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| Sweet Sixteener (Posted on 2005-02-03) |
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For this problem, only positive whole numbers are to be considered. What is the smallest number that has exactly 16 numbers (including 1 and itself) that divide into it without remainder? Proof?
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Submitted by Richard
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Rating: 4.0000 (2 votes)
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Solution:
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(Hide)
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120 = 2*2*2*3*5. See Jer's posts for the story. (Note that by "proper divisor" Jer just means "positive divisor", whereas most people use the word "divisor" (unqualified) for any positive divisor of a number, reserving "proper divisor" for a (positive) divisor that is not the number itself.) |
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