Cho $x,y,z>0$ đôi một khác nhau thỏa mãn: $x+y+z=3$. Tìm GTNN của biểu thức:
$P=\sum \frac{1}{(x-y)^2}$ 
mình nghĩ là bài này cho $x,y,z \ge 0$ –  Aerilate 08-07-16 10:54 AM
Ta có ,$1 bđt:P\geq \frac{4}{xy+yz+zx}$
CM:giả sử $z= min(x;y;z)$khi đó ta có oánh giá:
$(z-x)^2=z^2+x^2-2xz\leq x^2$.Tương tự với$:(y-z)^2\leq y^2;xy+yz+zx\geq xy$
$\Rightarrow P-\frac{4}{xy+yz+zx}\geq \frac{1}{(x-y)^2}+\frac{1}{x^2}+\frac{1}{y^2}-\frac{4}{xy}=\frac{x^2+y^2-3xy}{x^2y^2(y-z^2)}\geq 0$
Áp dụng kq vào bài này

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