Ответ:
[tex]1)\ -\frac{1}{b^2}\\\\2)\ -\frac{b+2a}{2a}[/tex]
Объяснение:
[tex]1)\\\\\frac{b^7-b^5}{b^7-b^9}=\frac{b^5(b^2-1)}{b^7(1-b^2)}}=\frac{b^2-1}{-b^2(b^2-2)}}=-\frac{1}{b^2}\\\\2)\\\\\frac{b^2-4a^2}{4a^2-2ab}=-\frac{(b-2a)(b+2a)}{2a(b-2a)}=-\frac{b+2a}{2a}[/tex]
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Ответ:
[tex]1)\ -\frac{1}{b^2}\\\\2)\ -\frac{b+2a}{2a}[/tex]
Объяснение:
[tex]1)\\\\\frac{b^7-b^5}{b^7-b^9}=\frac{b^5(b^2-1)}{b^7(1-b^2)}}=\frac{b^2-1}{-b^2(b^2-2)}}=-\frac{1}{b^2}\\\\2)\\\\\frac{b^2-4a^2}{4a^2-2ab}=-\frac{(b-2a)(b+2a)}{2a(b-2a)}=-\frac{b+2a}{2a}[/tex]