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Can you do a post/pre increment with enumerations?

enum Card {ACE, TWO, THREE};
Card c= ACE;
c++;              // will this set c to "TWO"?
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closed as off-topic by H2CO3, Rapptz, Kerrek SB, Mooing Duck, Andrew Barber Jul 1 '13 at 2:23

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7  
Is there more to it that simply writing a program and testing it by yourself? –  Bruno Reis Jun 30 '13 at 21:38
8  
@BrunoReis You are having annoyingly high expectations! That would take at least thirty seconds (and even worse, some effort). –  user529758 Jun 30 '13 at 21:40
    
possible duplicate of What operations on enumeration types are legal in C++? –  Mooing Duck Jul 1 '13 at 2:15

2 Answers 2

An enumeration is a distinct type and does not provide arithmetic operations. If you absolutely need to apply arithmetic operations you have to provide operator implementations to handle them. The example below provides a postfix increment operator that works with both weak and strong enumeration types.

#include <type_traits>
#include <stdexcept>

enum Card { ACE, TWO, THREE };

Card operator++(Card value, int)
{
    // Use Card::THREE if strong enumerations are used.
    if(value == THREE)
        throw std::out_of_range("Enumeration operation result out of range");

    return static_cast<Card>(
        static_cast<std::underlying_type<Card>::type>(value) + 1
    );
}
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Enumerators do not come with built-in operator ++ or --.

So your code would not compile the way it is. If you force it to compile, then it would actually set the value of c from 0 to 1, that is same as setting it "TWO".

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