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Integration of trig functions (1 Viewer)

lacklustre

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Alright guys, I'm in need of a little help with this one:

Integration of: sin3(2x)dx

Here's what I've done:

(the above integration) = Int. sin2(2x).sin(2x)dx
= Int. sin2x(1-cos2(2x))
= Int. sin2x - sin2x.cos22x



I've not a clue where to proceed from there.

(p.s. how do you do the intergration sign)
 

Slidey

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sin2x is the derivative of cos2x, so use chain rule. Or the reverse of it (substitution).

use: u=cos(2x)
du=-2sin(2x) dx
 

Mark576

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∫sin3(2x)dx
Let u=cos(2x)=>du/dx=-2sin(2x)=>dx=-du/2sin(2x) [using Slidey's substitution]
I = -1/2∫sin2(2x)du
Using sin2(2x) = 1 - cos2(2x);
I = -1/2∫1-cos2(2x)du = -1/2∫1-u2du = -1/2(u - u3/3) = -1/2[cos(2x) - cos3(2x)/3] + c
 

lacklustre

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I'm in another sticky situation with:

Int. sin4x dx

Do I sub in sin2x = (1-cos2x)/2 ?
 

cwag

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yea...you could do that....

int: sin2xsin2x
= 1/4(1-cos 2x)2
=1/4(1-2cos2x + 1/2(1+cos4x))
=1/4(1- 2cos 2x + 1/2 + (1/2)cos4x
=3/8 - (1/2)cos2x + (1/8)cos4x

integral becomes,
3x/8 - (1/4)sin 2x + (1/32)sin 4x + C
 

cwag

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lacklustre said:
Is there another way? and is it faster?

hmm...i dunno...that seems to me like the easiest way...sorry if i sounded derogatory...i was just thinking
 

lacklustre

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Stuck on a few more: (but most of the other types I am great with)

a) Int. (between 0 ---> 1/2) sqrt.(1-x2) dx, by letting x = sinө

b) Int. (between 0 ---> 1) sqrt.(x/(1-x)) dx, letting x = sin2ө

cheers


 

lacklustre

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If you don't wish to do the whole question could anybody at least tell me where to go?
 
P

pLuvia

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a. Let x=sin@
dx=cos@ d@
Then when x=0, @=0
when x=1/2, @=pi/6

int. sqrt(1-sin2@) cos@ d@
=int. sqrt(cos2@) cos@ d@
=int. cos2@ d@
=int. (cos2@+1)/2 d@
=1/2[(sin2@)/2+@]
Shove in the limits then you get your answer

b. Let x=sin2@
dx=2sin@cos@ d@
When x=0, @=0
when x=1, @=pi/2

int. sqrt[(sin2@)/(1-sin2@)] 2sin@cos@ d@
=int. sin@/cos@* 2sin@cos@ d@
=int. 2sin2@ d@
=int. (cos2@-1)/2 d@

then do the same and you get your answer
 

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