Ta có \(\frac{1}{P}=\frac{\left(x+yz\right)\left(y+zx\right)\left(z+xy\right)^2}{x^3y^3}=\frac{x+yz}{y}\cdot\frac{y+zx}{x}\cdot\frac{\left(z+xy\right)^2}{x^2y^2}\)

\(=\left(\frac{x}{y}+z\right)\left(\frac{y}{x}+z\right)\left(\frac{z}{xy}+1\right)^2=\left[1+\left(\frac{x}{y}+\frac{x}{y}\right)z+x^2\right]\left(\frac{z}{xy}+1\right)^2\ge\left(1+2x+x^2\right)\)\(\left[\frac{4x}{\left(x+y\right)^2}+1\right]^2\)\(=\left(z+1\right)^2\left[\frac{4z}{\left(z-1\right)^2}+1\right]^2=\left[\frac{4z\left(z+1\right)}{\left(z-1\right)^2}+1\right]^2=\left[6+\frac{12}{z-1}+\frac{8}{\left(z-1\right)^2}+z-1\right]^2\)

\(=\left[6+\frac{12}{z-1}+\frac{3\left(z-1\right)}{4}+\frac{8}{\left(z-1\right)^2}+\frac{z-1}{8}+\frac{z-1}{8}\right]\)

Áp dụng BĐT Cosi ta có:

\(\frac{1}{P}\ge\left[6+2\sqrt{\frac{12}{z-1}\cdot\frac{3\left(z-1\right)}{3}}+3\sqrt[3]{\frac{8}{\left(z-1\right)^2}\cdot\frac{z-1}{8}\cdot\frac{z-1}{8}}\right]^2=\frac{729}{4}\)

\(\Rightarrow P\le\frac{4}{729}\). dấu "=" xảy ra <=> \(\hept{\begin{cases}x=y=2\\z=5\end{cases}}\)

theo bđt cauchy schwars dạng engel ta có

\(T=\dfrac{x^2}{y+x}+\dfrac{y^2}{z+x}+\dfrac{z^2}{x+y}\ge\dfrac{\left(x+y+z\right)^2}{2\left(x+y+z\right)}=\dfrac{x+y+z}{2}\)

Dấu '=' xảy ra khi x=y=z

pt \(\Leftrightarrow\sqrt{x^2+y^2}+\sqrt{y^2+z^2}+\sqrt{z^2+x^2}=2015\)

\(\Leftrightarrow3\sqrt{2}x=2015\)

\(\Leftrightarrow x=\dfrac{2015}{3\sqrt{2}}\)

vậy \(T_{min}=\dfrac{2015}{\sqrt{2}}\) khi \(x=y=z=\dfrac{2015}{3\sqrt{2}}\)

ko chắc đúng nha bạn :))

\(a,\)\(\sqrt{\left(x-1\right)\left(x-3\right)}\)

\(đkxđ\Leftrightarrow\left(x-1\right)\left(x-3\right)\ge0\)

\(\orbr{\begin{cases}x-1\ge0;x-3\ge0\\x-1< 0;x-3< 0\end{cases}\Rightarrow\orbr{\begin{cases}x\ge1;x\ge3\\x< 1;x< 3\end{cases}\Rightarrow}\orbr{\begin{cases}x\ge3\\x< 1\end{cases}}}\)

\(b,\)\(\sqrt{\frac{4}{x+3}}\)

\(đkxđ\Leftrightarrow\orbr{\begin{cases}x+3\ne0\\x+3\ge0\end{cases}\Rightarrow x+3>0}\)\(\Rightarrow x>-3\)

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