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Can anybody help me to understand, how the following code works ? I know it will return 1 if for odd number and 0 for even number.

echo (7 & 1);  // result 1
echo (6 & 1);  // result 0

I think the numbers are converted to its binary. Please correct if I'm incorrect.

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Because odd numbers have their LSB set to 1, & is a bitwise and operator. –  Ja͢ck Dec 26 '12 at 13:48
1  

2 Answers 2

Yes, you are performing a AND operation on the numbers, so

Dec     BINARY   Output
7  ===  0111
1  ===  0001
------------------------
AND  op 0001     1


Dec     BINARY
6  ===  0110
1  ===  0001
------------------------
AND  op 0000     0

Like Wise,

Dec     BINARY
7  ===  0111
6  ===  0110
------------------------
AND  op 0110         6
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1 === 0001, not 0000 –  MarcinJuraszek Dec 26 '12 at 13:53
    
Oops, just corrected it, thanks –  Akash Dec 26 '12 at 13:56
7 = 0000111b
1 = 0000001b
------------
& = 0000001b = 1

And for 6:

6 = 0000110b
1 = 0000001b
------------
& = 0000000b = 0
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