Difference between revisions of "1999 AIME Problems/Problem 3"

Revision as of 21:22, 9 February 2007

Problem

Find the sum of all positive integers $\displaystyle n$ for which $\displaystyle n^2-19n+99$ is a perfect square.

Solution

If the perfect square is represented by $x^2$ , then the equation is $n^2 - 19n + 99 - x^2 = 0$ . The quadratic formula yields:

$\frac{19 \pm \sqrt{361 - 4(99 - x^2)}}{2}$

The discriminant must also be a perfect square ( $y^2$ ), so $x^2 - 35 = y^2$ . This factors to:

$(x + y)(x - y) = 35$

$35$ has two pairs of factors: $\{1,\ 35\}$ and $\{5,\ 7\}$ . Respectively, these yield 18 and 6 for $x$ , which results in $n = 1,\ 9,\ 10,\ 18$ . The sum is therefore $038$ .

@@ Line 3: / Line 3: @@
 == Solution ==
-{{solution}}
+If the [[perfect square]] is represented by <math>x^2</math>, then the equation is <math>n^2 - 19n + 99 - x^2 = 0</math>. The [[quadratic formula]] yields:
+:<math>\frac{19 \pm \sqrt{361 - 4(99 - x^2)}}{2}</math>
+The [[discriminant]] must also be a perfect square (<math>y^2</math>), so <math>x^2 - 35 = y^2</math>. This factors to:
+:<math>(x + y)(x - y) = 35</math>
+<math>35</math> has two pairs of factors: <math>\{1,\ 35\}</math> and <math>\{5,\ 7\}</math>. Respectively, these yield 18 and 6 for <math>x</math>, which results in <math>n = 1,\ 9,\ 10,\ 18</math>. The sum is therefore <math>038</math>.
 == See also ==
-* [[1999_AIME_Problems/Problem_2|Previous Problem]]
-* [[1999_AIME_Problems/Problem_4|Next Problem]]
 * [[1999 AIME Problems]]
+{{AIME box|year=1999|num-b=2|num-a=4}}

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Difference between revisions of "1999 AIME Problems/Problem 3"

Revision as of 21:22, 9 February 2007

Problem

Solution

See also