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Question says it all. Does anyone know if the following...

size_t div(size_t value) {
    const size_t x = 64;
    return value / x;
}

...is optimized into?

size_t div(size_t value) {
    return value >> 6;
}

Do compilers do this? (My interest lies in GCC). Are there situations where it does and others where it doesn't?

I would really like to know, because every time I write a division that could be optimized like this I spend some mental energy wondering about whether precious nothings of a second is wasted doing a division where a shift would suffice.

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4  
If you're using a compiler within the decade (or two), yeah. –  GManNickG Apr 5 '10 at 19:46
12  
You are wasting mental energy on silly micro-optimizations. Ignore them until you are forced to confront them (i.e. because your program is running too slowly and a profiler is pointing at them). –  Brian Apr 5 '10 at 19:49
14  
But let's not forget that micro-optimizations are fun! –  porgarmingduod Apr 5 '10 at 19:54
1  
Keep in mind that none of us know what version of gcc you're using, nor what hardware platform you're on, and what your optimization flags are. The answer will vary enormously based on those factors. –  janks Apr 5 '10 at 20:04
18  
Understanding compiler optimizations only helps avoiding "silly micro-optimizations" in the code, so this is not a bad question at all. –  Nemanja Trifunovic Apr 5 '10 at 20:26

4 Answers 4

up vote 30 down vote accepted

Even with g++ -O0 (yes, -O0!), this happens. Your function compiles down to:

_Z3divm:
.LFB952:
        pushq   %rbp
.LCFI0:
        movq    %rsp, %rbp
.LCFI1:
        movq    %rdi, -24(%rbp)
        movq    $64, -8(%rbp)
        movq    -24(%rbp), %rax
        shrq    $6, %rax
        leave
        ret

Note the shrq $6, which is a right shift by 6 places.

With -O1, the unnecessary junk is removed:

_Z3divm:
.LFB1023:
        movq    %rdi, %rax
        shrq    $6, %rax
        ret

Results on g++ 4.3.3, x64.

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8  
On the assumption that shrq has something to do with shifting, you just greatly expanded my knowledge of assembly. From nothing to next to nothing. Thanks! –  porgarmingduod Apr 5 '10 at 19:51
2  
On my PC with gcc 3.4.5 the first sample (the with a const variable) gcc -O0 generates a divl but I get shrq with gcc -O2. –  Alexandre Jasmin Apr 5 '10 at 19:51
5  
@Alexandre Jasmin: But your compiler is nearly five years old... –  Thomas Apr 5 '10 at 19:56
5  
@porgarmingduod (frak, that's hard to type): I couldn't write any of this myself either. But being able to read it is useful at times, for example, if you want to know what the compiler is up to. Just start with some toy programs, run g++ -S over them, study the generated .s file, and learn! –  Thomas Apr 5 '10 at 19:58
2  
@Thomas: That is actually a good idea. I've never quite been able to motivate myself to learn programming assembly, however, learning how to read it, at least cursory, might be worthwhile. –  porgarmingduod Apr 5 '10 at 20:03

Most compilers will go even further than reducing division by powers of 2 into shifts - they'll often convert integer division by a constant into a series of multiplication, shift, and addition instructions to get the result instead of using the CPU's built-in divide instruction (if there even is one).

For example, MSVC converts division by 71 to the following:

// volatile int y = x / 71;

8b 0c 24        mov ecx, DWORD PTR _x$[esp+8] ; load x into ecx

b8 49 b4 c2 e6  mov eax, -423447479 ; magic happens starting here...
f7 e9           imul ecx            ; edx:eax = x * 0xe6c2b449

03 d1           add edx, ecx        ; edx = x + edx

c1 fa 06        sar edx, 6          ; edx >>= 6 (with sign fill)

8b c2           mov eax, edx        ; eax = edx
c1 e8 1f        shr eax, 31         ; eax >>= 31 (no sign fill)
03 c2           add eax, edx        ; eax += edx

89 04 24        mov DWORD PTR _y$[esp+8], eax

So, you get a divide by 71 with a multiply, a couple shifts and a couple adds.

For more details on what's going on, consult Henry Warren's "Hacker's Delight" book or the companion webpage:

There's an online added chapter that provides some addition information about about division by constants using multiplication/shift/add with magic numbers, and a page with a little JavaScript program that'll calculate the magic numbers you need.

The companion site for the book is well worth reading (as is the book) - particularly if you're interested in bit-level micro optimizations.

Another article that I discovered just now that discusses this optimization: http://blogs.msdn.com/devdev/archive/2005/12/12/502980.aspx

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Only when it can determine that the argument is positive. That's the case for your example, but ever since C99 specified round-towards-zero semantics for integer division, it has become harder to optimize division by powers of two into shifts, because they give different results for negative arguments.

In reaction to Michael's comment below, here is one way the division r=x/p;of x by a known power of two p can indeed be translated by the compiler:

if (x<0)
  x += p-1;
r = x >> (log2 p);

Since the OP was asking whether he should think about these things, one possible answer would be "only if you know the dividend's sign better than the compiler or know that it doesn't matter if the result is rounded towards 0 or -∞".

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3  
+1 for bringing up the sign problem –  Paul R Apr 5 '10 at 20:46
2  
Compilers can (and do) handle that problem by adding an adjustment to the operand if it's negative before performing the shift. So, it doesn't compile down to nothing but a shift, but it's still better than a division (generally - I think that integer division is still on the order of 15 cycles, but I'm not sure). –  Michael Burr Apr 5 '10 at 21:55

Yes, compilers generate the most optimal code for such simplistic calculations. However, why you are insisting specifically on "shifts" is not clear to me. The optimal code for a given platform might easily turn out to be something different from a "shift".

In general case the old and beaten-to-death idea that a "shift" is somehow the most optimal way to implement power-of-two multiplications and divisions has very little practical relevance on modern platforms. It is a good way to illustrate the concept of "optimization" to newbies, but no more than that.

Your original example is not really representative, because it uses an unsigned type, which greatly simplifies the implementation of division operation. The "round towards zero" requirement of the C and C++ languages makes it impossible to do division with a mere shift if the operand is signed.

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1  
For example, I'm pretty sure for integer multiplication by 2, MSVC just adds it with itself rather than a shift or multiply. –  GManNickG Apr 5 '10 at 20:47
    
CPU shifters most often use barrel roll wiring which makes them instantaneous. there is no faster than that. –  v.oddou Nov 18 at 3:20
    
@v.oddou: Barrel roll wiring can make them instantaneous only in cases when the amount of the shift is hardcoded. Once it becomes a run-time value (as in this case) it is no longer instantaneous. –  AndreyT Nov 18 at 4:03
    
@AndreyT you can use a multiplexer to do variable barrel shifting –  Lưu Vĩnh Phúc Nov 18 at 4:40

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