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I have the following code:

map<StatTypesEnum, ValueHandler*>::const_iterator itr;

for(itr=player1->Stats.begin(); itr!=player1->Stats.end(); itr++)
{
    cout << "Stat: " << itr->first << " Value: " << (ValueHandler*)(itr->second)->getValue() << endl;
}

The getValue() method returns an int. If I cout the value outside of the iterator, it displays in base10 decimal, however when i return the value using an iterator (as above) it displays in base16, hex.

Just for completeness, the following line displays as base10:

cout << player1->Stats[Power]->getValue() << endl;

I would like the iterator to display base10.

Thanks.

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2 Answers 2

up vote 5 down vote accepted

When you print (ValueHandler*)(itr->second)->getValue() you should be getting a hexadecimal value because that's how pointers are printed. You probably shouldn't be casting the return value of getValue() to a ValueHandler*. You probably intended to cast itr->second to that pointer type (although it's not necessary) but just got the parentheses wrong. Here's what casting itr->second would look like:

((ValueHandler*) itr->second)->getValue()

And what you want is probably:

itr->second->getValue()
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Yes - much simpler - for some reason I thought I would need to cast itr->second but it is already the right type. - thanks –  IUnknown Nov 15 '11 at 4:45

(ValueHandler*)(itr->second)->getValue() is a pointer, not an int. You're casting the return value of getValue.

Maybe you want ((ValueHandler*)(itr->second))->getValue()? Which is redundant anyway.

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Ah yes - lost in parentheses again - thanks –  IUnknown Nov 15 '11 at 4:42
    
You don't need to cast this one at all, the iterator knows which type it is. –  littleadv Nov 15 '11 at 4:43
    
Gotcha thanks - yes saw that in the bames53's answer. –  IUnknown Nov 15 '11 at 4:47

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