Solution 2.3:1c
From Förberedande kurs i matematik 1
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As always when completing the square, we focus on the quadratic and linear terms | As always when completing the square, we focus on the quadratic and linear terms | ||
| - | <math>2x-x^{2}</math> | + | <math>2x-x^{2}</math>, which we also can write as |
| - | , which we also can write as | + | |
<math>-\left( x^{2}-2x \right)</math> | <math>-\left( x^{2}-2x \right)</math> | ||
. If we neglect the minus sign, we can complete square of the expression | . If we neglect the minus sign, we can complete square of the expression | ||
Revision as of 11:20, 12 September 2008
As always when completing the square, we focus on the quadratic and linear terms \displaystyle 2x-x^{2}, which we also can write as \displaystyle -\left( x^{2}-2x \right) . If we neglect the minus sign, we can complete square of the expression \displaystyle 2x-x^{2} by using the formula
\displaystyle x^{2}-ax=\left( x-\frac{a}{2} \right)^{2}-\left( \frac{a}{2} \right)^{2}
and we obtain
\displaystyle x^{2}-2x=\left( x-\frac{2}{2} \right)^{2}-\left( \frac{2}{2} \right)^{2}=\left( x-1 \right)^{2}-1
This means that
\displaystyle \begin{align}
& 5+2x-x^{2}=5-\left( x^{2}-2x \right)=5-\left( \left( x-1 \right)^{2}-1 \right) \\
& \\
& =5-\left( x-1 \right)^{2}+1=6-\left( x-1 \right)^{2} \\
& \\
\end{align}
A quick check shows that we have completed the square correctly.:
\displaystyle \begin{align}
& 6-\left( x-1 \right)^{2}=6-\left( x^{2}-2x+1 \right)=6-x^{2}+2x-1 \\
& \\
& =5+2x-x^{2} \\
& \\
\end{align}
