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How does the following snippet work? What is IN? Eclipse says that IN stands for 'macro expansion':

 UWORD32 (*get_u32)(IN UWORD8 *buffer_ptr);    /* Gets unsigned 32bit word   */
                                           /* from the buffer */

This above code is part of a struct. and is used like this.

struct my struct s;
UWORD8* buf;

s->get_u32(buf);

How does it work?

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Also mention System (Linux/window?)... I search 'IN' through Library files in Linux, didn't find such the macro. –  Grijesh Chauhan Oct 10 '12 at 4:24

2 Answers 2

up vote 2 down vote accepted

I would guess that IN is #defined somewhere as const:

#define IN const    // input parameters are const

get_u32 is just a function pointer - the function takes a single parameter (a pointer to a UWORD8) and returns a UWORD32.

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The definition of IN is this: /* Parameter declared with IN, will be used to hold INput value */ #define IN there is no const...what does this mean? –  Namratha Oct 10 '12 at 4:33
1  
It doesn't make much difference to the meaning - it's just a notational convenience. The IN is effectively just a comment in this case. –  Paul R Oct 10 '12 at 4:41
    
I see. Thanks a lot! :) –  Namratha Oct 10 '12 at 4:47

You can even declare IN as "nothing"

#define IN
#define OUT

In this case it will just make your code more readable :)

void func ( IN param_t param1,         /* INPUT PARAM */
            IN param_t param2,         /* INPUT PARAM */
            OUT param_t *param3);      /* OUTPUT PARAM */
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