Giải: $\begin{cases}x+y-\sqrt{xy}=3 \\ \sqrt{x+1}+\sqrt{y+1}=4 \end{cases}$
xyx+y2"role =" presentation "style =" font-size: 13.696px; Hiển thị nội dòng; vị trí: tương đối; ">xyx+y2 (BĐT Cosi)
=> 3=x+y-xyx+y2"role =" presentation "style =" font-size: 13.696px; Hiển thị nội dòng; vị trí: tương đối; "> 3=x+y-xyx+y2 => x+y6"role =" presentation "style =" font-size: 13.696px; Hiển thị nội dòng; vị trí: tương đối; "> x+y6

4=x+1+y+12[(x+1)+(y+1)]=2(x+y+2)"role =" presentation "style =" font-size: 13.696px; Hiển thị nội dòng; position: relative; "> 4=x+1+y+12[(x+1)+(y+1)]=2(x+y+2)
=> x+y+2422=số 8"role =" presentation "style =" font-size: 13.696px; Hiển thị nội dòng; vị trí: tương đối; "> x+y+2422=số 8 => x+y6"role =" presentation "style =" font-size: 13.696px; Hiển thị nội dòng; vị trí: tương đối; "> x+y6

Dấu bằng <=> x=y=3"role =" presentation "style =" font-size: 13.696px; vị trí: tương đối; "> x=y=3
$\sqrt{xy} \leq \frac{x +y}{2}$ (BĐT Cosi)
=> $3=x+y-\sqrt{xy} \geq \frac{x+y}{2}$ => $x+y \leq 6$

$4 = \sqrt{x+1} + \sqrt{y+1} \leq \sqrt{2[(x+1)+(y+1)]}=\sqrt{2(x+y+2)}$
=> $x+y+2 \geq \frac{4^2}{2}=8$ => $x+y \geq 6 $

Dấu bằng có <=> $x = y = 3$

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