Difference between revisions of "1977 Canadian MO Problems/Problem 1"

Revision as of 23:57, 9 August 2016

Problem

If $f(x)=x^2+x,$ prove that the equation $4f(a)=f(b)$ has no solutions in positive integers $a$ and $b.$

Solution

Directly plugging $a$ and $b$ into the function, $4a^2+4a=b^2+b.$ We now have a quadratic in $a.$

Applying the quadratic formula, $a=\frac{-1\pm \sqrt{b^2+b+1}}{2}.$

In order for both $a$ and $b$ to be integers, the discriminant must be a perfect square. However, since $b^2< b^2+b+1 <(b+1)^2,$ the quantity $b^2+b+1$ cannot be a perfect square when $b$ is an integer. Hence, when $b$ is a positive integer, $a$ cannot be.

Solution 2

Suppose there exist positive integral $a$ and $b$ such that $4f(a) = f(b)$ .

Thus, $4a^2 + 4a = b^2 + b$ , or $(2a+1)^2 = b^2 + b + 1$ . Then in order for the original equation to be true, $b^{2} + b + 1 would have to be a perfect square. Completing the square of$ b^{2} + b + 1 $results in$ (b+1/2)^{2} + 3/4 $. Thus,$ b^{2} + b + 1 $is not a perfect square and thus there is no$ b $to satisfy$ 4f(a) = f(b)$

Alternate Solutions?

Alternate solutions are always welcome. If you have a different, elegant solution to this problem, please add it to this page.

@@ Line 12: / Line 12: @@
 Suppose there exist positive integral <math>a</math> and <math>b</math> such that <math>4f(a) = f(b)</math>.
-Thus, <math>4a^2 + 4a = b^2 + b</math>, or <math>(2a+1)^2 = b^2 + b + 1</math>. Then in order for the original equation to be true, <math>b^{2} + b + 1 would have to be a perfect square. Completing the square of </math>b^{2} + b + 1<math> results in </math>(b+1/2)^{2} + 3/4<math>. Thus, </math>b^{2} + b + 1<math> is not a perfect square and thus there is no </math>b<math> to satisfy </math>4f(a) = f(b)$
+Thus, <math>4a^2 + 4a = b^2 + b</math>, or <math>(2a+1)^2 = b^2 + b + 1</math>. Then in order for the original equation to be true, <math>b^{2} + b + 1 would have to be a perfect square. Completing the square of </math>b^{2} + b + 1<math> results in </math>(b+1/2)^{2} + 3/4<math>. Thus, </math>b^{2} + b + 1<math>  is not a perfect square and thus there is no </math>b<math> to satisfy </math>4f(a) = f(b)$
 ==Alternate Solutions?==

1977 Canadian MO (Problems)
Preceded by First question	1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 •	Followed by Problem 2

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