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I am wondering why in the following program sizeof(int) returns a different value than sizeof(int*).

Here is the small program:

int main(){
    std::cout<<sizeof(int)<<endl;
    std::cout<<sizeof(int*)<<endl;
    return 0;
}

And here is the output:

4
8

Till now I remember the size of a integer pointer is 4byte(gcc compiler). How can I check the correct size of a pointer? Is it computer dependent?

I am running ubuntu 12.04

# lsb_release -a

Distributor ID: Ubuntu 
Description: Ubuntu 12.04 LTS 
Release:    12.04 
Codename:   precise

Is the size of pointer is not constant(standard size) 8 bytes.

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6  
64 bit Operating System? –  gliderkite Jun 11 '12 at 17:20
1  
@ahenderson- Are you sure that all pointers are guaranteed to be the same size? –  templatetypedef Jun 11 '12 at 17:22
1  
FYI, there is no "Standard Size". –  user195488 Jun 11 '12 at 17:25
1  
@ahenderson: Pointers to different types don't have to be the same size. –  Oliver Charlesworth Jun 11 '12 at 17:26
1  
@Oli Charlesworth : Could I see an example in code. I'm not too sure on the issue now. –  andre Jun 11 '12 at 17:27

4 Answers 4

up vote 7 down vote accepted

The size of an int and an int* are completely compiler and hardware dependent. If you're seeing eight bytes used in an int*, you likely have 64-bit hardware, which translates into eight bytes per pointer.

Hope this helps!

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4  
"You likely have a 64-bit operating system." Indeed, but more importantly, your process is likely a 64-bit process. :-) –  James McNellis Jun 11 '12 at 17:21
3  
I'd like to add, that the only type whose size is defined by standard is char. sizeof(char) is always 1 –  LihO Jun 11 '12 at 17:22
1  
@LihO: The size of a char is not actually defined by the standard, but sizeof express is results in number of chars. –  K-ballo Jun 11 '12 at 18:46
    
@K-ballo: I think that was true before C99 since C99 section 6.5.3.4 says: "The sizeof operator yields the size (in bytes) of its operand". –  LihO Jun 11 '12 at 18:53
    
@Liho: Unless they have fixed the number of bits in a char (never gonna happen)... a char is one byte but a byte size is implementation defined. –  K-ballo Jun 11 '12 at 18:56

The size of a pointer is system, compiler, and architecture-dependent. On 32-bit systems it will typically be 32 bits while on 64-bit systems they will typically be 64 bits.

If you're trying to store a pointer into an integer for later restoration into the pointer again you can use the type intptr_t which is an integral type big enough to hold (I believe) normal (non-function) pointer types.

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sizeof(char) == 1

There are no other guarantees(*).

In practice, pointers will be size 2 on a 16-bit system, 4 on a 32-bit system, and 8 on a 64-bit system.


(*) See the comment of James Kanze.

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1  
thanks to all:) my doubt is clear –  yogi Jun 11 '12 at 17:40
2  
sizeof(char) <= sizeof(short) <= sizeof(int) <= sizeof(long) <= sizeof(long long) is also guaranteed. As is sizeof(float) <= sizeof(double) <= sizeof(long double). (There's also a guarantee that all sizes are integral, but that's more or less understood.) –  James Kanze Jun 11 '12 at 18:02
    
@JamesKanze Wanting to be pedantic yes, good comment. I tried to write the answer as clear as possible according to the type of question and questioner. –  gliderkite Jun 11 '12 at 18:06

For 32-bit systems, the 'de facto' standard is ILP32 - that is, int, long and pointer are all 32-bit quantities.

For 64-bit systems, the primary Unix 'de facto' standard is LP64 - long and pointer are 64-bit (but int is 32-bit). The Windows 64-bit standard is LLP64 - long long and pointer are 64-bit (but long and int are both 32-bit).

At one time, some Unix systems used an ILP64 organization.

None of these de facto standards is legislated by the C standard (ISO/IEC 9899:1999), but all are permitted by it.

and

If you are concerned with portability, or you want the name of the type reflects the size, you can look at the header , where the following macros are available:

int8_t int16_t int32_t int64_t

int8_t is guaranteed to be 8 bits, and int16_t is guaranteed to be 16 bits, etc.

See this question.

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There's no guarantee that int8_t etc. exist. For maximum portability, just use int, unless you know you need something larger, and validate your input. –  James Kanze Jun 11 '12 at 18:03
    
@JamesKanze: ??? <inttypes.h> is fairly standard. pubs.opengroup.org/onlinepubs/9699919799/basedefs/… –  user195488 Jun 11 '12 at 20:01
    
@OAOD <stdint.h> is standard C and C++ header in which these types are defined, and in <stdint.h>, int8_t et al. are marked as optional. In the C standard, I think they are "required" if the hardware supports them; that is at any rate the intent. But they must be exact size types, and the signed types must be 2's complement. On machines which don't have 8 bit bytes, or which aren't 2's complement, they won't be defined. (Posix requires them, which limits the hardware on which it can be implemented.) –  James Kanze Jun 12 '12 at 7:40
    
@JamesKanze: Thanks for your insight. –  user195488 Jun 12 '12 at 12:16

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