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Basic C++ class question:

I have simple code currently that looks like something like this:

typedef int sType;
int array[100];

int test(sType s)
{
  return array[ (int)s ];
}

What I want, is to convert "sType" to a class, such that the "return array[ (int)s ]" line does not need to be changed. e.g. (pseudocode)

class sType
{
  public:
    int castInt()
    {
      return val;
    }
    int val;
}


int array[100];    
int test(sType s)
{
  return array[ (int)s ];
}    

Thanks for any help.

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For bonus points, how do I make sure "s = 5;" works? –  Sam Dec 17 '10 at 11:21
    
operator= is your friend. –  Nim Dec 17 '10 at 11:24

2 Answers 2

up vote 6 down vote accepted
class sType
{
public:
    operator int() const { return val; }

private:
    int val;
};
share|improve this answer
1  
Nice idea with the private but you've left him no way to set it –  Rup Dec 17 '10 at 11:13
    
Well that was easy, thanks! –  Sam Dec 17 '10 at 11:13
    
@Rup: I assume OP knows what a constructor is :) –  Alexandre C. Dec 17 '10 at 13:26
4  
By the way, C++0x allows the conversion function (operator int()) to be marked "explicit", so that the cast (int)s is required. As it stands, you can write just array[s], but sometimes it's not desirable to allow that, for the same reason that sometimes you want to mark single-arg constructors explicit. –  Steve Jessop Dec 17 '10 at 13:30
1  
@Steve: good to know. I try to avoid conversion functions usually, because of the implicit semantics. –  Alexandre C. Dec 17 '10 at 13:40
class sType
{
  public:
    operator int() const
    {
      return val;
    }
    int val;
};

To make s = 5 work, provide a constructor that takes an int:

class sType
{
  public:

    sType (int n ) : val( n ) {
    }

    operator int() const
    {
      return val;
    }
    int val;
};

The compiler will then use that constructor whenever it need to convert an sType to an int.

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