Difference between revisions of "Mock AIME 1 2005-2006/Problem 7"

Revision as of 06:48, 28 August 2013

Problem

Let $f(n)$ denote the number of divisors of a positive integer $n$ . Evaluate $f(f(2006^{6002}))$ .

Solution

$2006$ = $2*17*59$ , so $f(2006^{6002})$ has $6003^3$ positive divisors. $6003$ = $(3^2)(667)$ so $6003^3$ has $(1+1)(2+1)$ , or $\boxed {006}$ divisors.

Revision as of 23:39, 17 April 2009 (view source) Aimesolver (talk \| contribs) (→‎Problem) ← Older edit		Revision as of 06:48, 28 August 2013 (view source) PlatinumFalcon (talk \| contribs) (→‎Solution) Newer edit →
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	== Solution ==		== Solution ==

−	<math>2006</math> = <math>21759</math>, so <math>f(2006^{6002})</math> has <math>6003^3</math> positive divisors. <math>6003</math> = <math>(3^2)(667)</math> so <math>6003^3</math> has <math>(6+1)(2+1)</math>, or <math>\boxed {~~021~~}</math> divisors.	+	<math>2006</math> = <math>21759</math>, so <math>f(2006^{6002})</math> has <math>6003^3</math> positive divisors. <math>6003</math> = <math>(3^2)(667)</math> so <math>6003^3</math> has <math>(1+1)(2+1)</math>, or <math>\boxed {006}</math> divisors.

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Difference between revisions of "Mock AIME 1 2005-2006/Problem 7"

Revision as of 06:48, 28 August 2013

Problem

Solution