Mình nghĩ đk sau biểu thức sẽ là \(0,5\le x\le3\)

Ta có: \(0,5\le x\le3\)

\(\Leftrightarrow\) \(\left\{{}\begin{matrix}2x-1\ge0\\3-x\ge0\end{matrix}\right.\)

\(\Rightarrow\) \(\left(2x-1\right)\left(3-x\right)\ge0\)

Dấu "=" xảy ra khi \(\left[{}\begin{matrix}2x-1=0\\3-x=0\end{matrix}\right.\) \(\Leftrightarrow\) \(\left[{}\begin{matrix}x=\dfrac{1}{2}\\x=3\end{matrix}\right.\left(TM\right)\)

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\(\frac{2x+1}{x}=2+\frac{1}{x}\)

Thay \(x\ge3\)\(\Leftrightarrow\frac{1}{x}\le\frac{1}{3}\)\(\Leftrightarrow2+\frac{1}{x}\le2+\frac{1}{3}=\frac{7}{3}\)

Min \(\frac{2x+1}{x}=\frac{7}{3}\Leftrightarrow x=3\)

1) Áp dụng bđt Cauchy cho 3 số dương ta có

 \(\dfrac{1}{x}+\dfrac{1}{x}+\dfrac{1}{x}+x^3\ge4\sqrt[4]{\dfrac{1}{x}.\dfrac{1}{x}.\dfrac{1}{x}.x^3}=4\) (1)

\(\dfrac{3}{y^2}+y^2\ge2\sqrt{\dfrac{3}{y^2}.y^2}=2\sqrt{3}\) (2)

\(\dfrac{3}{z^3}+z=\dfrac{3}{z^3}+\dfrac{z}{3}+\dfrac{z}{3}+\dfrac{z}{3}\ge4\sqrt[4]{\dfrac{3}{z^3}.\dfrac{z}{3}.\dfrac{z}{3}.\dfrac{z}{3}}=4\sqrt{3}\) (3)

Cộng (1);(2);(3) theo vế ta được

\(\left(\dfrac{3}{x}+\dfrac{3}{y^2}+\dfrac{3}{z^3}\right)+\left(x^3+y^2+z\right)\ge4+2\sqrt{3}+4\sqrt{3}\)

\(\Leftrightarrow3\left(\dfrac{1}{x}+\dfrac{1}{y^2}+\dfrac{1}{z^3}\right)\ge3+4\sqrt{3}\)

\(\Leftrightarrow P\ge\dfrac{3+4\sqrt{3}}{3}\)

Dấu "=" xảy ra <=> \(\left\{{}\begin{matrix}\dfrac{1}{x}=x^3\\\dfrac{3}{y^2}=y^2\\\dfrac{3}{z^3}=\dfrac{z}{3}\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}x=1\\y=\sqrt[4]{3}\\z=\sqrt{3}\end{matrix}\right.\) (thỏa mãn giả thiết ban đầu)

2) Ta có \(4\sqrt{ab}=2.\sqrt{a}.2\sqrt{b}\le a+4b\)

Dấu"=" khi a = 4b

nên \(\dfrac{8}{7a+4b+4\sqrt{ab}}\ge\dfrac{8}{7a+4b+a+4b}=\dfrac{1}{a+b}\)

Khi đó \(P\ge\dfrac{1}{a+b}-\dfrac{1}{\sqrt{a+b}}+\sqrt{a+b}\)

Đặt \(\sqrt{a+b}=t>0\) ta được

\(P\ge\dfrac{1}{t^2}-\dfrac{1}{t}+t=\left(\dfrac{1}{t^2}-\dfrac{2}{t}+1\right)+\dfrac{1}{t}+t-1\)

\(=\left(\dfrac{1}{t}-1\right)^2+\dfrac{1}{t}+t-1\)

Có \(\dfrac{1}{t}+t\ge2\sqrt{\dfrac{1}{t}.t}=2\) (BĐT Cauchy cho 2 số dương)

nên \(P=\left(\dfrac{1}{t}-1\right)^2+\dfrac{1}{t}+t-1\ge\left(\dfrac{1}{t}-1\right)^2+1\ge1\)

Dấu "=" xảy ra <=> \(\left\{{}\begin{matrix}\dfrac{1}{t}-1=0\\t=\dfrac{1}{t}\end{matrix}\right.\Leftrightarrow t=1\)(tm)

khi đó a + b = 1

mà a = 4b nên \(a=\dfrac{4}{5};b=\dfrac{1}{5}\)

Vậy MinP = 1 khi \(a=\dfrac{4}{5};b=\dfrac{1}{5}\)

We have : \(A=x+y+\dfrac{1}{2x}+\dfrac{2}{y}=\dfrac{x+y}{2}+\left(\dfrac{y}{2}+\dfrac{2}{y}\right)+\left(\dfrac{1}{2x}+\dfrac{x}{2}\right)\)

\(Applying\) C-S we have : \(\dfrac{y}{2}+\dfrac{2}{y}\ge2;\dfrac{1}{2x}+\dfrac{x}{2}\ge1\)

x + y \(\ge3\)  \(\Rightarrow\dfrac{x+y}{2}\ge\dfrac{3}{2}\)

So : \(A\ge\dfrac{3}{2}+2+1=\dfrac{9}{2}\)

" = " \(\Leftrightarrow x=1;y=2\)

Lời giải:

1)

PT hoành độ giao điểm:
\(x^2-3x+5-(x+b)=0\)

\(\Leftrightarrow x^2-4x+(5-b)=0\)

Để 2 ĐTHS có một điểm chung thì pt hoành độ giao điểm có một nghiệm duy nhất

\(\Leftrightarrow \Delta'=2^2-(5-b)=0\)

\(\Leftrightarrow b=1\)

2)

\(M=|2x+3|+|x-1|\)

\(2M=2|2x+3|+|2x-2|=(|2x+3|+|2x-2|)+|2x+3|\)

\(=(|2x+3|+|2-2x|)+|2x+3|\)

\(\geq |2x+3+2-2x|+|2x+3|\)

\(\geq |3+2|+0=5\)

\(\Rightarrow M\geq \frac{5}{2}\). Vậy \(M_{\min}=\frac{5}{2}\)

Dấu "=" xảy ra khi \(\left\{\begin{matrix} (2x+3)(2-2x)\geq 0\\ 2x+3=0\end{matrix}\right.\Leftrightarrow x=-\frac{3}{2}\)

\(A=3x^2-2x+1\)

\(A=3x^2-2x+\dfrac{1}{3}+\dfrac{2}{3}\)

\(A=3\left(x^2-\dfrac{2x}{3}+\dfrac{1}{9}\right)+\dfrac{2}{3}\)

\(A=3\left(x-\dfrac{1}{3}\right)^2+\dfrac{2}{3}\ge\dfrac{2}{3}\)

Đẳng thức xảy ra khi \(x=\dfrac{1}{3}\)

\(B=x^2-6x+13\)

\(B=x^2-6x+9+4\)

\(B=\left(x-3\right)^2+4\ge4\)

Đẳng thức xảy ra khi \(x=3\)

\(C=2x^2-4x+9\)

\(C=2x^2-4x+2+7\)

\(C=2\left(x^2-2x+1\right)+7\)

\(C=2\left(x-1\right)^2+7\ge7\)

Đẳng thức xảy ra khi \(x=1\)