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I need to multiply an int by a fraction using bitwise operators without loops and such.

For example, I need to multiply by x by 3/8.

I thought you would:

int value = (x << 1) + x;  // Multiply by 3
value = (value >> 3);          // Divide by 8

But that doesnt work. I tried googling binary times fraction but that give floating point examples. I dont know exactly if this homework is for floating point but my hunch is no but getting me prepared for it. So any suggestions?


I need to round toward zero so any suggestions? This doesnt work for the number -268435457.

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Are you saying that the updated code still doesn't work? Is x an int? also, what is the value of x that you tried and the resulting value –  Foo Bah Sep 9 '11 at 3:58
    
Is this still not working?! You made an edit from a solution below it looks like... –  Alexis Wilke Sep 9 '11 at 3:59
    
The solution round up instead of down, towards 0. –  seg_fault Sep 9 '11 at 4:00
    
x is a 32 bit integer. –  seg_fault Sep 9 '11 at 4:00

3 Answers 3

You probably want

int value = (x << 1) + x;
value = (value >> 3);

note that:

(x << 1) + 1 = 2*x + 1; // ignoring issues about overflow

To adjust for negative values, you can explicitly check for sign:

int value = (x << 1) + x;
value = value >> 3;
value = value + ((x >> 31) & 1); // for 32 bit; for 64 bit you have to use x >> 63
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And then 'value = (value >> 3)' –  Andrey Atapin Sep 9 '11 at 3:52
    
@Andrey updated (thought it was obvious but should be stated for completeness) –  Foo Bah Sep 9 '11 at 3:54
    
This is wrong for the number -268435457. I return -100663297 but should return -100663296. It is rounding up. How can I round down? –  seg_fault Sep 9 '11 at 3:59
    
You are trying to use a negative value. You can either check for sign and negate the final result, or explicitly add in the sign bit. I will update my response –  Foo Bah Sep 9 '11 at 4:03
    
Is there a way to do it without conditional statements. I can only use bitwise operators like >> << ~ ! + & ^ –  seg_fault Sep 9 '11 at 4:10

Did you try:

int value = (x << 1) + x;  // Multiply by 3
value = (value >> 3);      // Divide by 8

i.e. in your second statement replace 'x' with 'value'. Also, value will loose the decimal points.

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I want to ignore decimal points and round down which is the same as ignoring them. –  seg_fault Sep 9 '11 at 3:55
    
nevermind its not the same are ignoring them. –  seg_fault Sep 9 '11 at 4:01

To avoid an overflow you can cast to (long long) and back to (int) for the final result. To cause the >> 3 to round toward zero you need to add 7 (8-1) for a negative number. There are a few ways of doing this. Using these approaches gives you -100663296.

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