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this is my code:

for (list<moveStringTree>::iterator tempIterator=moveList.begin();tempIterator!=moveList.end(); ++tempIterator)
{
    moveStringTree *move = tempIterator;
}

but it gives me an error. if there is a castingway, I don't like it. it is too time consuming. anyway I want to go throw a list and do something with each object in it. what can I do? foreach won't help. because only it will give a copy.

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What is the error? –  Caesar Aug 25 '12 at 20:34
    
Error 1 'initializing' : cannot convert from 'std::_List_iterator<_Mylist>' to 'moveStringTree *' –  Masoud Aug 25 '12 at 20:37

4 Answers 4

up vote 3 down vote accepted

isn't iterator an object?

It is. An object in C++ is equivalent to a memory location holding a value – no more, no less. However, I don’t see how this relates to the rest of the question.

but it gives me an error. if there is a castingway, I don't like it. it is too time consuming.

I have no idea what this means. But just in case you meant copy: no, it’s probably not too time-consuming. But if it is – don’t worry; use a reference.

moveStringTree& move = *tempIterator;

foreach won't help. because only it will give a copy.

Nonsense. foreach does the same as manually iterating. So you can also use it with a copy:

for (auto& o : moveList) {
    // Do something.
}
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thanks for your complete answer. –  Masoud Aug 25 '12 at 20:43

You can use an iterator as if it was a pointer, but it isn't actually one. There is a dance that you can do to grab a pointer out of it, though:

moveStringTree *move = &*tempIterator;

The * resolves to a reference to the element that the iterator refers to, and the & returns the address of that element. The end result is a pointer.

Of course, you probably shouldn't do that. This:

tempIterator->doSomething();

works just fine.

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thanks John for you help –  Masoud Aug 25 '12 at 20:39

Try:

moveStringTree *move = & (*tempIterator) ;

(the parentheses aren't strictly necessary)

The iterator itself is not a pointer to the object, but overloads * to return a reference to the object it refers to; from it you can get a pointer using the normal &.

Notice that normally you don't need to do this, since the iterator overloads also the -> operator, so you can access the object's members using the usual -> syntax.

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In fact, you can gain a reference from std::for_each. moveStringTree* move = &*tempIterator; would be correct. However, more directly, you can simply use tempIterator as if it was already a pointer to the object in question.

for(auto it=moveList.begin();it!=moveList.end(); ++it) {
    it->f(); // well formed if moveStringTree::f()
}
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there is a problem in this case. it gives me a const movelist –  Masoud Aug 25 '12 at 20:49

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