0

Is it possible to printf the memory address of the first element of an array in C?

The compiler reports an error when I try to:

printf("i%/n", @array[0])

Where I've declared array[] = {23, 56, 78}.

3
  • 2
    In C, @ does not denote an array. Read a basic book :)
    – SergeyA
    Nov 20, 2015 at 16:14
  • check a reference for printf Nov 20, 2015 at 16:17
  • @Fiddling why not perl ?
    – machine_1
    Nov 20, 2015 at 16:34

3 Answers 3

5

Did you try:

printf("%p\n", (void*)array);

?

1
  • Technically, you also need to convert array to void* but leaving out the cast is fine on all but some weird platforms.
    – fuz
    Nov 20, 2015 at 16:18
4
printf("i%/n", @array[0])

should be

printf("%p\n", (void*)&array[0]);

Use the format specifier p to print address

2

Use the %p formatting specifier. Use & instead of @ to take an address, although this is redundant: &foo[0] is equal to foo except when an operand to sizeof. Technically, you also need to cast the array pointer to void* unless it's a pointer to character (char*) in which case the cast isn't needed:

printf("%p\n", (void*)array);
9
  • Would you expand on "... unless it's a pointer to character (char*)..."? The C11 spec says "The argument shall be a pointer to void." Nov 20, 2015 at 16:33
  • @chux See ISO 9899:2011 §6.5.2.2 ¶6 #2: If the function is defined with a type that does not include a prototype, and the types of the arguments after promotion are not compatible with those of the parameters after promotion, the behavior is undefined, except for the following cases: (...) both types are pointers to qualified or unqualified versions of a character type or void.
    – fuz
    Nov 20, 2015 at 16:38
  • @chux Sorry, wrong quote. The right one is of course §7.16.1.2 ¶2 #2 which reads similarly: If there is no actual next argument, or if type is not compatible with the type of the actual next argument (as promoted according to the default argument promotions), the behavior is undefined, except for the following cases: (...) one type is pointer to void and the other is a pointer to a character type.
    – fuz
    Nov 20, 2015 at 16:41
  • §7.16.1.2 specifies va_arg() and we do not know printf() uses va_arg(). §6.5.2.2 does look closer to the issue. IAC, doubt real machines would have any trouble. Might make a good SO post? Nov 20, 2015 at 16:47
  • @chux §6.5.2.2 considers unprototyped functions (which printf isn't), so it doesn't apply. §7.16.1.2 considers the only standard way to retrieve variable arguments, it's unlikely that the committee intended printf() to behave more restrictive than any function with variable arguments you could define in standard C.
    – fuz
    Nov 20, 2015 at 16:48

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.