Methods of integration~ (1 Viewer)

shinji

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hey, just a lil q on methods of integration.
find the integral of sin2x cos2x dx.

would u make cos2x = 1-sin2x ?

so it becomes integral of {sin2(1-sin2x)}
=> sin2x - sin4x
where u let u = sin2x ? lol
 

Rax

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Pardon my lack of mathematical ability, but where does that hint bust in, unless your converting them using that cos one.

Cant Remember
 
P

pLuvia

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int.sin2xcos2xdx
=int.(sinxcosx)2dx
=1/4int.(sin2x)2dx
=1/4int.sin22xdx
=1/4int.[(1-cos4x)/2]dx
=1/8int.(1-cos4x)dx
=1/8[x-1/4sin4x]dx+C
=x/8-1/32sin4x+C
 

Rax

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Ah true........Der *smacks head*, And thats why I am not looking too forward to the trial
 

shinji

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if thre's anyone on atm, can you tell me how pluvia got from

=1/4int.sin22xdx
to
=1/4int.[(1-cos4x)/2]dx
?
thx

[edit]: nevermind, i got it. hahah
 

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