|
||
|
Title: number of divisors Post by Christine on Jun 3rd, 2013, 9:59am The number of positive divisors of 9 is equal to the square root of 9 1 is the trivial solution. How do you prove that (1, 9) are the only solutions? |
||
|
Title: Re: number of divisors Post by rmsgrey on Jun 4th, 2013, 7:00am on 06/03/13 at 09:59:48, Christine wrote:
1) [hide]Any square has an odd number of divisors, so any solution must be an odd square.[/hide] 2) [hide]Any solution not divisible by 3 gives rise to another solution when multiplied by 9 since that multiplies both the square root and the number of divisors by 3.[/hide] 3) [hide]Any solution divisible by 3 will not give rise to another solution when multiplied by 9 since that multiplies the square root by 3, and the number of divisors by at most 5/3.[/hide] 4) [hide]Multiplying any solution by p2, where p>3 and p is prime, multiplies the square root by p and the number of divisors by at most 3 so does not give rise to another solution.[/hide] 5) [hide]Multiplying any square with a square root greater than its number of divisors by an odd prime squared will never give a solution since the square root is multiplied by at least 3 and the number of divisors by at most 3.[/hide] 6) [hide]Any odd square is the product of squares of odd primes, so can be reached from 1 by repeatedly multiplying by an odd prime squared - since 1 is a solution, from the above, as soon as you multiply by 9 a second time, or by any other odd prime squared, the number produced is not a solution, and no subsequent steps will produce a solution.[/hide] |
||
|
Powered by YaBB 1 Gold - SP 1.4! Forum software copyright © 2000-2004 Yet another Bulletin Board |