Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is it possible to divide an unsigned integer by 10 by using pure bit shifts, addition, subtraction and maybe multiply? Using a processor with very limited resources and slow divide.

share|improve this question
    
It's possible (repeated subtraction is division), but the question is whether it's any faster than the slow division. –  David Thornley Apr 5 '11 at 21:07
    
@esnyder. Sorry, I can't understand you. Are you talking in base 17 or base 22? –  Thomas O Apr 5 '11 at 21:39
    
Base large two. Shifting right divides by 2^n which would solve your question if by "10" you mean 16 decimal or 10h. –  esnyder Apr 5 '11 at 21:42
    
Are you arguing with me? I'm actually trying to admit that I failed to mention my answer was not for decimal.... Might be a bit obscure, but that was my intention. –  esnyder Apr 5 '11 at 21:57
    
@Thomas O - see my comment. I don't notice an upvote.... –  KevinDTimm Apr 5 '11 at 22:26

5 Answers 5

up vote 20 down vote accepted

Here's what the Microsoft compiler does when compiling divisions by small integral constants. Assume a 32-bit machine (code can be adjusted accordingly):

int32_t div10(int32_t dividend)
{
    int64_t invDivisor = 0x1999999A;
    return (int32_t) ((invDivisor * dividend) >> 32);
}

What's going here is that we're multiplying by a close approximation of 1/10 * 2^32 and then removing the 2^32. This approach can be adapted to different divisors and different bit widths.

This works great for the ia32 architecture, since its IMUL instruction will put the 64-bit product into edx:eax, and the edx value will be the wanted value. Viz (assuming dividend is passed in eax and quotient returned in eax)

int32_t proc 
    mov    edx,1999999Ah    ; load 1/10 * 2^32
    imul   eax              ; edx:eax = dividend / 10 * 2 ^32
    mov    eax,edx          ; eax = dividend / 10
    ret
int32_t endp

Even on a machine with a slow multiply instruction, this will be faster than a software divide.

share|improve this answer
3  
+1, and I'd like to emphasise that the compiler will do this for you automatically when you write "x/10" –  Theran Apr 5 '11 at 21:25
    
hmm, isn't there some numerical inaccuracy here? –  Jason S Apr 6 '11 at 12:49
    
You're always going to have numerical inaccuracy when doing integer divides: What do you you get when you divide 28 by 10 using integers? Answer: 2. –  John Källén Apr 6 '11 at 12:52

Of course you can if you can live with some loss in precision. If you know the value range of your input values you can come up with a bit shift and a multiplication which is exact. Some examples how you can divide by 10, 60, ... like it is described in this blog to format time the fastest way possible.

temp = (ms * 205) >> 11;  // 205/2048 is nearly the same as /10

Yours, Alois Kraus

share|improve this answer
    
You have to be aware that the intermediate value (ms * 205) can overflow. –  Paul R Apr 5 '11 at 21:16
    
If you do int ms = 205 * (i >> 11); you will get wrong values if the numbers are small. You need a test suite to ensure that in a given value range the results are correct. –  Alois Kraus Apr 5 '11 at 21:28

Though the answers given so far match the actual question, they do not match the title. So here's a solution heavily inspired by Hacker's Delight that really uses only bit shifts.

unsigned divu10(unsigned n) {
    unsigned q, r;
    q = (n >> 1) + (n >> 2);
    q = q + (q >> 4);
    q = q + (q >> 8);
    q = q + (q >> 16);
    q = q >> 3;
    r = n - (((q << 2) + q) << 1);
    return q + (r > 9);
}

I think that this is the best solution for architectures that lack a multiply instruction.

share|improve this answer

Well division is subtraction, so yes. Shift right by 1 (divide by 2). Now subtract 5 from the result, counting the number of times you do the subtraction until the value is less than 5. The result is number of subtractions you did. Oh, and dividing is probably going to be faster.

A hybrid strategy of shift right then divide by 5 using the normal division might get you a performance improvement if the logic in the divider doesn't already do this for you.

share|improve this answer

Bitwise Shift-right divides by powers of 2^n.

share|improve this answer
1  
How does that help, since 10 is not an integer power of 2 ? –  Paul R Apr 5 '11 at 21:15
    
That should have read 2^n..... also, 2^4 is a power of 10 - well, 0x10h –  esnyder Apr 5 '11 at 21:17

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.