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I have this code. Please make me understand what does this code actually mean

  for(var i = 0; i < input.length; i++)
    x = input.charCodeAt(i);
    output += hex_tab.charAt((x >>> 4) & 0x0F)
           +  hex_tab.charAt( x        & 0x0F);

What is 0x0F? And, >>> Mean?

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0x0f is a hexadecimal representation of a byte. Specifically, the bit pattern 00001111 – Basic Oct 20 '12 at 15:38
Okay, And how does that expression make it work there? how does that '(x >>> 4) & 0x0F' return the integer value, as chatAt() function require integer input – Prakash Oct 20 '12 at 15:39

4 Answers 4

up vote 8 down vote accepted

>>> is the unsigned bitwise right-shift operator. 0x0F is a hexadecimal number which equals 15 in decimal. It represents the lower four bits and translates the the bit-pattern 0000 1111. & is a bitwise AND operation.

(x >>> 4) & 0x0F gives you the upper nibble of a byte. So if you have 6A, you basically end up with 06:

6A = ((0110 1010 >>> 4) & 0x0F) = (0000 0110 & 0x0F) = (0000 0110 & 0000 1111) = 0000 0110 = 06

x & 0x0F gives you the lower nibble of the byte. So if you have 6A, you end up with 0A.

6A = (0110 1010 & 0x0F) = (0110 1010 & 0000 1111) = 0000 1010 = 0A

From what I can tell, it looks like it is summing up the values of the individual nibbles of all characters in a string, perhaps to create a checksum of some sort.

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0x0f is a hexadecimal representation of a byte. Specifically, the bit pattern 00001111

It's taking the value of the character, shifting it 4 places to the right (>>> 4, it's an unsigned shift) and then performing a bit-wise AND with the pattern above - eg ignoring the left-most 4 bits resulting in a number 0-15.

Then it adds that number to the original character's right-most 4 bits (the 2nd & 0x0F without a shift), another 0-15 number.

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Okay, Can you please give the same code converting to PHP. I am having lots of problem converting that to PHP. How do I do the same process in PHP? – Prakash Oct 20 '12 at 15:43
All the operations can be done the same way in PHP. See here for the syntax – Basic Oct 20 '12 at 15:44
Careful >>> isn't a simple right shift. It's an unsigned right shift and so it ignores the sign bit. – Vivin Paliath Oct 20 '12 at 15:47
@VivinPaliath True - but then it ignores the left-most 4 bits... I should clarify though – Basic Oct 20 '12 at 15:55
@Basic Correct, in this particular case you could use the signed right shift operator and you would get the same result. – Vivin Paliath Oct 20 '12 at 15:57

0x0F is a number in hexadecimal. And >>> is the bitwise right-shift operator.

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0x0F is a number in hexadecimal.

expression (x >>> 4) & 0x0F will make sure that returned value must be from 0 to 15

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