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I have scenario in the application where I need to generate an ID which should be Random 64 bit value in hex representation,

What I have done so far,

 Random randomLong = new Random();
 long m = randomLong.nextLong();
 String uid = Long.toHexString(m);

The o/p could be like 43c45c243f90326a or 82cf8e3863102f3a etc. But not every time it gives 16 character, but 15 characters instead I don't get why :(

What is the most efficient way to get Random 64 bit value in hex representation which contains 16 characters

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  • 4
    because toHExString is not adding leading zeros to the random number – ΦXocę 웃 Пepeúpa ツ Jun 14 '17 at 12:16
  • 1
    Use String.format("%016x", longValue). – saka1029 Jun 14 '17 at 12:25
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Use String.format()

long value=123L;
String uid = String.format("%016x", value);
// 000000000000007b

A word of explanation:

Each hex digit represents 4-bits. A 64-bit long can be represented by 16 (64/4) hexadecimal characters. To include the leading zeros, you want 16 hex digits. So your format specifier is %016x. Basically, %x for hex modified by inserting 016 to left-pad with zeros to achieve a minimum width of 16 characters.

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  • Could you add a word of explanation, why this works? Please have a look at How to Answer. – xenteros Jun 14 '17 at 12:29
  • Thanks, its a nice explanation got it. – tyro Jun 14 '17 at 13:07
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this is because the method toHExString is not adding leading zeros to the random number you are converting, if the number can be represented with only one char as hex, then one char is what you get

see this

    String uid = Long.toHexString(-1L);
    String uid2 = Long.toHexString(1L);
    System.out.println(uid);
    System.out.println(uid2);

the output is

ffffffffffffffff

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-1 will require the 64 bits to be represented but 1 doesnt

edit:

if you always need 16 nibbles then format that string in order to add the missing zeros

 String uid = String.format("%016x", Long.toHexString(1L)); 
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  • I could do this but to be honest didn't get the meaning of it, what do you mean to say by if the number can be represented with only one char as hex, then one char is what you get – tyro Jun 14 '17 at 12:40
  • a long var with the value 255 can be represented as 0xFF instead of 0x00000000000000FF – ΦXocę 웃 Пepeúpa ツ Jun 14 '17 at 12:42
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String.format("%016x", uid);

This will add the leading 0's, or 'padding' as if the hex number is smaller than filling all 16, it wont show 16 digits.

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