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Re: When a number A is divided by 6, the remainder is 3 and when [#permalink]
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Mudslide53 wrote:
For any of these questions with a mystery number getting divided by a given number such that you get a given remainder, I just pick a number that satisfies (usually the lowest number that would satisfy).

So in this case, you can set A = 9, and B = 21. Divide 9 by 6 and you get 1 w/remainder of 3, divide 21 by 12 and you get 1 w/remainder of 9.

Then plug in.

9^2+21^2 = 522

Then do long division. 522 / 12 gives you 43 remainder of 6.


I use the same approach but with smaller numbers

The smallest number satisfying the 1st condition would be 3

and

The smallest number satisfying the 2nd condition would be 9

so sum of their squares would be 90, which when divided by 12 leaves a remainder of 6
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Re: When a number A is divided by 6, the remainder is 3 and when [#permalink]
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