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I'm reading What Every Programmer Should Know About Memory pdf by Ulrich Drepper. At the beginning of part 6 theres's a code fragment:

#include <emmintrin.h>
void setbytes(char *p, int c)
{
__m128i i = _mm_set_epi8(c, c, c, c,
c, c, c, c,
c, c, c, c,
c, c, c, c);
_mm_stream_si128((__m128i *)&p[0], i);
_mm_stream_si128((__m128i *)&p[16], i);
_mm_stream_si128((__m128i *)&p[32], i);
_mm_stream_si128((__m128i *)&p[48], i);
}

With such a comment right below it:

Assuming the pointer p is appropriately aligned, a call to this function will set all bytes of the addressed cache line to c. The write-combining logic will see the four generated movntdq instructions and only issue the write command for the memory once the last instruction has been executed. To summarize, this code sequence not only avoids reading the cache line before it is written, it also avoids polluting the cache with data which might not be needed soon.

What bugs me is the that in comment to the function it is written that it "will set all bytes of the addressed cache line to c" but from what I understand of stream intrisics they bypass caches - there is neither cache reading nor cache writing. How would this code access any cache line? The second bolded fragment says sotheming similar, that the function "avoids reading the cache line before it is written". As stated above I don't see any how and when the caches are written to. Also, does any write to cache need to be preceeded by a cache write? Could someone clarify this issue to me? Many thanks.

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Do you have a reference for your assumption on SSE cache operation? The Intel documentation specifies pollution which is what Ulrich references in the comment. –  Steve-o Dec 31 '12 at 22:27
    
My knowledge is all from the Ulrich's paper. Earlier in the chapter he writes: "These non-temporal write operations do not read a cache line and then modify it; instead, the new content is directly written to memory.". It's from the second paragraph of part '6.1 Bypassing the Cache' –  Paweł Dec 31 '12 at 22:52
2  
It isn't clear to me what he's trying to say, but MOVNTDQ does update the cache if it happens to contain the address. –  Hans Passant Dec 31 '12 at 23:37

1 Answer 1

I don't have references under my fingers to prove what I am saying, but my understanding is this: the only unit of transfer over the memory bus is cache lines, whether they go into the cache or to some special registers. So indeed, the code you pasted fills a cache line, but it is a special cache line that does not reside in cache. Once all bytes of this cache line have been modified, the cache line is send directly to memory, without passing through the cache.

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