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What are the best methods to "Clear the 6th bit" of an integer?

And, is your solution platform independent? (32 or 64 bit integer, etc). If not, can you give a solution that is platform independent?

Update: we don't know whether that bit is set or unset when it was given... also, any language is ok... i know of a solution that is platform independent that requires 2 operators... maybe there are various methods or simpler solutions.

Update: more clearly: clear the 6th least significant bit of an interger.

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3  
Language? ..... –  Charles Bailey Mar 27 '10 at 0:00
    
actually, any language... but if C is a good one for stating bitwise operations, or other language if they have very elegant solutions? –  動靜能量 Mar 27 '10 at 0:02
1  
Hmmm... which exactly is the 6th bit of a big-endian integer? And of a little-endian?... –  Péter Török Mar 27 '10 at 0:02
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Is this homework? –  S.Lott Mar 27 '10 at 0:03
    
@S.Lott: sounds like it. –  Alan Mar 27 '10 at 0:06

4 Answers 4

up vote 5 down vote accepted

x&= ~(1 << 5)

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x & (~(1 << 6))

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wait a second, since 1 << 1 is the 2nd bit, so won't we need 1 << 5 instead of 1 << 6? –  動靜能量 Mar 27 '10 at 0:17
2  
Yes, but everybody assumes that you started counting on bit 0 –  Gonzalo Mar 27 '10 at 0:18

Perhaps this in c?

value&~(1<<6)
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If you're sure it's already set, just subtract 64.

Update: adding the test

if((x % 128) / 64 > 0)
  x -= 64;

As far as I can see right now, this doesn't make any assumptions about the platform or language support.

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i think cannot be sure it is already set. –  動靜能量 Mar 27 '10 at 0:02
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or 32 if you think that the low bit is the "1st" bit rather than the "0th" bit. ;) –  John Knoeller Mar 27 '10 at 0:04
    
Jian Lin makes a very good point, you would have to check if the 6th bit is already set. Yours was my first thought too. –  jcolebrand Mar 27 '10 at 0:20
    
This does both a modulo and a division to check if a bit is already set, when C and C++ already have bit manipulation operators that don't require that knowledge. –  swestrup Mar 27 '10 at 2:34
    
Yes, what you noticed is obvious. This method was meant as an alternative. Try to think how to clear the bit without using bitwise operators. –  Ahmed Abdelkader Mar 27 '10 at 3:54

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