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Easy Integration :( (1 Viewer)

tommykins

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shaon0 said:
What would have been wrong with my answer from lyounamu's p.o.v?
I don't know.

How did you approach this question anyhow ?
 

lyounamu

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shaon0 said:
What would have been wrong with my answer from lyounamu's p.o.v?
Sorry, I didn't know that you could approach the question in that way. But tell me how you approached it.
 

lolokay

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a way you could approach it, apart from using trig substitution would be to observe that the function is a semicircle, then find an expression for the definite integral (area of that segment the circle) from 0 to some value, b. Then just add a constant.
 
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Just.Snaz

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tommykins said:
Not entirely correct. It's also 25/2[sin2@/2 + @] , not 25/4.

You need to revert the @'s back into x's.
ah sorry yeah.. my mistake.. been doing english all last week.. literally..
 

shaon0

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lyounamu said:
Sorry, I didn't know that you could approach the question in that way. But tell me how you approached it.
Ok i did.
S sqrt(25 - x²) dx

Let x = 5sin(θ)
dx = 5cos(θ) dθ

= S sqrt(25 - [5sin(θ)]²) 5cos(θ) dθ
= 5 S sqrt(25 - 25sin²(θ) cos(θ) dθ
= 5 S sqrt(25(1 - sin²(θ) cos(θ) dθ
= 5 S 5sqrt(1 - sin²(θ) cos(θ) dθ
= 25 S sqrt(1 - sin²(θ) cos(θ) dθ
= 25 S sqrt(cos²(θ) cos(θ) dθ
= 25 S cos(θ)cos(θ) dθ
= 25 S cos²(θ) dθ
= 25 S (1 + cos(2θ)/2 dθ
= 25/2 S (1 + cos(2θ) dθ
= 25/2 (θ + sin(2θ)/2) + C
= 25/2 (θ + cos(θ)sin(θ)) + C

You know how x = 5sin(θ)
Then, θ = arcsin(x/5)

= 25/2 [arcsin(x/5) + cos(arcsin(x/5))sin(arcsin(x/5))] +C
= 25/2 [arcsin(x/5) + (x/5)cos(arcsin(x/5))] +C
= 25/2 [arcsin(x/5) + (x/5)sqrt[1 - (x/5)²]] +C
= 25/2 [arcsin(x/5) + (x/5)sqrt(1 - x²/25)] + C

....Yea that took me 20 minutes to type up and do. lol (back to physics)
So that was my working :)
btw, if your file is to big too put on after you scan it and compress it. how would you put it on?
PLUS, i didn't know if my answer was correct because i taught calculus to myself, so sorry if it is kind of wrong at the top.
 
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shaon0

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tacogym27101990 said:
wow you taught yourself how to do that?
impressive
mainly by looking at examples and reading up on concepts.
 

shaon0

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tommykins said:
Lol, he obviously does it for a response. Just ignore him, he's all talk.

shaon0 - great job, I thought you found out a new way, didn't know you used trig subs, awesome work nonetheless.
Thanks. Substitution is the easiest way but i kind of figured out another way.
Can you use integration by parts? since, (25-x^2)=(5-x)(5+x)
 

shaon0

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12o9 said:
Holy crap. That's pretty hectic. :).
Thanks...i kind of skipped doing all my maths homework ie. plane geometry, to learn calculus. I've finished volumes of revolution (or solids of revolution) now.
Can't think of whats next.
 

tommykins

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shaon0 said:
Thanks. Substitution is the easiest way but i kind of figured out another way.
Can you use integration by parts? since, (25-x^2)=(5-x)(5+x)
It'd be a huge hassle I think.

You need u = sqrt(25-x^2) u' = differentiate that.

then v' = 1, v = x and that just adds another x, making it more complex than required.
 
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shaon0 said:
Thanks. Substitution is the easiest way but i kind of figured out another way.
Can you use integration by parts? since, (25-x^2)=(5-x)(5+x)
no i dont think i.b.p would work here
but even if it did it would be really unneccesarry

what were you planning to do
let u=rt(5-x) and v'=rt(5+x)dx???
 

shaon0

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tacogym27101990 said:
no i dont think i.b.p would work here
but even if it did it would be really unneccesarry

what were you planning to do
let u=rt(5-x) and v'=rt(5+x)dx???
yeah, something like that.
 
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yeah its not very nice
just stick to the substitution
but im impressed that your teaching yourself four unit integration techiniques
 

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Pwnage101 said:
lol @ 2U ppl not knowin wat u 4U guys are doin, next ur gonna invade the general maths forums, where u wont be welcomed lmao
Haha, well that question was in our 2U past paper (we have trials tomorrow), and we were like, OMGWTF - haven't learnt how to integrate that yet. :p
 

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