2014 USAJMO Problems/Problem 1: Difference between revisions

Revision as of 22:52, 29 April 2014

Problem

Let $a$ , $b$ , $c$ be real numbers greater than or equal to $1$ . Prove that $\min{\left (\frac{10a^2-5a+1}{b^2-5b+1},\frac{10b^2-5b+1}{c^2-5c+10},\frac{10c^2-5c+1}{a^2-5a+10}\right )}\leq abc$

Solution

Since $(a-1)^5\geqslant 0$ , $a^5-5a^4+10a^3-10a^2+5a-1\geqslant 0$ or $10a^2-5a+1\leqslant a^3(a^2-5a+10)$ Since $a^2-5a+10=\left( a-\dfrac{5}{2}\right)^2 +\dfrac{15}{4}\geqslant 0$ , $\frac{10a^2-5a+1}{a^2-5a+10}\leqslant a^3$ Also note that $10a^2-5a+1=10\left( a-\dfrac{1}{4}\right)+\dfrac{3}{8}\geqslant 0$ , We conclude $0\leqslant\frac{10a^2-5a+1}{a^2-5a+10}\leqslant a^3$ Similarly, $0\leqslant\frac{10b^2-5b+1}{b^2-5b+10}\leqslant b^3$ $0\leqslant\frac{10c^2-5c+1}{c^2-5c+10}\leqslant c^3$ So $\left(\frac{10a^2-5a+1}{a^2-5a+10}\right)\left(\frac{10b^2-5b+1}{b^2-5b+10}\right)\left(\frac{10c^2-5c+1}{c^2-5c+10}\right)\leqslant a^3b^3c^3$ or $\left(\frac{10a^2-5a+1}{b^2-5b+10}\right)\left(\frac{10b^2-5b+1}{c^2-5c+10}\right)\left(\frac{10c^2-5c+1}{a^2-5a+10}\right) \leqslant(abc)^3$ Therefore, $\min\left(\frac{10a^2-5a+1}{b^2-5b+10},\frac{10b^2-5b+1}{c^2-5c+10},\frac{10c^2-5c+1}{a^2-5a+10}\right )\leq abc.$

@@ Line 6: / Line 6: @@
 or
 <cmath>10a^2-5a+1\leqslant a^3(a^2-5a+10)</cmath>
-Since <math>a^2-5a+10=\left( a-\dfrac{5}{2}\right) +\dfrac{15}{4}\geqslant 0</math>,
+Since <math>a^2-5a+10=\left( a-\dfrac{5}{2}\right)^2 +\dfrac{15}{4}\geqslant 0</math>,
 <cmath> \frac{10a^2-5a+1}{a^2-5a+10}\leqslant a^3 </cmath>
 Also note that <math>10a^2-5a+1=10\left( a-\dfrac{1}{4}\right)+\dfrac{3}{8}\geqslant 0</math>,

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2014 USAJMO Problems/Problem 1: Difference between revisions

Revision as of 22:52, 29 April 2014

Problem

Solution