Difference between revisions of "1969 Canadian MO Problems/Problem 1"

Revision as of 12:03, 8 October 2007

Problem

Show that if $a_1/b_1=a_2/b_2=a_3/b_3$ and $p_1,p_2,p_3$ are not all zero, then $\left(\frac{a_1}{b_1} \right)^n=\frac{p_1a_1^n+p_2a_2^n+p_3a_3^n}{p_1b_1^n+p_2b_2^n+p_3b_3^n}$ for every positive integer $n.$

Solution

Instead of proving the two expressions equal, we prove that their difference equals zero.

Subtracting the LHS from the RHS, $0=\frac{p_1a_1^n+p_2a_2^n+p_3a_3^n}{p_1b_1^n+p_2b_2^n+p_3b_3^n}-\frac{a_1^n}{b_1^n}.$

Finding a common denominator, the numerator becomes $b_1^n(p_1a_1^n+p_2a_2^n+p_3a_3^n)-a_1^n(p_1b_1^n+p_2b_2^n+p_3b_3^n)=p_2(a_2^nb_1^n-a_1^nb_2^n)+p_3(a_3^nb_1^n-a_1^nb_3^n)=0.$ (The denominator is irrelevant since it never equals zero)

From $a_1/b_1=a_2b_2,$ $a_1^nb_2^n=a_2^nb_1^n.$ Similarly, $a_1^nb_3^n=a_3^nb_1^n$ from $a_1/b_1=a_3/b_3.$

Hence, $a_2^nb_1^n-a_1^nb_2^n=a_3^nb_1^n-a_1^nb_3^n=0$ and our proof is complete.

1969 Canadian MO (Problems)
Preceded by First problem	1 • 2 • 3 • 4 • 5	Followed by Problem 2

@@ Line 1: / Line 1: @@
 == Problem ==
-Show that if <math>\displaystyle a_1/b_1=a_2/b_2=a_3/b_3</math> and <math>\displaystyle p_1,p_2,p_3</math> are not all zero, then <math>\displaystyle\left(\frac{a_1}{b_1} \right)^n=\frac{p_1a_1^n+p_2a_2^n+p_3a_3^n}{p_1b_1^n+p_2b_2^n+p_3b_3^n}</math> for every positive integer <math>\displaystyle n.</math>
+Show that if <math>a_1/b_1=a_2/b_2=a_3/b_3</math> and <math>p_1,p_2,p_3</math> are not all zero, then <math>\left(\frac{a_1}{b_1} \right)^n=\frac{p_1a_1^n+p_2a_2^n+p_3a_3^n}{p_1b_1^n+p_2b_2^n+p_3b_3^n}</math> for every positive integer <math>n.</math>
 == Solution ==
@@ Line 6: / Line 6: @@
 Subtracting the LHS from the RHS,
-<math>0=\displaystyle \frac{p_1a_1^n+p_2a_2^n+p_3a_3^n}{p_1b_1^n+p_2b_2^n+p_3b_3^n}-\frac{a_1^n}{b_1^n}.</math>
+<math>0=\frac{p_1a_1^n+p_2a_2^n+p_3a_3^n}{p_1b_1^n+p_2b_2^n+p_3b_3^n}-\frac{a_1^n}{b_1^n}.</math>
 Finding a common denominator, the numerator becomes
-<math>\displaystyle b_1^n(p_1a_1^n+p_2a_2^n+p_3a_3^n)-a_1^n(p_1b_1^n+p_2b_2^n+p_3b_3^n)=p_2(a_2^nb_1^n-a_1^nb_2^n)+p_3(a_3^nb_1^n-a_1^nb_3^n)=0.</math>
+<math>b_1^n(p_1a_1^n+p_2a_2^n+p_3a_3^n)-a_1^n(p_1b_1^n+p_2b_2^n+p_3b_3^n)=p_2(a_2^nb_1^n-a_1^nb_2^n)+p_3(a_3^nb_1^n-a_1^nb_3^n)=0.</math>
 (The denominator is irrelevant since it never equals zero)
-From <math>\displaystyle a_1/b_1=a_2b_2,</math> <math>\displaystyle a_1^nb_2^n=a_2^nb_1^n.</math> Similarly, <math>\displaystyle a_1^nb_3^n=a_3^nb_1^n</math> from <math>\displaystyle a_1/b_1=a_3/b_3.</math>
+From <math>a_1/b_1=a_2b_2,</math> <math>a_1^nb_2^n=a_2^nb_1^n.</math> Similarly, <math>a_1^nb_3^n=a_3^nb_1^n</math> from <math>a_1/b_1=a_3/b_3.</math>
-Hence, <math>\displaystyle a_2^nb_1^n-a_1^nb_2^n=a_3^nb_1^n-a_1^nb_3^n=0</math> and our proof is complete.
+Hence, <math>a_2^nb_1^n-a_1^nb_2^n=a_3^nb_1^n-a_1^nb_3^n=0</math> and our proof is complete.
 ----
-* [[1969 Canadian MO Problems/Problem 2|Next Problem]]
+{{CanadaMO box|year=1969|before=First problem|num-a=2}}
-* [[1969 Canadian MO Problems|Back to Exam]]

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Difference between revisions of "1969 Canadian MO Problems/Problem 1"

Revision as of 12:03, 8 October 2007

Problem

Solution