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I would like to wrap my calls to malloc/realloc into a macro that would stop the program if the method returns NULL

can I safely use the following macro ?

#define SAFEMALLOC(SIZEOF) (malloc(SIZEOF) || (void*)(fprintf(stderr,"[%s:%d]Out of memory(%d bytes)\n",__FILE__,__LINE__,SIZEOF),exit(EXIT_FAILURE),0))
char* p=(char*)SAFEMALLOC(10);

it compiles, it works here with SAFEMALLOC(1UL) and SAFEMALLOC(-1UL) but is it a safe way to do this ?

Thank you.

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3  
Why a macro, why not a function? That way you could actually get the "expression" to return a useful result. –  Charles Bailey Apr 30 '13 at 10:02
    
Note that SIZEOF is evaluated twice when the call fails (not a disaster since the program exits, but still...). –  Kninnug Apr 30 '13 at 10:05
    
casting the result wont make it any safer, though... –  wildplasser Apr 30 '13 at 10:06
    
these are not my sources, I would like to avoid to create some new files (memory.c, memory.h) and I know the author want to avoid some calls to other functions (micro-optimization for a scientific C program) –  Pierre Apr 30 '13 at 10:07

3 Answers 3

up vote 4 down vote accepted

No, it's broken.

It seems to assume that the boolean or operator || returns its argument if it's deemed true, that's not how it works.

C's boolean operators always generate 1 or 0 as integers, they do not generate any of the input values.

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3  
true and false are macros in C99 that you can choose to include with stdbool.h. The result of || is still an int in C99. –  Charles Bailey Apr 30 '13 at 10:19
    
@CharlesBailey Okay, thanks. I edited. –  unwind Apr 30 '13 at 10:21
static void* safe_malloc(size_t n, unsigned long line)
{
    void* p = malloc(n);
    if (!p)
    {
        fprintf(stderr, "[%s:%ul]Out of memory(%ul bytes)\n",
                __FILE__, line, (unsigned long)n);
        exit(EXIT_FAILURE);
    }
    return p;
}
#define SAFEMALLOC(n) safe_malloc(n, __LINE__)
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Using your macro:

#define SAFEMALLOC(SIZEOF) (malloc(SIZEOF) || (void*)(fprintf(stderr,"[%s:%d]Out of memory(%d bytes)\n",__FILE__,__LINE__,SIZEOF),exit(EXIT_FAILURE),0))

#include <stdio.h>
#include <stdlib.h>

int main(void)
{
    char *p = SAFEMALLOC(10);
    char *q = SAFEMALLOC(2000);

    printf("p = %p, q = %p\n", p, q);

    // Leak!
    return 0;
}

Warnings (should be a clue):

weird.c:8: warning: cast to pointer from integer of different size
weird.c:8: warning: initialization makes pointer from integer without a cast
weird.c:9: warning: cast to pointer from integer of different size
weird.c:9: warning: initialization makes pointer from integer without a cast

Output:

p = 0x1, q = 0x1

In summary, no, it's not very safe! Writing a function would probably be less error prone.

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i would cast to (char*) . But now I don't understand why p and q returns 0x1 ! That's the same address/pointer isn't it ? :-) –  Pierre Apr 30 '13 at 10:11
2  
@Pierre: No, you shouldn't cast to char*; that would hide the warning that tells you that something is wrong! –  Charles Bailey Apr 30 '13 at 10:16
    
@Pierre "But now I don't understand why p and q returns 0x1 ! " -- That's because you haven't done even the most rudimentary work to understand the language you're programming in. The value of (x || y) is always either 0 or 1. –  Jim Balter Apr 30 '13 at 11:16
    
@Pierre As for casts, good programmers treat them like X-rays or antibiotics ... to be used only if you absolutely must. –  Jim Balter Apr 30 '13 at 11:23

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