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I observed that size of long is always equal to the WORD size of any given CPU architecture. Is it true for all architectures? I am looking for a portable way to represent a WORD sized variable in C.

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Can you please make your question shorter (maybe move the original into the body of your post) and state your intention in your post, please? – strager Mar 22 '10 at 0:34
    
most modern CPU does fetch from RAM with full cacheline. (64 bytes for intel). Fastest instructions for moving data will be SSE2 load/store. – osgx Mar 22 '10 at 0:36
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@Sandip, what algorithm are you working on? Is it something like memcpy/memmove (or STREAM?). – osgx Mar 22 '10 at 0:38
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@osgx: Yes! it is memcpy. – Sandip Mar 22 '10 at 0:48
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@Sandip, Why are you re-implementing memcpy? – strager Mar 22 '10 at 0:48

C doesn't deal with instructions. In C99, you can copy any size struct using an single assignment:

struct huge { int data[1 << 20]; };
struct huge a, b;
a = b;

With a smart compiler, this should generate the fastest (single-threaded, though in the future hopefully multi-threaded) code to perform the copy.

You can use the int_fast8_t type if you want the "fastest possible" integer type as defined by the vendor. This will likely correspond with the word size, but it's certainly not guaranteed to even be single-instruction-writable.

I think your best option would be to default to one type (e.g. int) and use the C preprocessor to optimize for certain CPU's.

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where "int_fast8_t" type is defined? what header? what standard? – osgx Mar 22 '10 at 0:32
    
@osgx, C99, stdint.h. – strager Mar 22 '10 at 0:33

No. In fact, the scalar and vector units often have different word sizes. And then there are string instructions and built-in DMA controllers with oddball capabilities.

If you want to copy data fast, memcpy from the platform's standard C library is usually the fastest.

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Under Windows, sizeof(long) is 4, even on 64-bit versions of Windows.

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I think the nearest answers you'll get are...

  • int and unsigned int often (but not always) match the register width of the machine.
  • there's a type which is an integer-the-same-size-as-a-pointer, spelled intptr_t and available from stddef.h IIRC. This should obviously match the address-width for your architecture, though I don't know that there's any guarantee.

However, there often really isn't a single word-size for the architecture - there can be registers with different widths (e.g. the "normal" vs. MMX registers in Intel x86), the register width often doesn't match the bus width, addresses and data may be different widths and so on.

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No, standard have no such type (with maximize memory throughput).

But it states that int must be fastest type for the processor for doing ALU operations on it.

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C99 6.2.5 says: A "plain" int object has the natural size suggested by the architecture of the execution environment. – dreamlax Mar 22 '10 at 0:55
    
what means "natural" ? from "C99.An economic and cultural commentary" " There may be several interpretations of the term natural size for some processor architectures. Efficiency is usually a big consideration. The choice of representation ... In some cases it may have already been specified by a hardware vendor." – osgx Mar 22 '10 at 2:48

Things will get more complicated in embedded world. ASAIK, C51 is 8bit processor but in Keil C for c51, long have 4 bytes. I think it's compiler dependent.

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Probably. Robert Love says in LKD that in Linux, long always represents the word size for all architectures it supports. Read the first 2 paragraphs of this chapter. linuxkernel2.atw.hu/ch19lev1sec2.html – Sandip Mar 22 '10 at 1:46

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