${\log }_{a}c=b$   wtedy i tylko wtedy, gdy $a^b=c$ , ( $c>0$ , $a>0$ , $a\ne 1$ ).

 

${\log }_a\left(x\cdot y\right)={\log }_{a}x+{\log }_{a}y$  

${\log }_a\left(\frac{x}{y}\right)={\log }_{a}x-{\log }_{a}y$  

$a)$   $2\log x+5\log y-\log 8=\log x^2+\log y^5-\log 8=\log \left(x^2\cdot y^5\right)-\log 8=\log \left(\frac{x^2{y}^5}{8}\right)$  

Założenia:

$x>0$  i $y>0$ . 

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$b)$   ${\log }_{2}x-{\log }_{2}y-{\log }_{5}25={\log }_2\left(\frac{x}{y}\right)-{\log }_5{5}^2={\log }_2\left(\frac{x}{y}\right)-2=$

$={\log }_2\left(\frac{x}{y}\right)-{\log }_2{2}^2={\log }_2\left(\frac{x}{y}\right)-{\log }_{2}4={\log }_2\left(\frac{\frac{x}{y}}{4}\right)={\log }_2\left(\frac{x}{y}\cdot \frac{1}{4}\right)=$

$={\log }_2\left(\frac{x}{4y}\right)$    

Założenia:

$x>0$  i $y>0$ .

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$c)$   $2{\log }_3\left(x+1\right)-{\log }_{3}y-{\log }_{2}8={\log }_3{\left(x+1\right)}^2-{\log }_{3}y-{\log }_2{2}^3=$  

$={\log }_3\left(\frac{{\left(x+1\right)}^2}{y}\right)-3={\log }_3\left(\frac{{\left(x+1\right)}^2}{y}\right)-{\log }_3{3}^3=$  

$={\log }_3\left(\frac{{\left(x+1\right)}^2}{y}\right)-{\log }_{3}27={\log }_3\left(\frac{\frac{{\left(x+1\right)}^2}{y}}{27}\right)=$

$={\log }_3\left(\frac{{\left(x+1\right)}^2}{y}\cdot \frac{1}{27}\right)={\log }_3\left(\frac{{\left(x+1\right)}^2}{27y}\right)$   

Założenia:

$x+1>0\Rightarrow x>-1$

$y>0$ .

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$d)$   $\frac{1}{2}+\log x-\log 8=\frac{1}{2}+{\log }_{10}x-{\log }_{10}8={\log }_{10}{10}^{\frac{1}{2}}+{\log }_{10}x-{\log }_{10}8=$  

$={\log }_{10}\sqrt{10}+{\log }_{10}x-{\log }_{10}8={\log }_{10}\left(\sqrt{10}\cdot x\right)-{\log }_{10}8=$

$={\log }_{10}\left(\frac{\sqrt{10}x}{8}\right)={\log }_{10}\left(\frac{x\sqrt{10}}{8}\right)$  

Założenia:

$x>0$ .

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$e)$   $\frac{2}{5}-{\log }_2\left(x-\sqrt{2}\right)+{\log }_2\sqrt[5]{8}={\log }_2{2}^{\frac{2}{5}}-{\log }_2\left(x-\sqrt{2}\right)+{\log }_2{8}^{\frac{1}{5}}=$  

$={\log }_2\left(\frac{2^{\frac{2}{5}}}{x-\sqrt{2}}\right)+{\log }_2{\left(2^3\right)}^{\frac{1}{5}}={\log }_2\left(\frac{2^{\frac{2}{5}}}{x-\sqrt{2}}\right)+{\log }_2{2}^{\frac{3}{5}}=$

$={\log }_2\left(\frac{2^{\frac{2}{5}}}{x-\sqrt{2}}\cdot 2^{\frac{3}{5}}\right)={\log }_2\left(\frac{2^{\frac{2}{5}}\cdot 2^{\frac{3}{5}}}{x-\sqrt{2}}\right)={\log }_2\left(\frac{2}{x-\sqrt{2}}\right)$   

Założenia:

$x-\sqrt{2}>0\Rightarrow x>\sqrt{2}$ .

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$f)$   $\log \left(x+y\right)+\log \left(x-y\right)=\log \left(\left(x+y\right)\cdot \left(x-y\right)\right)=\log \left(x^2-y^2\right)$  

Założenia:

$x+y>0$  i $x-y>0$ .