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c) \(h\left(x\right)=\left(x+1\right)^2+\left(\dfrac{x^2+2x+2}{x+1}\right)^2=\left(x+1\right)^2+\left(x+1+\dfrac{1}{x+1}\right)^2=2\left(x+1\right)^2+\dfrac{1}{\left(x+1\right)^2}+2\ge_{AM-GM}2\sqrt{2}+2\).
Đẳng thức xảy ra khi \(2\left(x+1\right)^2=\dfrac{1}{\left(x+1\right)^2}\Leftrightarrow x=\pm\sqrt{\dfrac{1}{2}}-1\).
b) \(g\left(x\right)=\dfrac{\left(x+2\right)\left(x+3\right)}{x}=\dfrac{x^2+5x+6}{x}=\left(x+\dfrac{6}{x}\right)+5\ge_{AM-GM}2\sqrt{6}+5\).
Đẳng thức xảy ra khi x = \(\sqrt{6}\).
1.
\(f\left(x\right)=\dfrac{4}{x}+\dfrac{x-1+1}{1-x}=\dfrac{2^2}{x}+\dfrac{1}{1-x}-1\ge\dfrac{\left(2+1\right)^2}{x+1-x}-1=8\)
\(f\left(x\right)_{min}=8\) khi \(x=\dfrac{2}{3}\)
2.
\(f\left(x\right)=\dfrac{1}{x}+\dfrac{1}{1-x}\ge\dfrac{4}{x+1-x}=4\)
\(f\left(x\right)_{min}=4\) khi \(x=\dfrac{1}{2}\)
f(x)=4x+x−1+11−x=22x+11−x−1≥(2+1)2x+1−x−1=8f(x)=4x+x−1+11−x=22x+11−x−1≥(2+1)2x+1−x−1=8
f(x)min=8f(x)min=8 khi x=23x=23
2.
f(x)=1x+11−x≥4x+1−x=4f(x)=1x+11−x≥4x+1−x=4
f(x)min=4f(x)min=4 khi x=12
a) \(f(x)\geq 2\sqrt{x^2.\frac{16}{x^2}}=2\sqrt{16}=2.4=8\)
Dấu "=" xảy ra khi và chỉ khi \(x^2=\frac{16}{x^2}\)
\(\Leftrightarrow x=2\)
Vậy GTNN của \(f(x)\) bằng 8 khi x=2
b) \(f(x)=\frac{1-x+x}{x}+\frac{2-2x+2x}{1-x}\)
\(f(x)=\frac{1-x}{x}+\frac{2x}{1-x}+3\)
\(f(x)\geq 2\sqrt{\frac{1-x}{x}.\frac{2x}{1-x}}+3=2\sqrt{2}+3\)
Dấu "=" xảy ra khi và chỉ khi \(\frac{1-x}{x}=\frac{2x}{1-x}\)
\(\Leftrightarrow x=\frac{1}{2}\)
Vậy GTNN của \(f(x)\) bằng \(2\sqrt{2} +3\) khi \(x=\frac{1}{2}\)
a, \(y=\dfrac{\sqrt{x-2}}{x}=\sqrt{\dfrac{1}{x}-\dfrac{2}{x^2}}\ge0\)
\(min=0\Leftrightarrow\dfrac{1}{x}-\dfrac{2}{x^2}=0\Leftrightarrow x=2\)
b, Áp dụng BĐT Cosi:
\(f\left(x\right)=\dfrac{x}{\sqrt{x-1}}=\dfrac{x-1+1}{\sqrt{x-1}}=\sqrt{x-1}+\dfrac{1}{\sqrt{x-1}}\ge2\)
\(minf\left(x\right)=2\Leftrightarrow x=2\)
\(1.x^2+\dfrac{1}{x^2}-2m\left(x+\dfrac{1}{x}\right)+1+2m=0\left(1\right)\)\(đặt:x^2+\dfrac{1}{x^2}=t\)
\(x>0\Rightarrow t\ge2\sqrt{x^2.\dfrac{1}{x^2}}=2\)
\(x< 0\Rightarrow-t=-x^2+\dfrac{1}{\left(-x^2\right)}\ge2\Rightarrow t\le-2\)
\(\Rightarrow t\in(-\infty;-2]\cup[2;+\infty)\left(2\right)\)
\(\Rightarrow\left(1\right)\Leftrightarrow t^2-2mt+2m-1=0\)
\(\Leftrightarrow\left(t-1\right)\left(t-2m+1\right)=0\Leftrightarrow\left[{}\begin{matrix}t=1\notin\left(2\right)\\t=2m-1\end{matrix}\right.\)
\(\Rightarrow\left[{}\begin{matrix}2m-1\le-2\\2m-1\ge2\end{matrix}\right.\)\(\Leftrightarrow\left[{}\begin{matrix}m\le-\dfrac{1}{2}\\m\ge\dfrac{3}{4}\end{matrix}\right.\)
\(2.\) \(f^2\left(\left|x\right|\right)+\left(m-2\right)f\left(\left|x\right|\right)+m-3=0\left(1\right)\)
\(\Leftrightarrow\left[{}\begin{matrix}f\left(\left|x\right|\right)=-1\\f\left(\left|x\right|\right)=3-m\end{matrix}\right.\)
\(dựa\) \(vào\) \(đồ\) \(thị\) \(f\left(\left|x\right|\right)\) \(\Rightarrow f\left(\left|x\right|\right)=-1\) \(có\) \(2nghiem\) \(pb\)
\(\left(1\right)có\) \(6\) \(ngo\) \(pb\Leftrightarrow\left\{{}\begin{matrix}-1< 3-m< 3\\3-m\ne-1\\\end{matrix}\right.\)\(\Leftrightarrow0< m< 4\)
\(\Rightarrow m=\left\{1;2;3\right\}\)
Ta có \(f\left(x\right)-6=\dfrac{2x^3+4-6x}{x}=\dfrac{2\left(x-1\right)^2\left(x+2\right)}{x}\ge0\) nên \(f\left(x\right)\ge6\).
Đẳng thức xảy ra khi và chỉ khi x = 1.
Cách khác thì dùng AM - GM:
\(f\left(x\right)=2x^2+\dfrac{4}{x}=2x^2+\dfrac{2}{x}+\dfrac{2}{x}\ge3\sqrt[3]{2x^2.\dfrac{2}{x}.\dfrac{2}{x}}=6\).
Xảy ra đẳng thức khi x = 1.
\(f\left(x\right)=\dfrac{x^2+10x+16}{x}=x+\dfrac{16}{x}+10\ge2\sqrt{\dfrac{16x}{x}}+10=14\)
\(f\left(x\right)_{min}=14\) khi \(x=4\)
a: TXĐ: D=R
b: \(f\left(-1\right)=\dfrac{2}{-1-1}=\dfrac{2}{-2}=-1\)
\(f\left(0\right)=\sqrt{0+1}=1\)
\(f\left(1\right)=\sqrt{1+1}=\sqrt{2}\)
\(f\left(2\right)=\sqrt{3}\)
Áp dụng bất đẳng thức Svacxo, ta có:
\(f\left(x\right)=\dfrac{4}{x}+\dfrac{9}{1-x}=\dfrac{2^2}{x}+\dfrac{3^2}{1-x}\ge\dfrac{\left(2+3\right)^2}{x+1-x}=25\)
Vậy \(f\left(x\right)_{min}=25\Leftrightarrow\dfrac{2}{x}=\dfrac{3}{1-x}\Leftrightarrow x=\dfrac{2}{5}\)