Difference between revisions of "2003 AIME II Problems/Problem 9"

Revision as of 19:33, 7 March 2015

Problem

Consider the polynomials $P(x) = x^{6} - x^{5} - x^{3} - x^{2} - x$ and $Q(x) = x^{4} - x^{3} - x^{2} - 1.$ Given that $z_{1},z_{2},z_{3},$ and $z_{4}$ are the roots of $Q(x) = 0,$ find $P(z_{1}) + P(z_{2}) + P(z_{3}) + P(z_{4}).$

Solution

${{Q(z_1)=0}}$ therefore $z_1^4-z_1^3-z_1^2-1=0$

therefore $-z_1^3-z_1^2=-z_1^4+1.$

Also $z_1^4-z_1^3-z_1^2=1$

So $z_1^6-z_1^5-z_1^4=z_1^2$

So in $P(z_1)=z_1^6-z_1^5-z_1^3-z_1^2-z_1$

Since $-z_1^3-z^2=-z_1^4+1.$ and $z_1^6-z_1^5-z_1^4=z_1^2$

      can now be

Now this also follows for all roots of $Q(x)$ Now $P(z_2)+P(z_1)+P(z_3)+P(z_4)=z_1^2-z_1+1+z_2^2-z_2+1+z_3^2-z_3+1+z_4^2-z_4+1$

Now by Vieta's we know that $-z_4-z_3-z_2-z_1=-1$ So by Newton Sums we can find $z_1^2+z_2^2+z_3^2+z_4^2$

$a_ns_2+a_{n-1}s_1+2a_{n-2}=0$

$(1)(s_2)+(-1)(1)+2(-1)=0$

$s_2-1-2=0$

$s_2=3$

So finally $P(z_2)+P(z_1)+P(z_3)+P(z_4)=3+4-1=\boxed{6}$

@@ Line 33: / Line 33: @@
 So finally
 <math>P(z_2)+P(z_1)+P(z_3)+P(z_4)=3+4-1=\boxed{6}</math>
-}}
 == See also ==
 {{AIME box|year=2003|n=II|num-b=8|num-a=10}}
 {{MAA Notice}}

2003 AIME II (Problems • Answer Key • Resources)
Preceded by Problem 8	Followed by Problem 10
1 • 2 • 3 • 4 • 5 • 6 • 7 • 8 • 9 • 10 • 11 • 12 • 13 • 14 • 15
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Difference between revisions of "2003 AIME II Problems/Problem 9"

Revision as of 19:33, 7 March 2015

Problem

Solution

See also