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Asked: 2026-06-14T19:59:29+00:00

I have this code: #define ABC abc void main() { char *s = malloc(sizeof(char)*3);

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I have this code:

#define ABC "abc"

void main()
{
char *s = malloc(sizeof(char)*3);
printf("%p ", s);
s = ABC;
printf("%p ", s);
free(s);
}

This is the output:

0x8927008 0x8048574 Segmentation fault (core dumped)

As you can see, the address of string s changes after assignment (I think this is why free() gives segfault).
Can anyone explain me why and how this happens?
Thank you!

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1 Answer

  1. Editorial Team

    The line

    s = ABC;

    changes s to point to a different string which may well be in read-only memory. Attempting to free such memory results in undefined behaviour. A crash is likely.

    I think you wanted

    strcpy(s, ABC);

    instead. This would copy the char array “abc” into s. Note that this will cause a further bug – s is too short and doesn’t have space for the nul terminator at the end of ABC. Change you allocation to 4 bytes to fix this

    char *s = malloc(4);

    or use

    char *s = malloc(sizeof(ABC));

    if ABC is the max length you want to store.

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