Please help.
The term I have to integrate is: e3xcos(6x)
∫e3xcos(6x)dx uv - ∫ vdu
u = e3x du = 3e3x
dv = cos(6x) v = sin6x/6
Therefore:
e3x (sin6x/6) - ∫ (sin6x/6)3e3x dx
↓ Simplify
e3x sin6x/6 - ∫ (sin6xe3x/2 dx
↓ pull out the 1/2
e3x sin6x/6 - 1/2∫ sin6xe3xdx
↓ integrate again.
u = e3x du = 3e3x
dv = sin6x v = - cos6x/6
-1/2 (e3x - cos6x/6 - ∫ - cos6x/6 (3e3x)
↓ double negatives
-1/2 (e3x - cos6x/6 + ∫ cos6x/6 (3e3x)
↓ Simplify
-1/2 (e3x - cos6x/6 + ∫ cos6x (e3x)/2
Okay. I get stuck here because it seems like I'm just doing an endless cycle of u v - ∫ v u'
So I peeked at some online solutions and it ended up being : e3x(2sin(6x) + cos (6x)) / 15
I can't for the life of me figure out how they arrived at that answer. I am pretty sure I am doing this right any help??
The term I have to integrate is: e3xcos(6x)
∫e3xcos(6x)dx uv - ∫ vdu
u = e3x du = 3e3x
dv = cos(6x) v = sin6x/6
Therefore:
e3x (sin6x/6) - ∫ (sin6x/6)3e3x dx
↓ Simplify
e3x sin6x/6 - ∫ (sin6xe3x/2 dx
↓ pull out the 1/2
e3x sin6x/6 - 1/2∫ sin6xe3xdx
↓ integrate again.
u = e3x du = 3e3x dv = sin6x v = - cos6x/6
-1/2 (e3x - cos6x/6 - ∫ - cos6x/6 (3e3x)
↓ double negatives
-1/2 (e3x - cos6x/6 + ∫ cos6x/6 (3e3x)
↓ Simplify
-1/2 (e3x - cos6x/6 + ∫ cos6x (e3x)/2
Okay. I get stuck here because it seems like I'm just doing an endless cycle of u v - ∫ v u'
So I peeked at some online solutions and it ended up being : e3x(2sin(6x) + cos (6x)) / 15
I can't for the life of me figure out how they arrived at that answer. I am pretty sure I am doing this right any help??