Difference between revisions of "2018 USAMO Problems/Problem 1"
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We now have <math>1+b+c=4\sqrt[3]{bc}</math>, and we want to prove <math>2bc+2b+2c+4\ge 1+b^2+c^2.</math> Adding <math>2bc</math> to both sides and subtracting <math>2b+2c</math> gives us <math>4bc+4\ge 1+ (b+c)(b+c-2)</math>, or <math>4bc+3\ge (b+c)(b+c-2)</math>. Let <math>\sqrt[3]{bc}=x</math>. Now, we have <cmath>4x^3+3 \ge (4x-1)(4x-3)</cmath> <cmath>4x^3 - 16x^2 + 16x \ge 0</cmath> <cmath>4x^2 - 16 + 16 \ge 0</cmath> <cmath>4(x-2)^2 \ge 0</cmath> By the trivial inequality, this is always true. Since all these steps are reversible, the proof is complete. | We now have <math>1+b+c=4\sqrt[3]{bc}</math>, and we want to prove <math>2bc+2b+2c+4\ge 1+b^2+c^2.</math> Adding <math>2bc</math> to both sides and subtracting <math>2b+2c</math> gives us <math>4bc+4\ge 1+ (b+c)(b+c-2)</math>, or <math>4bc+3\ge (b+c)(b+c-2)</math>. Let <math>\sqrt[3]{bc}=x</math>. Now, we have <cmath>4x^3+3 \ge (4x-1)(4x-3)</cmath> <cmath>4x^3 - 16x^2 + 16x \ge 0</cmath> <cmath>4x^2 - 16 + 16 \ge 0</cmath> <cmath>4(x-2)^2 \ge 0</cmath> By the trivial inequality, this is always true. Since all these steps are reversible, the proof is complete. | ||
~SigmaPiE | ~SigmaPiE | ||
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| + | {{USAMO newbox|year=2018|before=First Question|num-a=2}} | ||
Latest revision as of 01:30, 3 December 2024
Contents
Problem 1
Let 
be positive real numbers such that ![$a+b+c=4\sqrt[3]{abc}$](http://latex.artofproblemsolving.com/b/6/9/b69ff720e6d0801983832367327a018e7afce9ca.png)
. Prove that ![\[2(ab+bc+ca)+4\min(a^2,b^2,c^2)\ge a^2+b^2+c^2.\]](http://latex.artofproblemsolving.com/7/0/4/7043a170ac5535465a5a1b4daccb1f1de3043280.png)
Solution
WLOG let 
. Add 
to both sides of the inequality and factor to get: ![\[4(a(a+b+c)+bc) \geq (a+b+c)^2\]](http://latex.artofproblemsolving.com/1/9/c/19cf714c622f8daf8c0d9b14c6d11e7d67e976f0.png)
![\[\frac{4a\sqrt[3]{abc}+bc}{2} \geq 2\sqrt[3]{a^2b^2c^2}\]](http://latex.artofproblemsolving.com/9/7/6/97633532a495f02b4209186344c3ba7896ad3cc4.png)
The last inequality is true by AM-GM. Since all these steps are reversible, the proof is complete.
Solution 2
https://wiki-images.artofproblemsolving.com//6/69/IMG_8946.jpg
-srisainandan6
Solution 3
Similarly to Solution 2, we will prove homogeneity but we will use that to solve the problem differently. Let ![$f(a,b,c)=a+b+c-4\sqrt[3]{abc}$](http://latex.artofproblemsolving.com/f/7/1/f7150c9bdf13f2b98a0ab5dcec844ef389944504.png)
. Note that 
, thus proving homogeneity.
WLOG, we can scale down all variables such that the lowest one is 
. WLOG, let this be 
.
We now have ![$1+b+c=4\sqrt[3]{bc}$](http://latex.artofproblemsolving.com/8/5/e/85e3998c5451446aa9093132ea93d2bf35414db4.png)
, and we want to prove 
Adding 
to both sides and subtracting 
gives us 
, or 
. Let ![$\sqrt[3]{bc}=x$](http://latex.artofproblemsolving.com/7/c/6/7c60200e587403bd0a22670df12863e11dce2aba.png)
. Now, we have ![\[4x^3+3 \ge (4x-1)(4x-3)\]](http://latex.artofproblemsolving.com/7/a/3/7a36c68d7666207db035de3980090f2b21633725.png)
![\[4x^3 - 16x^2 + 16x \ge 0\]](http://latex.artofproblemsolving.com/3/b/d/3bde58213587110b80686b5e8f944f351f93b975.png)
![\[4x^2 - 16 + 16 \ge 0\]](http://latex.artofproblemsolving.com/d/8/9/d89a7e5d58ae153db5d4cb02fb5d1125610d224f.png)
![\[4(x-2)^2 \ge 0\]](http://latex.artofproblemsolving.com/b/1/7/b17f02fd800625d93b92761997f5f120d3de04c6.png)
By the trivial inequality, this is always true. Since all these steps are reversible, the proof is complete.
~SigmaPiE
| 2018 USAMO (Problems • Resources) | ||
| Preceded by First Question |
Followed by Problem 2 | |
| 1 • 2 • 3 • 4 • 5 • 6 | ||
| All USAMO Problems and Solutions | ||
