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Lösung 2.1:2b

Version vom 10:15, 11. Mär. 2009 von Tekbot (Diskussion | Beiträge)

There is no ready made standard formula for a primitive function to our integrand, but if we expand

2−1(x−2)(x+1)dx=

2−1(x2+x−2x−2)dx=

2−1(x2−x−2)dx

and write the last integral as

2−1(x2−x1−2x0)dx

we see that the integrand consists of three terms of the type xn and we can directly write down a primitive function,

2−1(x2−x1−2x0)dx=

3x3−2x2−2

2−1=323−222−2

12−

3(−1)3−2(−1)2−2

1(−1)

=38−24−4−

−31−21+2

=616−12−24+2+3−12=−627=−29.