cho 3 số dương a,b,c có tích bằng 1, cmr 
a) (a-1)/b+(b-1)/c+(c-1)/a >=0
b) 1+3/(a+b+c) >= 6/(ab+bc+ca) 
Đặt $a=\frac{x}{y};b=\frac{y}{z};c=\frac{z}{x}; DK: x,y,z\neq 0$
$bdt\Leftrightarrow \frac{xz}{y^2}+\frac{yx}{z^2}+\frac{zy}{x^2}\geq \frac{x}{z}+\frac{z}{y}+\frac{y}{x}$ ( đúng)
vì $\frac{xz}{y^2}+\frac{yx}{z^2}+\frac{yx}{z^2}\geq 3.\frac{x}{z}$
tượng tự $\Rightarrow dpcm$
"=" khi $a=b=c=1$
Đúng click "V" chấp nhận đúng cho Jin
$1)\mathbf{Áp\;dụng\;bdt\;cosi:}\\ \ \left.\begin{matrix} ab^2+bc^2+bc^2 \ge 3b\\bc^2+ bc^2+ca^2 \ge 3c \\ ca^2+ca^2+ab^2 \ge3a\end{matrix}\right\}\Rightarrow ab^2+bc^2+ca^2 \ge a+b+c \Rightarrow dpcm \\2) bdt\Leftrightarrow (ab+bc+ca)\left(1+\frac 3{a+b+c} \right) \ge 6\\\Leftrightarrow ab+bc+ca+\frac{3(ab+bc+ca)}{a+b+c} \ge 6 (*) \\ \mathbf{Áp\;dụng\;bdt\;cosi,\;}VT(*) \ge 2\sqrt{\frac{3(ab+bc+ca)^2}{a+b+c}} \ge 2\sqrt{\frac{9abc(a+b+c)}{a+b+c}}=6 (dpcm)$

hư nút enter :| –  tran85295 27-06-16 04:31 PM
:v gõ bthg dùm sư huynh –  ๖ۣۜJinღ๖ۣۜKaido 27-06-16 02:05 PM

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