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Stumbled on this row of c code but was unsure if it is valid or not. What does it do? What type will the variable have?

const VARNAME = "String of text";
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Hope this link1, link2 helps you... –  Fahim Parkar Feb 22 '12 at 12:58
2  
Just out of curiosity, where did you encounter this little abomination? –  larsmans Feb 22 '12 at 13:09
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3 Answers

up vote 6 down vote accepted

Curiously, I wasn't expecting this to compile, but it does. However, compiler doesn't like it too much:

..\main.c:4:7: warning: type defaults to 'int' in declaration of 'VARNAME'
..\main.c:4:17: warning: initialization makes integer from pointer without a cast

So it does take int as default type, and thus VARNAME has a pointer value, since a string is a pointer (which later could be cast as char*).

This works perfectly (on a Intel IA32 machine):

#include<stdio.h>

const VARNAME = "String of text";

int main()
{
    printf("%s\n", (char*)VARNAME);
    return 0;
}

But I personally wouldn't use such implicit typing. As explained on the comments below:

it's even dangerous since sizeof(int) might be smaller than sizeof(char*)

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In your environment yes, but I believe the 'VARNAME' is defined in the OP's code. –  moose Feb 22 '12 at 13:01
2  
It's even dangerous since sizeof(int) might be smaller than sizeof(char*). –  user1203803 Feb 22 '12 at 13:04
    
This might work perfectly on your box, but storing a pointer in an int has implementation-defined behavior. –  larsmans Feb 22 '12 at 13:04
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What GCC tries to do is:

  1. Make a constant VARNAME with the default type, that is int;
  2. make this constant int contain a pointer to the character constant.

On my machine, it doesn't compile, probably because int is 32 bits and pointers are 64 bits wide.

a.c:1: error: initializer element is not computable at load time
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Find the definition of "VARNAME" and you will see. I would say something like "char*".

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