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The following code:


int main (void) {
    FILE** f;
    if ( (*f = (FILE *)malloc( sizeof(FILE *)) ) == NULL) {
        printf("Out of RAM or some other disaster!\n");
        return 1;
    return 0;

compiles and runs without complaint on Mac OS X 10.8. However on Windows 7 (compiling with MinGW) it crashes on the malloc(). Why would this be and or any ideas to stop it happening?


Note: This was obviously originally part of a larger program but I've reduced the entire program to the above and tried just this code on both the Mac and PC and have replicated the behaviour.

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"I've reduced the entire program to the above" - well done! –  Thomas Padron-McCarthy Nov 29 '12 at 18:51
Actually, the code won't compile before you remove an opening parenthesis in the if. You close one less than you open there. –  Daniel Fischer Nov 29 '12 at 19:22
@DanielFischer d'oh, typo in the transcription; fixed now. –  Smalltown2k Nov 29 '12 at 19:44

4 Answers 4

f is not pointing anywhere yet, so dereferencing it (*f) is invalid and has an undefined behavior.

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It's the same problem as int *j; *j = 1;. –  David Schwartz Nov 29 '12 at 18:51

You're assigning the malloc-ed memory to *f which is undefined behavior, since f is uninitialized. Change to

f = (FILE **)malloc( sizeof(FILE *))
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You have to allocate f first

f = (FILE **)malloc( sizeof(FILE *))

and then you can allocate for *f

*f = (FILE *)malloc( sizeof(FILE))
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The general idiom for dynamic allocation is

T *p = malloc(sizeof *p * num_elements);


T *p;
p = malloc(sizeof *p * num_elements);

Thus, the proper way to allocate f is:

f = malloc(sizeof *f)

The cast is unnecessary in C, and casting the result of malloc is discouraged. Since the type of the expression *f is FILE *, sizeof *f is the same as sizeof (FILE *), except that with sizeof *f you don't need to worry about making sure you have the type right.

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