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I need to implement a bitwise shift (logical not arithmetic) on OpenInsight 8.

In the system mostly everything is a string but there are 4 functions that treat numbers as 32-bit integers.

The bitwise functions available are and or not and xor. Any arithmetic operators treat the number as signed.

I'm currently having a problem with implementing left and right shifts which I need to implement SHA-1.

Can anyone suggest an algorithm which can help me accomplish this? Pseudocode is good enough, I just need a general idea.

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Do you really need to implement SHA1 yourself? No libraries available? –  Bart Friederichs Aug 21 '12 at 12:41
    
Nope... no libraries. I looked around to try and find one –  Cedric Mamo Aug 21 '12 at 13:28
    
Can you some code you have tried? –  Bart Friederichs Aug 21 '12 at 13:48
    
pastebin.com/eS0KVDD4 –  Cedric Mamo Aug 21 '12 at 14:33
    
why don't you use hexadecimal in the code snippet above? Isn't 0x80000000 easier to understand than 2,147,483,648? –  Lưu Vĩnh Phúc Nov 21 '14 at 18:39

3 Answers 3

You can implement shifting with integer multiplication and division:

Shift left = *2

Shift right = /2

Perhaps you need to mask the number first to make the most siginificant bit zero to prevent integer overflow.

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I tried that already but something is just not working correctly. That's why i asked for pseudocode so i can see if i did something wrong –  Cedric Mamo Aug 21 '12 at 13:28
1  
This won't work. Dividing a negative number by 2 rounds towards zero, whereas shifting a negative number right by 1 rounds towards negative infinity (and, for logical shifts, loses the sign bit). –  harold Aug 21 '12 at 13:56

logical shift down by one bit using signed arithmetic and bitwise ops

if v < 0 then
   v = v & 0x7fffffff   // clear the top bit
   v = v / 2            // shift the rest down
   v = v + 0x40000000   // set the penultimate bit
else
   v = v / 2
fi

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If there's no logical right shift you can easily achieve that by right shifting arithmetically n bits then clear the top n bits

For example: shift right 2 bits:

x >= 2;
x &= 0x3fffffff;

Shift right n bits

x >= n;
x &= ~(0xffffffff << (32 - n));
// or
x >= n;
x &= (1 << (32 - n)) - 1;

For left shifting there's no logical/mathematical differentiation because they are all the same, just shift 0s in.

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