Chọn 2 làm cơ số, ta có :

\(A=\log_616=\frac{\log_216}{\log_26}=\frac{4}{1=\log_23}\)

Mặt khác :

\(x=\log_{12}27=\frac{\log_227}{\log_212}=\frac{3\log_23}{2+\log_23}\)

Do đó : \(\log_23=\frac{2x}{3-x}\) suy ra \(A=\frac{4\left(3-x\right)}{3+x}\)

b) Ta có :

\(B=\frac{lg30}{lg125}=\frac{lg10+lg3}{3lg\frac{10}{2}}=\frac{1+lg3}{3\left(1-lg2\right)}=\frac{1+a}{3\left(1-b\right)}\)

c) Ta có :

\(C=\log_65+\log_67=\frac{1}{\frac{1}{\log_25}+\frac{1}{\log_35}}+\frac{1}{\frac{1}{\log_27}+\frac{1}{\log_37}}\)

Ta tính \(\log_25,\log_35,\log_27,\log_37\) theo a, b, c .

Từ : \(a=\log_{27}5=\log_{3^3}5=\frac{1}{3}\log_35\)

Suy ra \(\log_35=3a\) do đó :

                                     \(\log_25=\log_23.\log35=3ac\)

Mặt khác : \(b=\log_87=\log_{2^3}7=\frac{1}{3}\log_27\) nên \(\log_27=3b\)

Do đó : \(\log_37=\frac{\log_27}{\log_23}=\frac{3b}{c}\)

Vậy : \(C=\frac{1}{\frac{1}{3ac}+\frac{1}{3a}}+\frac{1}{\frac{1}{3b}+\frac{c}{3b}}=\frac{3\left(ac+b\right)}{1+c}\)

d) Điều kiện : \(a>0;a\ne0;b>0\)

Từ giả thiết \(\log_ab=\sqrt{3}\) suy ra \(b=a^{\sqrt{3}}\). Do đó :

\(\frac{\sqrt{b}}{a}=a^{\frac{\sqrt{3}}{2}-1};\frac{\sqrt[3]{b}}{\sqrt{a}}=a^{\frac{\sqrt{3}}{3}-\frac{1}{2}}=a^{\frac{\sqrt{3}}{3}\left(\frac{\sqrt{3}}{2}-1\right)}\)

Từ đó ta tính được :

\(A=\log_{a^{\alpha}}a^{\frac{-\sqrt{3}}{3}\alpha}=\log_{a^{\alpha}}\left(a^{\alpha}\right)^{\frac{-\sqrt{3}}{3}}=\frac{-\sqrt{3}}{3}\) với \(\alpha=\frac{\sqrt{3}}{2}-1\)

a. \(\sqrt[4]{\sqrt{3}-1}\) và \(\sqrt[3]{\sqrt{3}-1}\)

Ta có : \(\begin{cases}\sqrt[4]{\sqrt{3}-1}=\left(\sqrt{3}-1\right)^{\frac{1}{4}};\sqrt[3]{\sqrt{3}-1}=\left(\sqrt{3}-1\right)^{\frac{1}{3}}\\0< \sqrt{3}-1< 1;\frac{1}{4}< \frac{1}{3}\end{cases}\)

             \(\Rightarrow\sqrt[4]{\sqrt{3}-1}>\left(\sqrt{3}-1\right)^{\frac{1}{4}}\)

b. \(\log_32\) và \(\log_23\)

Ta có : \(\log_32< \log_33=1=\log_22< \log_23\Rightarrow\log_32< \log_23\)

a. \(\log_23\) và \(\log_311\)

Ta có : \(\log_23< \log_24=4=\log_39< \log_311\Rightarrow\log_23< \log_211\)

b.\(\left(\frac{5}{7}\right)^{\frac{-\sqrt{5}}{2}}\) và 1

Ta có : \(\begin{cases}\frac{-\sqrt{5}}{2}< 0\\0< \frac{5}{7}< 1\end{cases}\)\(\Rightarrow\left(\frac{5}{7}\right)^{\frac{-\sqrt{5}}{2}}>\left(\frac{5}{7}\right)^0=1\)

a) \(4^{log^3_2}=\left(2^2\right)^{log^3_2}=\left(2^{log^3_2}\right)^2=3^2=9\).
b) \(27^{log^2_9}=\left(3^3\right)^{log^2_{3^2}}=3^{3.\dfrac{1}{2}.log^2_3}=\left(3^{log^2_3}\right)^{\dfrac{3}{2}}=2^{\dfrac{3}{2}}=\sqrt{8}\).
c) \(9^{log^2_{\sqrt{3}}}=9^{log^2_{9^{\dfrac{1}{4}}}}=9^{4.log^2_9}=\left(9^{log^2_9}\right)^4=2^4=16\).
d) \(4^{log^{27}_8}=2^{2.log^{27}_{2^3}}=2^{\dfrac{2}{3}.log^{27}_2}=\left(2^{log^{3^3}_2}\right)^{\dfrac{2}{3}}=\left(3^3\right)^{\dfrac{2}{3}}=3^2=9\).

Ta có : 

\(\begin{cases}a=\log_{27}5=\frac{\log_25}{\log_227}=\frac{\log_25}{3\log_23}=\frac{\log_25}{3c}\Rightarrow\log_25=3ac\\b=\log_87=\frac{\log_27}{\log_28}=\frac{\log_27}{3}\Rightarrow\log_27=3b\end{cases}\)

\(\Rightarrow J=\log_635=\frac{\log_235}{\log_26}=\frac{\log_25+\log_27}{1+\log_23}=\frac{3ac+3b}{1+c}\)

Ta có : \(D=\log_6\left(21,6\right)=\frac{\log_2\left(21,6\right)}{\log_26}=\frac{\log_2\frac{2^2.3^3}{5}}{\log_2\left(2.3\right)}=\frac{2+3\log_23-\log_25}{1+\log_23}=\frac{2+3a-b}{1+a}\)

Ta có : \(\log_25=\log_23.\log_35=ab\)

\(\Rightarrow I=\log_{140}63=\frac{\log_263}{\log_2140}=\frac{\log_2\left(3^2.7\right)}{\log_2\left(2^2.5.7\right)}=\frac{2\log_23+\log_27}{2+\log_25+\log_27}=\frac{2a+c}{2+ab+c}\)

Ta có \(a=\log_{25}7=\frac{\log_27}{\log_225}=\frac{\log_27}{2\log_25}=\frac{\log_27}{2b}\Rightarrow\log_27=2ab\)

\(\Rightarrow H=\log_{\sqrt[3]{5}}\frac{49}{8}=\frac{\log_2\frac{49}{8}}{\log_2\sqrt[3]{5}}=\frac{\log_2\frac{7^2}{2^2}}{\log_25^{\frac{1}{3}}}=\frac{2\log_27-3}{\frac{1}{3}\log_25}=\frac{12ab-9}{b}\)

Ta có : \(b=lg2=lg\left(\frac{10}{5}\right)=1-lg5\Rightarrow lg5=1-b\)

                                                       \(\Rightarrow G=\log_{125b}30=\frac{lg30}{lg125}=\frac{lg\left(3.10\right)}{lg\left(5^3\right)}=\frac{1+lg3}{3lg5}=\frac{1+a}{3\left(1-b\right)}\)