Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I understand that the standard says that the size of a long integer is implementation dependant, but I am not sure why.

All it needs to do is to be able to store -2147483647 to 2147483647 or 0 to 4294967295.

Assuming that 1 byte is 8 bits, this should never need more than 4 bytes. Is it safe to say, then, that a long integer will take more than 4 bytes only if a byte has less than 8 bits? Or could there be other possibilities as well? Like maybe inefficient implementations wasting space?

share|improve this question
    
Some people like to have longer integers. They can be very handy at times. (The history of the various integer sizes in C is quite convoluted.) –  Hot Licks May 27 '12 at 2:43
    
But the range is fixed! –  Lazer May 27 '12 at 2:44
    
Yet it might be sometimes faster to compute on larger entities. AFAIK original Itanium and Alpha –  qdot May 27 '12 at 2:45
1  
@K-ballo: C89 and C++98 both specifically require that UCHAR_MAX/std::limits<unsigned char>::max be at least 256 (and that signed char cover (at least) -127..127. –  Jerry Coffin May 27 '12 at 2:50
1  
Probably because the situation on 32-bit systems, where int and long are the same size, is a bit silly. –  Steven Burnap May 27 '12 at 4:59
show 4 more comments

6 Answers

up vote 1 down vote accepted

The extra bytes aren't a waste of space. A larger range is quite useful. The standard specifies minimum ranges, not the precise range itself; there's nothing wrong with having wider types.

When the standard originally specified an int should be at least 16 bits, common processors had registers no larger than that. Representing a long took two registers and special operations!

But then 32 bits became the norm, and now ints are 32 bits everywhere and longs are 64. Nowadays most processors have 64-bit instructions, and a long can often be stored in a single register.

share|improve this answer
    
long long is 64-bit, at least on 32-bit compiler on 32-bit system. Never heard about 128-bit. Do you have any link for that? –  nhahtdh May 27 '12 at 2:50
    
@nhahtdh -- I was totally wrong. A little Googling shows that 128-bit long long was killed by the C99 committee. I have removed the whole sentence from my post. –  Ernest Friedman-Hill May 27 '12 at 2:54
    
Another thing: long is not always 64-bit. It can be 32-bit, actually. –  nhahtdh May 27 '12 at 2:56
    
@nhahtdh there's __int128 on gcc stackoverflow.com/questions/tagged/int128 –  Lưu Vĩnh Phúc May 30 at 9:48
    
@LưuVĩnhPhúc: It is GNU C extension (which means you can only use it if you use gcc as your compiler). It is not part of the C standard. –  nhahtdh Jun 9 at 21:25
show 1 more comment

You're assuming quite a few things:

  • A byte is CHAR_BIT bits wide

The PDP-10 had bytes ranging from 1 to 36 bits. The DEC VAX supported operations on 128-bit integer types. So, there's plenty reason to go over and above what the standard mandates.

  • The limits for data types are given in §3.9.1/8

Specializations of the standard template std::numeric_limits (18.3) shall specify the maximum and minimum values of each arithmetic type for an implementation.

Lookup <limits> header.

This article by Jack Klein may be of interest to you!

share|improve this answer
add comment

An obvious use for a long larger than 32 bits is to have a larger range available.

For example, before long long int (and company) were in the standard, DEC was selling 64-bit (Alpha) processors and a 64-bit operating system. They built a (conforming) system with:

char = 1 byte
short = 2 bytes
int = 4 bytes
long = 8 bytes

As to why they'd do this: well, an obvious reason was so their customers would have access to a 64-bit type and take advantage of their 64-bit hardware.

share|improve this answer
add comment

long can be 64-bit or 32-bit, depending on the system. I am not sure of the condition, though. To guarantee 64-bit integer, use long long.

If you want that range, int is sufficient (on 32-bit and 64-bit system).

share|improve this answer
1  
uint64_t guarantees 64 bits as well, and is a bit more clear imo. –  chris May 27 '12 at 3:01
    
Thanks for the comment. May I ask in which standard that stdint.h is defined? –  nhahtdh May 27 '12 at 3:04
    
I'm not really the person for official standard stuff, but it should be there with the rest of the std__.h/cstd__ stuff. –  chris May 27 '12 at 3:06
    
@nhahtdh: it's definitely in C99 and C++11. I think it was in C95 (C90 + Technical Corrigendum 1) but I no longer have materials handy to check that with. –  Jerry Coffin May 27 '12 at 3:07
add comment

If you want an integer of a specific size, then you want to use the types with the size specified:

int8_t int16_t int32_t int64_t int128_t ...

These are available in some random header file (it varies depending on the OS you're using, although in C++ it seems to be <stdint>)

You have the unsigned version using a u at the beginning (uint32_t).

The others already answered why the size would be so and so.

Note that the newest Intel processors support numbers of 256 bits too. What a waste, hey?! 8-)

Oh! And time_t is starting to use 64 bits too. In 2068, time_t in 32 bits will go negative and give you a date in late 1800... That's a good reason to adopt 64 bits for a few things.

share|improve this answer
add comment

One reason for using an 8 byte integer is to be able to address more than 4 gigs of memory. Ie. 2^32 = 4 gigabytes. 2^64 = well, it's a lot!

Personally, I've used 8 byte ints for implementing a radix sort on double floats (casting the floats as ints then doing magical things with it that aren't worth describing here. :))

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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