13

It's defined in /usr/include/stdint.h:

typedef long int                intptr_t;

is it supposed to be a type for integer or pointer?

  • @Chris Lutz ,how ? man intptr_t doesn't turn up anything. – compile-fan Jun 20 '11 at 11:16
  • 1
    I believe there's a manpage for stdint.h. And there's always Google. – Chris Lutz Jun 20 '11 at 11:17
23

It is a signed integer type that is big enough to hold a pointer.

  • 3
    Worth pointing out that the holding pointer part meas that it will probably be a different size on 32-bit and 64-bit platforms ... – Goz Jun 20 '11 at 11:15
  • Just out of curiosity: why is it necessary to have a signed and an unsigned version of [u]intptr_t ? – JohnTortugo Feb 9 '17 at 18:10
2

It is a signed integer type that guaranteed to can hold a void* type.

And why there is also [u]intptr_t? Because:

Any valid pointer to void can be converted to intptr_t or uintptr_t and back with no change in value. The C Standard guarantees that a pointer to void may be converted to or from a pointer to any object type and back again and that the result must compare equal to the original pointer. Consequently, converting directly from a char * pointer to a uintptr_t is allowed on implementations that support the uintptr_t.

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