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I am a little bit confused while I'm trying to determine if a number is even / uneven using only logical operators (||, &&).

I'm used to:

if (x%2)
   printf("Number is even");
else
   printf("Number is not even");

Is there any algorithm that determinates the parity of a number ? If there is, can you give me some documentation ?

Best regards, Duluman Edi

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logical OR and AND, not bitwise? –  Mike Nov 15 '12 at 12:33
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5 Answers

up vote 2 down vote accepted

Can you do shifting first? You can accomplish the same "bit" logic with the logical operators if you use just 1 bit, so for example:

int num = 0x14; // 0000 0000 0001 0100
unsigned short shift_num = num << 15; // 0000 0000 0000 0000

if(shift_num && 1)
    printf("it's odd\n");
else
    printf("it's even\n");

So anything non-0 && 1 gives you 1, in this case we shiffted off all but the lowest bit, if it's even (as above) it leaves you with 0 and 0 && 1 is false so "it's even" is printed. If we use an odd number:

int num = 0x15; // 0000 0000 0001 0101
unsigned short shift_num = num << 15; // 1000 0000 0000 0000

Now there's a non-0 number there with the 1 so we'll get "it's odd"

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Interesting solution, +1 (although, to make sure you are portably shifting enough for all the range of int you should do some sizeof/CHAR_BITS trickery). –  Matteo Italia Nov 15 '12 at 16:06
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Assuming you mean the bitwise operators & and | (since with their logical, short-circuiting counterparts there's no solution):

if(x&1)
    puts("odd");
else
    puts("even");

(and any decent compiler will automatically emit code for x&1 when seeing x%2)

this works because &1 extracts the least significant bit of x, which is 1 for odd numbers and 0 or even numbers.

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+1 I wish I saw bitwise operators used more often. –  Jason McCreary Nov 15 '12 at 12:32
    
OP said || and &&, not | and & –  Mike Nov 15 '12 at 12:34
    
& is not logical operator –  Omkant Nov 15 '12 at 12:34
    
I'm not allowed to use bitwise operators, just logical. –  edduvs Nov 15 '12 at 12:48
    
@Mike: Occam's razor... is it more likely that he was given a "normal" task but confused the logical operators with their bitwise counterparts or that he was asked a completely impossible exercise? –  Matteo Italia Nov 15 '12 at 15:49
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For an integer you can use the and operator x & 1 to test for bit 0 value, that is 0 for even and 1 for odd.

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OP said || and &&, not | and & –  Mike Nov 15 '12 at 12:35
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Logical || and && always yields true or false value means 1 or 0.

I think you are confused among || && and & | the later ones are bitwise operators and using bitwise you can find the even and odd

if(n & 1)
  printf("odd");
else
  printf("even");
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You have them mixed up. If (n & 1) , it should be odd. –  Anon Nov 15 '12 at 13:06
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It's impossible using only the logical operators && and ||.

In any expression involving only && and ||, you can replace the value 0x01 (which is odd) with 0x10 (which is even), and the result will be the same because both values are logically "true" as far as the logical operators are concerned. Hence, the expression does not discriminate between the two.

If you need to prove it formally, you can do it by strong induction using the fact that any expression involving only those two operators, and which contains n operators in total, is necessarily equivalent to an expression of form either (A) && (B) or (A) || (B), where A and B are expressions involving only those two operators and which contain fewer than n operators in total. Proving the base case with n == 1 is simple.

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Thats weird, the lecturer asked us to solve this problem using only logical operators, which makes me believe it's possible. But still, it may be a misspell in his exercises pack. –  edduvs Nov 15 '12 at 12:54
1  
@edduvs: it's possible that the lecturer thinks that the bitwise operators are called logical operators. But otherwise I think you're right, it must be a typo of one word for the other. –  Steve Jessop Nov 15 '12 at 12:55
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