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I'm trying to do this with bit logic in C and getting stuck. I did some Googling and found information on similar problems, and I feel like I'm almost there, but not quite. The operations permitted to use are: ! ~ & ^ | + << >>. I can't use if statements, loops, or equality checks (so no == or != commands).

Can anyone give me a hand or a nudge in the right direction please? I'm not very good at this bit logic stuff lol

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closed as too localized by Lundin, Anders R. Bystrup, Tom van Enckevort, Jack, Graviton Feb 6 '13 at 6:07

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Hint: Try &'ing with a mask. –  Mysticial Feb 1 '13 at 6:51
    
How would you tell if bit 0 is set? How about bit 2? Then how would you test both at the same time? Etc... –  Carl Norum Feb 1 '13 at 6:53
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Too many permitted operations. –  Jack Feb 1 '13 at 6:55
    
@Jack maybe reducing the permitted operations set would give too much of a hint... –  ring0 Feb 1 '13 at 7:08
    
And maybe reducing the permitted operations wouldn't have led to this question in the first place :) –  Jack Feb 1 '13 at 7:10
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3 Answers

You need to test the value with a mask, and be a little bit devious about how you test for equality without using ==, e.g.:

return !((n & 0x55555555) ^ 0x55555555);

NB: this assumes a 32 bit value.

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do we need the == 0x55555555? –  Aniket Feb 1 '13 at 6:57
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@Aniket: yes, this is why your solution does not work. –  Paul R Feb 1 '13 at 6:57
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@Jack, those are the odd-numbered bits. The lowest bit is bit 0. –  Carl Norum Feb 1 '13 at 7:03
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@Jack Real programmers index from zero. :P –  Mysticial Feb 1 '13 at 7:04
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Okay, but that's not the normal way to go about it. It represents the 2^0 place, after all. –  Carl Norum Feb 1 '13 at 7:04
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As '==' is not permitted, one must use other tricks:

 (~number & 0x55555555) will be zero only when number&mask == mask.
 (~number & 0x55555555)==0 OTOH codes as 

 return !(~number & 0x55555555);
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This is how you solve it using C programming, without any weird artificial limits placed upon yourself:

// Get a platform-independent mask of all even bits in an int set to one:
#define MASK ( (unsigned int) 0x55555555u )

// MASK will be 0x5555u or 0x55555555u depending on sizeof(int).

And then the actual algorithm:

if((x & MASK) == MASK)
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As you can hopefully tell, the last line is so much more readable than any bitwise-operator madness you would be forced to use, if you placed artificial limits on which language features you can't use. Consider focusing on learning C programming, and not on obfuscating your code to an unreadable mess because some incompetent teacher says so. That will not make you a better programmer. –  Lundin Feb 1 '13 at 7:41
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