R1 2012 vår LØSNING: Forskjell mellom sideversjoner
Fra Matematikk.net
| Linje 25: | Linje 25: | ||
<tex>x^3-3x = x(x^2-3)= x(x- \sqrt 3 )(x + \sqrt 3) \\x = - \sqrt3 \quad \vee \quad x = 0 \quad \vee \quad x= \sqrt3</tex> | <tex>x^3-3x = x(x^2-3)= x(x- \sqrt 3 )(x + \sqrt 3) \\x = - \sqrt3 \quad \vee \quad x = 0 \quad \vee \quad x= \sqrt3</tex> | ||
==== 2) ==== | ==== 2) ==== | ||
<tex>f'(x) = 3x^2-3 \\f'(x) = 0 \\ 3(x^2-1) = 0 \\ x = -1 \quad \vee \quad x = 1 \\ f(-1)= 2 \quad \vee \quad f(1) = -2</tex><p></p> | |||
Toppunkt (-1,2)<p></p> | |||
Bunnpunkt (1,-2) | |||
==== 3) ==== | ==== 3) ==== | ||
Sideversjonen fra 5. jun. 2012 kl. 11:25
DEL EN
Oppgave 1:
a)
1)
<tex>f(x) = 5x^3+x-4 \\ f'(x) = 3 \cdot 5x^2 + 1 \\ f'(x) = 15x^2 + 1 </tex>
2)
<tex>g(x) = 5e^{3x} \\ u = 3x \wedge u' = 3 \\ g'(x) = 5e^u \cdot u' \\ g'(x) = 15e^{3x}</tex>
b)
<tex> 2ln(\frac{a^2}{b}) + ln (a \cdot b) - 3ln a = \\ 2ln a^2 - 2ln b + ln a + lnb - 3 lna = \\4ln a - 2ln b + ln a + lnb - 3 lna = \\ 2lna - lnb </tex>
c)
<tex> f(x)= x^3-3x</tex>
1)
Nullpunkter:
<tex>x^3-3x = x(x^2-3)= x(x- \sqrt 3 )(x + \sqrt 3) \\x = - \sqrt3 \quad \vee \quad x = 0 \quad \vee \quad x= \sqrt3</tex>
2)
<tex>f'(x) = 3x^2-3 \\f'(x) = 0 \\ 3(x^2-1) = 0 \\ x = -1 \quad \vee \quad x = 1 \\ f(-1)= 2 \quad \vee \quad f(1) = -2</tex>
Toppunkt (-1,2)
Bunnpunkt (1,-2)
3)
