Processing Math: Done
Lösung 1.2:1c
Aus Online Mathematik Brückenkurs 2
(Unterschied zwischen Versionen)
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| - | {{ | + | The expression is a quotient of two polynomials, |
| - | < | + | <math>x^{2}+1</math> |
| - | {{ | + | and |
| + | <math>x+1</math>, and we therefore use the quotient rule for differentiation: | ||
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| + | <math>\begin{align} | ||
| + | & \left( \frac{x^{2}+1}{x+1} \right)^{\prime }=\frac{\left( x^{2}+1 \right)^{\prime }\centerdot \left( x+1 \right)-\left( x^{2}+1 \right)\centerdot \left( x+1 \right)^{\prime }}{\left( x+1 \right)^{2}} \\ | ||
| + | & \\ | ||
| + | & =\frac{2x\centerdot \left( x+1 \right)-\left( x^{2}+1 \right)\centerdot 1}{\left( x+1 \right)^{2}} \\ | ||
| + | & \\ | ||
| + | & =\frac{2x^{2}+2x-x^{2}-1}{\left( x+1 \right)^{2}}=\frac{x^{2}+2x-1}{\left( x+1 \right)^{2}} \\ | ||
| + | \end{align}</math> | ||
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| + | NOTE: it is possible to rewrite the numerator by completing the square, | ||
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| + | <math>x^{2}+2x-1=\left( x+1 \right)^{2}-1^{2}-1=\left( x+1 \right)^{2}-2</math> | ||
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| + | and then the answer can be written as | ||
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| + | <math>\frac{x^{2}+2x-1}{\left( x+1 \right)^{2}}=\frac{\left( x+1 \right)^{2}-2}{\left( x+1 \right)^{2}}=1-\frac{2}{\left( x+1 \right)^{2}}</math> | ||
Version vom 15:06, 12. Sep. 2008
The expression is a quotient of two polynomials,
x+1x2+1
=
x+1
2
x2+1
x+1−x2+1x+1=x+122xx+1−x2+11=x+122x2+2x−x2−1=x+12x2+2x−1
NOTE: it is possible to rewrite the numerator by completing the square,
x+12−12−1=x+12−2
and then the answer can be written as
x+12x2+2x−1=x+12x+12−2=1−2x+12
