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The prototype of memset is void *memset(void *s, int c, size_t n);. So why the third parameter is of type size_t ? memset is just an example, I want more general reasons. Thanks in advance.

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See also: stackoverflow.com/questions/502856/… –  Charles Bailey Apr 8 '10 at 13:13

4 Answers 4

up vote 5 down vote accepted

size_t is the return type of the sizeof operator and is used to describe memory sizes. In the case of memset, it specifies the number of bytes (n) in the memory block (s) that should be set to the given value (c).

The size in bits of size_t varies based on the address space of the target platform. It does not always correlate to the register size. For example, in a segmented memory architecture the sizeof (size_t) can be smaller than the sizeof (void *). Typically, size_t would be 4 bytes on a 32-bit machine, 8 bytes on a 64-bit machine, etc.

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Could you please explain more about why sizeof (size_t) can be smaller than the sizeof (void *)? Thanks a lot ;) –  Grissiom Apr 8 '10 at 13:25
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In segmented memory, the size of each segment is smaller than the total memory size. For example, in a 80286 you can address 2^24 total bytes but only only use 2^16 contiguous bytes within each segment. See en.wikipedia.org/wiki/Memory_segmentation Now, I don't have a 80286 with a C99 compiler on it handy, but I'd guess that sizeof (size_t) == 2 and sizeof (void *) == 4. –  Judge Maygarden Apr 8 '10 at 13:59
    
So what it will be when I try to memset 2^20 bytes in 80286? Although it's too large but I think it make sense because we can address 2^24 bytes. –  Grissiom Apr 8 '10 at 14:34
    
In that case you would overflow the size_t variable and not memset any bytes because (1 << 20) % (1 << 16) == 0. –  Judge Maygarden Apr 8 '10 at 15:18
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The reason that you can only memset 2^16 bytes instead of 2^20 or 2^24 is that the segment offset register has to be changed to go beyond 64 kB. Otherwise, the address would wrap around back to the beginning. To prevent this it makes sense to use a 16-bit size_t with a 32-bit void *. Note that C supports different pointer types to deal with segmented architectures ("near, far and huge":en.wikipedia.org/wiki/Intel_Memory_Model). –  Judge Maygarden Apr 8 '10 at 15:28

size_t is the type used to denote the size of objects. In C sizes of integer types (int, long, etc.) are implementation-dependent and you need to use the right type on each compiler implementationp so that the size is big enough to store all possible values.

The headers that will come with the platform SDK will have a typedef that will map size_t to the right integer type. So you write memset() once and it compiles right on every implementation.

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size_t is a type suitable for representing the amount of memory a data object requires. It is an unsigned integer type (generally, typedef unsigned int size_t;).

Read this link for more information.

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That's not true. On many (if not most) 64-bit platforms unsigned int is 32-bit, while size_t is 64-bit. –  slacker Apr 8 '10 at 13:21
    
Yes, you're right! –  yassin Apr 8 '10 at 13:34

size_t is guaranteed to be large enough to hold a pointer on all platforms.

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See Judge Maygarden's answer. –  user9876 Apr 8 '10 at 13:15
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Yup, life could be more easier if size_t is large enough to reference all of memory. But what does Judge Maygarden mean by "sizeof (size_t) can be smaller than the sizeof (void *)"? Doesn't (void *) is the largest pointer? –  Grissiom Apr 8 '10 at 13:44
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He has a good point, but that's not what he originally said: he added that point in an edit. He's right, though: size_t is only guaranteed to be able to access all the memory in a given bank of a segmented architecture. Programmers haven't had to worry about that for a very long time, though :) –  jemfinch Apr 8 '10 at 14:02
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It is even possible for there to be no integer type large enough to hold the largest pointer type. C99 defines (the optional) intptr_t and uintptr_t types that are large enough to hold any object pointer (i.e. not a function pointer) including void *. Meanwhile size_t only needs to be large enough to represent, as the name says, sizes. As an example, consider a segmented architecture where a “far” pointer may point to memory outside the current segment but the area of memory pointed to must fit inside a single segment; the pointer could be 32 bits with a 16-bit size_t. –  Arkku Apr 8 '10 at 14:03
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I believe real mode is still supported in IA-32 processors. So, this could happen with a compiler targeting the 8086 addressing mode. AMD64 deprecated the segment registers. However, yes, we are mostly being pedantic. That's why I didn't down vote your answer. Although it is technically incorrect per the C standard. –  Judge Maygarden Apr 8 '10 at 18:19

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