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The numbers are generated randomly. In the specified range. For example, it is two numbers: 5 and 10, well 10 divides 5. If it's 5 and 2, it is not divide. The 2 required to reduce by 1 or 5 to increase by 1. Tell me a fast algorithm?

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closed as too localized by Henk Holterman, abatishchev, yoda, interjay, Graviton May 3 '11 at 13:49

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5  
What do you mean when you say "The 2 required to reduce by 1 or 5 to increase by 1" –  Kobi May 1 '11 at 13:13
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5 Answers 5

up vote 3 down vote accepted
1. Let A is greater and B is smaller
2. Set M = (A % B)
3. If M == 0, You're done..
4. Else Adjust A  either by adding, A = A + B - M
5.               or by subtracting, A = A - M
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a%b==0 is true if b divides a without remainder

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If b does not divide a, he needs them to be adjusted until there's no remainder. –  Hippo May 1 '11 at 13:10
    
True, but not the question that was asked. –  Scott Wilson May 1 '11 at 13:29
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if(!(temp1 % temp2))) 
    temp1= temp1 + (temp1%temp2)
else 
   tadaaaaa :)
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if (val1 > val2) { 
   rem = val1 % val2 ;
   if (rem == 0) you're done
   otherwise required_addition = val2 + rem
} else if (val1 < val2) { 
    required_addition = val2 - val1;
} else {
    they are the same; you are done;
}
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What does required_addition do? –  Hippo May 1 '11 at 13:12
    
@Hippo, it's a new number that's divisible by val1. –  atoMerz May 1 '11 at 13:13
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@AtoMerZ: If val1 is 4, and val2 is 10, required_addition will be 10+4=14, which isn't divisible by 4. –  Hippo May 1 '11 at 13:17
    
val1 is evenly divisible by val2 + required_addition. I think that's what the OP wanted. –  Scott Wilson May 1 '11 at 13:17
    
@AtoMerZ, not correct. For example, 21 and 5, remainder is equal 1. Therefore, 5 + 1 = 6, but 21 not divide by 6. –  user348173 May 1 '11 at 13:20
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Rather than using division, it would be easier to construct a pair of numbers that can be divided with no remainder. Pick the first number at random, a say, then pick another number at random, b say, and then set c = a*b.

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