$(x+\sqrt{x^{2}+5})(y+\sqrt{y^{2}+5})=5  $ tinh $A=x+y$
từ gt ta có$:(x+\sqrt{x^2+5})(\sqrt{y^2+5}+y)=(\sqrt{x^2+5})(\sqrt{x^2-5})(1)$
do:$ \sqrt{x^2+5}+x\geq \sqrt{x^2}+x\Leftrightarrow \sqrt{x^2+5}+x\geq \left| {x} \right|+x\geqslant 0(vs mọi x)$
$\Rightarrow \sqrt{x^2+5}+x>0$
nên $(1)\Rightarrow \sqrt{y^2+5}+y=\sqrt{x^2+5}-x$
$+TT:\sqrt{x^2+5}+x=\sqrt{y^2+5}-y$
cộng lại$:\sqrt{x^2+5}+x+\sqrt{y^2+5}+y=\sqrt{x^2+5}-x+\sqrt{y^2+5}-y\Leftrightarrow 2(x+y)=0\Rightarrow x+y=0$
uk,thĩ x âm thì y dương –  ๖ۣۜTQT☾♋☽ 21-07-16 10:22 AM
ak hú hú x có thể âm mak em –  ๖ۣۜJinღ๖ۣۜKaido 21-07-16 10:20 AM
Ta có : $(x+\sqrt{x^2+5})(\sqrt{x^2+5}-x)=5$ Mặt khác theo gt ta có $(x+\sqrt{x^2+5})(y+\sqrt{y^2+5})=5$
$\Leftrightarrow \sqrt{x^2+5}-x = y+\sqrt{y^2+5} \vee x+ \sqrt{x^2+5}=0 $(loại do $x+\sqrt{x^2+5}=0$ vô nghiệm)
giải pt còn lại ta được $x=-y\Rightarrow A=x+y=0$
$(x+\sqrt{x^2+5}).(\sqrt{x^2+5}-x).(y+\sqrt{y^2+5})(\sqrt{y^2+5}-y)=25$
$\Rightarrow (\sqrt{x^2+5}-x)(\sqrt{y^2+5}-y)=5$
roi giai tim x+y
uk anh chưa giải mak chắc z hehe –  ๖ۣۜJinღ๖ۣۜKaido 21-07-16 10:13 AM
x y=0 nhỉ a jin nhỉ –  ๖ۣۜTQT☾♋☽ 21-07-16 10:10 AM
pt $\Leftrightarrow \begin{cases}x +\sqrt{x^{2}+5}=\sqrt{y^{2}+5} -y\\ y+\sqrt{y^{2}+5}=\sqrt{x^{2}+5} -x\end{cases}$
 Cộng 2 vế ta đc
$2(x+y)=0 \Leftrightarrow x+y=0$

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