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Difference between revisions of "2010 AIME II Problems/Problem 1"

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== Solution ==
 
== Solution ==
If assume to include all the even digits for the greatest integer multiple, we find that it is impossible for it to be divided by <math>3</math> or <math>36</math>.
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If we include all the even digits for the greatest integer multiple, we find that it is impossible for it to be divisible by <math>3</math>, therefore by <math>36</math> as well.
The next logical try would be <math>8640</math>, and this happens to be divisible by <math>36</math>. Thus <math>N = 8640 mod 1000 = \fbox{640}</math>
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The next logical try would be <math>8640</math>, which happens to be divisible by <math>36</math>. Thus <math>N = 8640 mod 1000 = \fbox{640}</math>

Revision as of 15:25, 1 April 2010

Problem

Let $N$ be the greatest integer multiple of $36$ all of whose digits are even and no two of whose digits are the same. Find the remainder when $N$ is divided by $1000$.

Solution

If we include all the even digits for the greatest integer multiple, we find that it is impossible for it to be divisible by $3$, therefore by $36$ as well. The next logical try would be $8640$, which happens to be divisible by $36$. Thus $N = 8640 mod 1000 = \fbox{640}$

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