What is the difference between an int and a long in C++?
Solution 1:
It is implementation dependent.
For example, under Windows they are the same, but for example on Alpha systems a long was 64 bits whereas an int was 32 bits. This article covers the rules for the Intel C++ compiler on variable platforms. To summarize:
OS arch size
Windows IA-32 4 bytes
Windows Intel 64 4 bytes
Windows IA-64 4 bytes
Linux IA-32 4 bytes
Linux Intel 64 8 bytes
Linux IA-64 8 bytes
Mac OS X IA-32 4 bytes
Mac OS X Intel 64 8 bytes
Solution 2:
The only guarantee you have are:
sizeof(char) == 1
sizeof(char) <= sizeof(short) <= sizeof(int) <= sizeof(long) <= sizeof(long long)
// FROM @KTC. The C++ standard also has:
sizeof(signed char) == 1
sizeof(unsigned char) == 1
// NOTE: These size are not specified explicitly in the standard.
// They are implied by the minimum/maximum values that MUST be supported
// for the type. These limits are defined in limits.h
sizeof(short) * CHAR_BIT >= 16
sizeof(int) * CHAR_BIT >= 16
sizeof(long) * CHAR_BIT >= 32
sizeof(long long) * CHAR_BIT >= 64
CHAR_BIT >= 8 // Number of bits in a byte
Also see: Is long
guaranteed to be at least 32 bits?
Solution 3:
When compiling for x64, the difference between int and long is somewhere between 0 and 4 bytes, depending on what compiler you use.
GCC uses the LP64 model, which means that ints are 32-bits but longs are 64-bits under 64-bit mode.
MSVC for example uses the LLP64 model, which means both ints and longs are 32-bits even in 64-bit mode.
Solution 4:
The C++ specification itself (old version but good enough for this) leaves this open.
There are four signed integer types: '
signed char
', 'short int
', 'int
', and 'long int
'. In this list, each type provides at least as much storage as those preceding it in the list. Plain ints have the natural size suggested by the architecture of the execution environment* ;[Footnote: that is, large enough to contain any value in the range of INT_MIN and INT_MAX, as defined in the header
<climits>
. --- end foonote]
Solution 5:
As Kevin Haines points out, ints have the natural size suggested by the execution environment, which has to fit within INT_MIN and INT_MAX.
The C89 standard states that UINT_MAX
should be at least 2^16-1, USHRT_MAX
2^16-1 and ULONG_MAX
2^32-1 . That makes a bit-count of at least 16 for short and int, and 32 for long. For char it states explicitly that it should have at least 8 bits (CHAR_BIT
).
C++ inherits those rules for the limits.h file, so in C++ we have the same fundamental requirements for those values.
You should however not derive from that that int is at least 2 byte. Theoretically, char, int and long could all be 1 byte, in which case CHAR_BIT
must be at least 32. Just remember that "byte" is always the size of a char, so if char is bigger, a byte is not only 8 bits any more.