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This attempt to define a function overloaded for three sizes of integers fails. Why?

byte hack(byte x)
{
   return x+1;
}

unsigned short hack(unsigned short x)
{
   return x+2;
}

unsigned int hack(unsigned int x)
{
   return x+3;
}

The compiler tells me: zzz.cpp:98: error: redefinition of ‘unsigned int hack(unsigned int)’ zzz.cpp:88: error: ‘byte hack(byte)’ previously defined here

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4  
Since byte isn't a standard type, perhaps you can look up its definition and provide it here? –  Mark Ransom Sep 22 '11 at 22:47

2 Answers 2

up vote 9 down vote accepted

Your compiler/code thinks that byte and unsigned int are the same thing...

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+1 because yes, that's what my compiler (gcc) thinks. Why? Because someone at my desk stupidly wrote "typedef unsigned int byte;" as I just discovered a minute ago chasing another bug. –  DarenW Sep 22 '11 at 23:14
2  
@DarenW: Probably should just use std::uin8_t directly. Or char if you don't mean octet. –  GManNickG Sep 23 '11 at 0:45

Overloaded functions can differ only by their parameters count and/or types and not the return type. So, these are three different functions.

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1  
Last i checked, functions could differ by return type if their arguments' types differed as well. That's kinda how template functions work. :P The three are different functions anyway; the fact that they have the same name means nothing to the compiler, since C++ turns the names into something like hack_ii_i anyway. The name's just a convenience for humans. –  cHao Sep 22 '11 at 23:08

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