Mock AIME 1 2005-2006/Problem 7

Revision as of 22:39, 17 April 2009 by Aimesolver (talk | contribs) (Problem)

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 $(6+1)(2+1)$, or $\boxed {021}$ divisors.