How do I generate a secure uniform random number within a range? The range could be between 0 to 100. (The upper bound is not a power of 2).
java.security.SecureRandom seems to provide the range 0..2^n.
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anoopelias
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1http://stackoverflow.com/questions/11051205/difference-between-java-util-random-and-java-security-securerandom – Kalhari Liyanagama Feb 26 '15 at 13:08
2 Answers
17
You can do
Random rand = new SecureRandom()
// 0 to 100 inclusive.
int number = rand.nextInt(101);
or
// 0 inclusive to 100 exclusive.
int number = rand.nextInt(100);
Note: this is more efficient than say (int) (rand.nexDouble() * 100) as nextDouble() needs to create at least 53-bits of randomness whereas nextInt(100) creates less than 7 bits.
Peter Lawrey
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Yep. That's my bad really :( Need to learn to read docs more carefully. – anoopelias Feb 26 '15 at 12:52
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Try below code snap
SecureRandom random = new SecureRandom();
int max=50;
int min =1;
System.out.println(random.nextInt(max-min+1)+min);
Snehal Patel
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