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Expand a random range from 1-5 to 1-7

Hi, This question is taken from http://blog.seattleinterviewcoach.com/2009/02/140-google-interview-questions.html

Given a function which produces a random integer in the range 1 to 5, write a function which produces a random integer in the range 1 to 7.

I am not getting a way to generate all random numbers 1 to 7 with almost equal probability by using 1 to 5 random generator.

Could anyone pls solve it ?

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marked as duplicate by Jigar Joshi, Cody Gray, marcog, In silico, Paul R Dec 4 '10 at 12:13

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Does the distribution have to be uniform? Do you get a uniform distribution from the provided function? Could you just ignore the provided function? :) –  Karl Knechtel Dec 4 '10 at 12:06

2 Answers 2

I assume that the function you're given provides uniformly distributed-numbers and it is a strict requirement that the function you need to write also returns uniformly-distributed numbers.

The following pseudo-code illustrates the standard technique (called rejection sampling):

do {
  rand25 = (rand5() - 1) * 5 + rand5; // 1-25
} while (rand25 > 21);
return (rand25 - 1) / 3 + 1;
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What about func() + func() % 3 ?

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just noticed, probability must be the same. This solution changes distribution. –  qutron Dec 4 '10 at 12:25
    
This is really a comment, not an answer to the question. Please use "add comment" to leave feedback for the author. –  Rostyslav Dzinko Aug 17 '12 at 9:38
    
This is a bad idea as it destroys the distribution properties of func(). In func() % 3 getting a 1 or 2 is twice as likely to get a 0, assuming func() has an equal distribution. –  bitmask Aug 18 '12 at 13:59

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