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I was wondering why this size_t is used where I can use say int type. Its said that size_t is a return type of sizeof operator. What does it mean? like if I use sizeof(int) and store what its return to an int type variable, then it also works, it's not necessary to store it in a size_t type variable. I just clearly want to know the basic concept of using size_t with a clearly understandable example.Thanks

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You can use an int to store the return of sizeof in the same way that you can sometimes store 2147483647 in an int. It just so happens that the implementation specific sizes match up correctly. –  Lalaland Mar 10 '12 at 23:39
    
See also this question: stackoverflow.com/questions/918787/… –  ChrisWue Mar 10 '12 at 23:42
    
Can anyone confirm that size_t is the same size of the processor registers? –  arthurprs Mar 10 '12 at 23:44
    
@arthurprs It's not. int_fastN_t is more likely, but still not. –  Pubby Mar 10 '12 at 23:48
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Well, as you say, the return type of sizeof is size_t. You seem to be confused by the fact that types are convertible in C++. For example, double x = 'a'; is possible, even though the type of 'a' is char. –  Kerrek SB Mar 10 '12 at 23:52

5 Answers 5

up vote 8 down vote accepted

size_t is guaranteed to be able to represent the largest size possible, int is not. This means size_t is more portable.

For instance, what if int could only store up to 255 but you could allocate arrays of 5000 bytes? Clearly this wouldn't work, however with size_t it will.

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Technically int has to be at least 16 bits, as it has to span at least the range [-32767..32767]. (Why not -32768? To accommodate ones'-complement and sign-and-magnitude systems, in case anyone wants to use C on an old Univac machine. Of course those have 18- and 36-bit integers, with 9-bit char.) –  torek Mar 11 '12 at 0:54
    
@torek For some reason I'm under the impression that int is only required to be > 16 in C, not C++. Haven't checked the standard though. –  Pubby Mar 11 '12 at 1:10
    
@Pubby: C++ inherits that from C. 1.1 p2 <quote>C++ is a general purpose programming language based on the C programming language as described in ISO/IEC 9899:1999 Programming languages </quote> –  Loki Astari Mar 11 '12 at 3:11

The simplest example is pretty dated: on an old 16-bit-int system with 64 k of RAM, the value of an int can be anywhere from -32768 to +32767, but after:

char buf[40960];

the buffer buf occupies 40 kbytes, so sizeof buf is too big to fit in an int, and it needs an unsigned int.

The same thing can happen today if you use 32-bit int but allow programs to access more than 4 GB of RAM at a time, as is the case on what are called "I32LP64" models (32 bit int, 64-bit long and pointer). Here the type size_t will have the same range as unsigned long.

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It is implementation defined but on 64bit systems you will find that size_t is often 64bit while int is still 32bit (unless it's ILP64 or SILP64 model).

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depending on what architecture you are on (16-bit, 32-bit or 64-bit) an int could be a different size.

if you want a specific size I use uint16_t or uint32_t .... You can check out this thread for more information

size of int, long, etc

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You use size_t mostly for casting pointers into unsigned integers of the same size, to perform calculations on pointers as if they were integers, that would otherwise be prevented at compile time. Such code is intended to compile and build correctly in the context of different pointer sizes, e.g. 32-bit model versus 64-bit.

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