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In code walk-through into some others code I found * What is this ?

here is the same prototype of that code and it's not giving any error. Only warning comes with gcc 4.5.2 But on windows it's not giving warning and compiles properly. I can't provide actual code due to IP of the company but I wanted to know this how and why this is correct?

#include<stdio.h>

typedef enum e
{
        a,
        b,
        c
}x,*y;

int main()
{
        x t=4;
        printf("x : %d\n",t);
        y m=5;
        printf("*y : %d\n",m);
        return 0;
}
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The line y m=5; is a conversion from integer to pointer without a cast. It's well worth paying attention when you get warned for that. –  Steve Jessop Nov 6 '12 at 12:48

3 Answers 3

up vote 6 down vote accepted

It is equivalent to :

typedef enum e *y;

So y is an alias of enum e *, ie y m declares m as pointer to enum e. The following code works indeed as expected:

#include <stdio.h>

x t = 4;
printf("x : %d\n", t);
y m = &t;
printf("*y : %d\n", *m);
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thanks +1 for it –  Omkant Nov 6 '12 at 12:52

This is just a special case of the general pattern typedef TYPE * NAME, which simply means that "from this point, NAME is an alias for the type "pointer to TYPE". Here, TYPE can be any valid type declaration.

In general, I'm opposed to typedef:ing away the asterisk like this, since it makes code that uses the type very confusing. Pointers in C are very important, and it's often good to know if you have a value or just a pointer to a value, and this practice makes that fact hidden.

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+1 for not typedefing the asterisk away, this is horrible when reading code. –  Eregrith Nov 6 '12 at 12:56
    
Unless it's a pointer to an incomplete type, in which case as far as the user is concerned it's a handle, and likely they have no business caring whether the handle is implemented as a pointer or an integer. But this example isn't that. –  Steve Jessop Nov 6 '12 at 12:59

It's not a deference operator (in this usage), it's a pointer to an enum e.

The reason you're getting a warning is probably this line:

y m=5;

You're assigning an integer to a pointer. You need to assign it an address:

y m=&t;
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