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SoulSearcher
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I take it you don't know integration by parts? Well, if I remember correctly, the indefinite integral of sin-1x is xsin-1x + sqrt(1-x2) + constant, usually they would give a sort of a lead in question to help you find the integral of arcsin x, since I dont think that it is possible to integrate it directly using extension 1 methods.
the-1-n-only-me
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last time i heard 3u people didnt have to integrate inverse trig.
but if you're talking about area under a inverse trig curve. just convert it normal trig and change the limits.
but if you're talking about area under a inverse trig curve. just convert it normal trig and change the limits.
JasonNg1025
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yeah integration by parts should work
let's try
(I use arcsin(x) for inverse sine)
I = int(arcsin(x)dx)
u = arcsin(x), dv = dx.
du = 1/(sqrt(1-x^2)) (dx), v = x
I = xarcsin(x) - int(x/(sqrt(1-x^2)))
use substitution u = 1-x^2
if you multiply the integral by -1/2 you get a -2x up the top
and you just get -int(1/sqrt(u)du) which should be easy enough
hope it's not too hard to read
(this is if you havn't managed to do it yet
)
and I thought integration by parts was in the extension 2 course... so if you just do extension 1 I'd leave it
and oh wow you actually remembered it?
let's try
(I use arcsin(x) for inverse sine)
I = int(arcsin(x)dx)
u = arcsin(x), dv = dx.
du = 1/(sqrt(1-x^2)) (dx), v = x
I = xarcsin(x) - int(x/(sqrt(1-x^2)))
use substitution u = 1-x^2
if you multiply the integral by -1/2 you get a -2x up the top
and you just get -int(1/sqrt(u)du) which should be easy enough
hope it's not too hard to read
(this is if you havn't managed to do it yet
)and I thought integration by parts was in the extension 2 course... so if you just do extension 1 I'd leave it
and oh wow you actually remembered it?
SoulSearcher
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If that was the case, it'd be a lot easier to do that than memorise the integral of arcsin x.the-1-n-only-me said:
After doing the question a few times it just stuck in my head.JasonNg1025 said:and oh wow you actually remembered it?
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Chinmoku03
Ippen, Shin de Miru?
IIRC, an inverse sine curve is just a sine curve about the y axis, so you can use the V = pi x Sx2dy, where S is the integration symbol, cos I dunno where to find one >.>;
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