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Coding for an embedded platform with no integer divisor (nor multiplier), is there a quick way to perform a 'divide by 24'?

Multiply by 24 is simply

int a;
int b = (a << 4) + (a << 3); // a*16 + a*8

But division? It's a really simple divisor, with only two bits set?

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2 Answers 2

up vote 4 down vote accepted

If you don't need the result to be bit-exact, then you could consider multiplying by 1/24:

uint16_t a = ...;

uint32_t b = (uint32_t)a * (65536L / 24);

uint16_t c = b / 65536;

Of course, if your platform doesn't have a hardware multiplier, then you will need to optimise that multiplication. As it turns out, (65536 / 24) is approximately equal to 2730, which is 101010101010 in binary. So that multiply can be achieved with 3 shifts and adds.

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3 shifts and adds.. sorry for being such a newbie (trying to outperform a C18 compiler..) - how do you multiply by 2730 in 3 shifts and adds? I've tested on python that ((a/8)*683)/2048 is good enough for my purposes, and doesn't overflow 16bit for the range of 'a' that interest me, now just shoving it into bit operations. –  qdot Dec 7 '11 at 18:01
    
@qdot: As you can see from the binary representation, 2730 = 10 * 273 = (8 + 2) * (256 + 16 + 1) (so actually four shifts and three adds). –  Oli Charlesworth Dec 7 '11 at 18:08
    
yeah. That was exactly what I've been missing fron the '3 shifts and adds'. Anyways, I got the compiler to help me out with efficient multiply, now the whole hand-tuned 576-choice switch statement is down from 180us to 21us. Not too bad for a 6MIPS core. –  qdot Dec 7 '11 at 18:13

Well first of all you can use the fact that 24=8*3, so you can divide by 8 using shifting once again: a / 8 == a >> 3. Afterwards you have to divide the result by 3. A discussion about how to do that efficiently can be found here. Of course if you are coding in c (or any other higher level language really), it might be worthwile to simply look at the compileroutput first, it is possible that the compiler already has some tricks for this.

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Yeah, I'm coding in C. No, the compiler just calls a helper long division function for a 'divide by 3', so no joy there. The 0xAAAB trick is great, see my comment above. –  qdot Dec 7 '11 at 18:03

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