  Kiril Kirov Jan 18 '11 at 14:25

3 Answers 3

up vote 7 down vote accepted

Use

typename vector<T>::const_iterator A = a.begin();
typename vector<T>::const_iterator B = b.begin();

because a and b are const references, the const version of begin is called, and it returns a const_iterator, not an iterator. You cannot assign const_iterators to iterators, like you cannot assign pointers-to-const to pointers.

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what is the purpose of this? Both objects are const... –  Nim Jan 18 '11 at 13:48
1  
@Nim you cannot assign const_iterators to iterators, this is like assigning a pointer to const to a pointer. –  Alexandre C. Jan 18 '11 at 13:51
    
+1 as this is the correct answer. –  sbi Jan 18 '11 at 13:52
    
(BTW, what's wrong with typename vector<T>::const_iterator A = a.begin();?) –  sbi Jan 18 '11 at 13:52
    
@sbi: nothing, I'd have written that in my code. But OP used assignment operator, not copy construction. –  Alexandre C. Jan 18 '11 at 13:53

You are confusing a typedef with a decaration.

If you want to declare a typedef with a dependent type, then you do need to use the typename keyword:

typedef typename vector<T>::const_iterator iter
iter A = a.begin( );
iter B = b.begin( );

BTW, typename is required even without the typedef.

share|improve this answer
typename vector<T>::iterator A;

Should be

typename vector<T>::const_iterator A;

Same for B

Update

My C++ skills are rusty, but

Because the two vectors passed to merge are const references, you cannot use a standard iterator to move over them, because the standard iterator allows you to modify the contents of the vector. Therefore, you must use const_iterator's which will not allow you to modify the vector contents.

Apologies if my C++ Fu isn't up to scratch, I remember enough C++ to fix the problem, but haven't used C++ in anger in . . . wow 7 years (is it really that long? Bugger me but I'm getting old).

As I said, feel free to edit this answer if you can provide better explanations.

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removed mine, you beat me by seconds! :) –  Nim Jan 18 '11 at 13:40
1  
btw - may be an explanation of why this is would also help the OP... –  Nim Jan 18 '11 at 13:41
1  
I think typename here is mandatory (unless you happen to use visual studio, which is non portably laxist with typename) –  Alexandre C. Jan 18 '11 at 13:44
1  
The answer here says what you need to do. For further reference look here (esp the example as it shows a simple case on how iterators are used): cplusplus.com/reference/stl/vector/begin –  yasouser Jan 18 '11 at 13:45
1  
That should be typename vector<T>::const_iterator. ector<T>::const_iterator is clearly depending on a template parameter. (For when you doubt: Could there be, in theory, a specialization of st::vector for some T where iterator is the name of a static data member? If so, it needs typename.) –  sbi Jan 18 '11 at 13:46

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