Giải các phương trình:

1, $(7 + 3\sqrt{5})^x+(7-3\sqrt{5})^x=14.2^x$

2, $\log_5 (5^x-1).\log_{25} (5^{x+1}-5)=1$
câu 2
ĐK $x>0$
PT $\Leftrightarrow \frac{1}{2} \log_5(5^x -1)\log_5(5.5^x-5)=1 $
Đặt $t = \log_5 (5^x-1)$
$\Rightarrow$ PTTT $ t^2 +t - 2 =0$
$\Leftrightarrow$ $t= 1$ và $t=-2$
cấu 1: thủ thuật quá. hại đời học sinh thôi :))
nếu bạn đặt $ t = (7+3\sqrt{5})^x \Rightarrow (7-3\sqrt{5})^x = \frac{2^{2x}}{t}$ ĐK $t>0$
$\Rightarrow$ PTTT $ t + \frac{2^{2x}}{t} - 2.7.2^{x}=0$
$\Leftrightarrow t^2 -7.t.2^x - (7.t.2^x - 2^{2x})=0$
$\Leftrightarrow t(t-7.2^x) - 2^x(t - 7.2^x)=0$
giải tiếp nha
Câu 1

$(7 + 3\sqrt{5})^x+(7-3\sqrt{5})^x=14.2^x$

$\Leftrightarrow \bigg (\dfrac{7 + 3\sqrt{5}}{2} \bigg )^x + \bigg (\dfrac{7 - 3\sqrt{5}}{2} \bigg )^x =14$

Đặt $\bigg (\dfrac{7 + 3\sqrt{5}}{2} \bigg )^x= t >0 \Rightarrow \bigg (\dfrac{7 - 3\sqrt{5}}{2} \bigg )^x =\dfrac{1}{t}$

Ta có pt    $t^2 -14t +1 =0$

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