1998 IMO Shortlist Problems/A3

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Let $x,y,z$ be positive real numbers such that $xyz=1$. Prove that $\frac{x^3}{(1+y)(1+z)}+\frac{y^3}{(1+x)(1+z)}+\frac{z^3}{(1+x)(1+y)}\geq\frac{3}{4}$

Solution1: Using Titu's Lemma, we rewrite the equation, getting that $\frac{(x^2+y^2+z^2)^2}{3xyz+2(xy+xz+yz)+x+y+z}\geq\frac{3}{4}$. which means that $4(x^2+y^2+z^2)^2\geq 9+6(xy+yz+xz)+3(x+y+z)$. Applying AM-GM inequality, we can get that $x^2+y^2+z^2\geq3(x^2y^2z^2)^\frac{1}{3}=3$ Which means the left side is greater than or equal to 36. Now let's observe the right side. Using C-S inequality we can easily get that $(x^2+y^2+z^2)^2\geq(xy+yz+xz)^2$. So $2(x^2+y^2+z^2)^2\geq 6(xy+yz+xz)$ In the end, we can get that $(x^2+y^2+z^2)^2\geq(xy+yz+xz)^2=2xyz+x^2y^2+x^2z^2+y^2z^2\geq 2xyz(x+y+z)+3(x^4y^4z^4)^\frac{1}{3}=2xyz+3$ Since $x^2+y^2+z^2\geq3$, we can get that $x+y+z\leq3$ Now consider the right side $9+6(xy+yz+xz)+3(x+y+z)\leq9+6*3+3*3=36$, the left side $4(x^2+y^2+z^2)^2\geq 4*9=36$ so left side is always larger or equal to right sides and we are done ~bluesoul