Difference between revisions of "1976 IMO Problems/Problem 2"

Revision as of 12:59, 10 February 2012

Problem

Let $P_{1}(x) = x^{2} - 2$ and $P_{j}(x) = P_{1}(P_{j - 1}(x))$ for $j= 2,\ldots$ Prove that for any positive integer n the roots of the equation $P_{n}(x) = x$ are all real and distinct.

Solution

I shall prove by induction that $P_n(x)$ has $2^n$ distinct real solutions, where $2^{n-1}$ are positive and $2^{n-1}$ are negative. Also, for ever root $r$ , $|r|<2$ .

Clearly, $P_1(x)$ has 2 real solutions, where 1 is positive and 1 is negative. The absolute values of these two solutions are also both less than 2. This proves the base case.

Now assume that for some positive integer $k$ , $P_k(x)$ has $2^k$ distinct real solutions with absolute values less than 2, where $2^{k-1}$ are positive and $2^{k-1}$ are negative.

Choose a root $r$ of $P_{k+1}(x)$ . Let $P_1(r)=s$ , where $s$ is a real root of $P_k(x)$ . We have that $-2<s<2$ , so $0<r^2<4$ , so $r$ is real and $|r|<2$ . Therefore all of the roots of $P_{k+1}$ are real and have absolute values less than 2.

Note that the function $P_{k+1}(x)$ is an even function, since $P_1(x)$ is an even function. Therefore half of the roots of $P_{k+1}$ are positive, and half are negative.

Now assume for the sake of contradiction that $P_{k+1}(x)$ has a double root $r$ . Let $P_1(r)=s$ . Then there exists exactly one real number $r$ such that $r^2-2=s$ . The only way that this could happen is when $s+2=0$ , or $s=-2$ . However, $|s|<2$ from our inductive hypothesis, so this is a contradiction. Therefore $P_{k+1}(x)$ has no double roots. This proves that that the roots of $P_{k+1}(x)$ are distinct.

This completes the inductive step, which completes the inductive proof.

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 == Solution ==
-{{solution}}
+I shall prove by induction that <math>P_n(x)</math> has <math>2^n</math> distinct real solutions, where <math>2^{n-1}</math> are positive and <math>2^{n-1}</math> are negative. Also, for ever root <math>r</math>, <math>|r|<2</math>.
+Clearly, <math>P_1(x)</math> has 2 real solutions, where 1 is positive and 1 is negative. The absolute values of these two solutions are also both less than 2. This proves the base case.
+Now assume that for some positive integer <math>k</math>, <math>P_k(x)</math> has <math>2^k</math> distinct real solutions with absolute values less than 2, where <math>2^{k-1}</math> are positive and <math>2^{k-1}</math> are negative.
+Choose a root <math>r</math> of <math>P_{k+1}(x)</math>. Let <math>P_1(r)=s</math>, where <math>s</math> is a real root of <math>P_k(x)</math>. We have that <math>-2<s<2</math>, so <math>0<r^2<4</math>, so <math>r</math> is real and <math>|r|<2</math>. Therefore all of the roots of <math>P_{k+1}</math> are real and have absolute values less than 2.
+Note that the function <math>P_{k+1}(x)</math> is an even function, since <math>P_1(x)</math> is an even function. Therefore half of the roots of <math>P_{k+1}</math> are positive, and half are negative.
+Now assume for the sake of contradiction that <math>P_{k+1}(x)</math> has a double root <math>r</math>. Let <math>P_1(r)=s</math>. Then there exists exactly one real number <math>r</math> such that <math>r^2-2=s</math>. The only way that this could happen is when <math>s+2=0</math>, or <math>s=-2</math>. However, <math>|s|<2</math> from our inductive hypothesis, so this is a contradiction. Therefore <math>P_{k+1}(x)</math> has no double roots. This proves that that the roots of <math>P_{k+1}(x)</math> are distinct.
+This completes the inductive step, which completes the inductive proof.
 == See also ==
 {{IMO box|year=1976|num-b=1|num-a=3}}

1976 IMO (Problems) • Resources
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Difference between revisions of "1976 IMO Problems/Problem 2"

Revision as of 12:59, 10 February 2012

Problem

Solution

See also