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I need to do a random with a 16-digit number. And the random function I got doesn't work with big numbers. I got this function:

 int pin = new Random().nextInt(10000); 

But if I put a big number like 1000000000000, it won't work because it's not int, and the nextLong is not working to me like that. Thanks.

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Why can you not use nextLong() and do divisions and mods? Also, is this math or Java homework? Because if you are doing math homework, there is subtleties involved in getting a uniformly distributed pseudo-random sequence. –  Dilum Ranatunga Mar 24 '12 at 4:23
    
nextLong and mod is a great way to get bitten by the subtleties involved in a uniformly distributed pseudo-random sequence. –  Louis Wasserman Mar 24 '12 at 10:55
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closed as not a real question by Baz, JKirchartz, HaskellElephant, Abhinav Sarkar, Adriano Oct 9 '12 at 15:47

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4 Answers

up vote 3 down vote accepted

You could concatenate two random numbers to create a longer random number.

So:

  1. Get an 8 digit random number using nextInt(100000000).
  2. Bit shift it 8 tens digits, or about 10 bits to the left.
  3. Get a second 8 digit random number.
  4. Bitwise OR the two numbers to get your final Long random number.

Does that make sense?

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Yes that makes sense. I was thinking about that but I was looking if it was another shortest way, but thank you very much. –  Johnny Dahdah Mar 24 '12 at 4:12
    
Left shifting 8 bits does not do what you want. The closest approximation is 10 bits for every x 1000. –  Dilum Ranatunga Mar 24 '12 at 4:20
    
Yes, sorry. You need to shift 8 tens digits to the left so that about 10 binary bits. –  dcow Mar 24 '12 at 9:57
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You could try using a bigInteger, see this post for creating a random big int How to generate a random BigInteger value in Java?

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You might want to have a look the documentation for Random.nextInt(int n), which discusses the algorithm used, and adapt it to work with longs.

From the documentation:

public int nextInt(int n) {
  if (n <= 0)
    throw new IllegalArgumentException("n must be positive");

  if ((n & -n) == n)  // i.e., n is a power of 2
    return (int)((n * (long)next(31)) >> 31);

  int bits, val;
  do {
    bits = next(31);
    val = bits % n;
  } while (bits - val + (n-1) < 0);
  return val;
}

Follow the link and read the docs for more info.

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If you wish to generate arbitrarily large random numbers with N digits, try

StringBuffer buf=new StringBuffer();
rng=new Random();
for(int a=0;a<N;a++)
    buffer.append((char) ('0'+rng.nextInt(10)));
return buffer.toString();
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You should not post answers in Homework questions. He's learning, and instead of telling him the answer, we should help him to get to the answer with his own legs. –  SHiRKiT Mar 24 '12 at 15:40
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