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In C and C++, do I have the guarantee that all pointers have the same size in bytes, or in other words :

sizeof(void*) = sizeof(char*) = sizeof(int*) = ...

or there are some akward systems on which that is not true ?

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marked as duplicate by leemes, Shafik Yaghmour, Fanael, billz, Mike May 10 '13 at 12:30

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I'll let someone else answer about the example you gave, but one that certainly may vary in C++ is class Foo; sizeof(void (Foo::*)()) –  Dark Falcon May 10 '13 at 12:13
    
@DarkFalcon Why might this vary? –  leemes May 10 '13 at 12:14
    
@leemes: Because it is not a memory address. "The bottom line is that unlike a global function pointer, a member function pointer is not just the address of the first instruction of the function in most implementations" yosefk.com/c++fqa/function.html –  Dark Falcon May 10 '13 at 12:20
    
It's not only their size you have to worry about. You need to worry about alignment requirements too (and possibly, bit representation). –  pmg May 10 '13 at 12:23
    
They do on the same system. All pointers are (in C, idk about C++ with the class pointers), the same for a given system. Its because a pointer points to an address in memory. In a 32 bit system (4 bytes), it takes 4 bytes to address all regions of memory. Therefore, a pointer to a value will be 4 bytes (since we only need 4 bytes to reach any address). On 64, its typically 8 byte pointers(because we need twice as many bits to address all the memory!). Some systems may vary though, but this is the typical implementation. –  Magn3s1um May 10 '13 at 13:24

1 Answer 1

up vote 0 down vote accepted

No. There is no guarantee in the standard.

There are some exception is some systems. Although it's fixed in many typical systems and depends on the architecture of that system. For example in 32-bit systems pointers are 4 bytes.

By the way, uintptr_t can hold pointers (Maybe we can assume it has the maximum size of a pointer in the current system):

uintptr_t unsigned integer type capable of holding a pointer

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I know that 32 and 64 bits systems have oftenly different pointer size. But my question is not that. My question is : on a given architecture, do I have the guarantee that pointer to different types have the same size. –  Vincent May 10 '13 at 12:23
    
"No", even in a single given machine there is no guarantee. –  deepmax May 10 '13 at 12:25
    
It is not guaranteed that no pointer has size larger than uintptr_t. The standard guarantees that any pointer can be converted to uintptr_t and back. However, a pointer could have some expanded form for convenience (e.g., segment and offset), and converting it to uintptr_t could compress it to a canonical representation. –  Eric Postpischil May 10 '13 at 12:43
    
@EricPostpischil: Very precision :-) I think as a programmer it's easier to assume it's the maximum. I updated my answer to make it less certain. –  deepmax May 10 '13 at 13:00
    
@Vincent: 6.2.5/28, "A pointer to void shall have the same representation and alignment requirements as a pointer to a character type.48) Similarly, pointers to qualified or unqualified versions of compatible types shall have the same representation and alignment requirements. All pointers to structure types shall have the same representation and alignment requirements as each other. All pointers to union types shall have the same representation and alignment requirements as each other. Pointers to other types need not have the same representation or alignment requirements." –  John Bode May 10 '13 at 13:16

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