Definite Integral of Trig Function

Jimbo57

1. The problem statement, all variables and given/known data
∫sin2xcosx x=0,pi/4

2. Relevant equations

3. The attempt at a solution
By double angle magic:
∫sin2xcosx=
∫2sinxcos^2x
u=cosx
du=-sinxdx
-2∫u^2
-2(u^3)/3
-2cos^3x/3
= -1/(3√2) for x=pi/4

How does that look folks?

tiny-tim

Hi Jimbo57!

(have a pi: π and try using the X² button just above the Reply box

)

Fine down to …

Quote by Jimbo57

-2cos^3x/3
= -1/(3√2) for x=pi/4

… what about for x = 0 ?

Jimbo57

Quote by tiny-tim

Hi Jimbo57!

(have a pi: π and try using the X² button just above the Reply box

)

Fine down to …

… what about for x = 0 ?

Lol woops, I'm used to ignoring the 0 with non trig integrals.

New answer:

(-1+2√2)/3√2

Thanks for the help Tiny-Tim! (and the pi)

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Jimbo57	Definite Integral of Trig Function 1. The problem statement, all variables and given/known data ∫sin2xcosx x=0,pi/4 2. Relevant equations 3. The attempt at a solution By double angle magic: ∫sin2xcosx= ∫2sinxcos^2x u=cosx du=-sinxdx -2∫u^2 -2(u^3)/3 -2cos^3x/3 = -1/(3√2) for x=pi/4 How does that look folks?