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Reduction question (1 Viewer)
- Thread starter cutemouse
- Start date
let x=cos@
dx=-sin@d@
x=0, @=pi/2
x=1, @=0
[maths]\int_{0}^{1}\frac{x^7dx}{\sqrt{1-x^2}}[/maths]
[maths]\int_{\pi /2}^{0}\frac{\cos^7\Theta (-\sin\Theta d\Theta )}{sin\Theta }[/maths]
[maths]\int_{0}^{\pi /2}\cos^7\Theta d\Theta[/maths]
then use the reduction formula from the previous part.
dx=-sin@d@
x=0, @=pi/2
x=1, @=0
[maths]\int_{0}^{1}\frac{x^7dx}{\sqrt{1-x^2}}[/maths]
[maths]\int_{\pi /2}^{0}\frac{\cos^7\Theta (-\sin\Theta d\Theta )}{sin\Theta }[/maths]
[maths]\int_{0}^{\pi /2}\cos^7\Theta d\Theta[/maths]
then use the reduction formula from the previous part.
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That's easy!Hi, I got one more question. Could someone please help me on this one? Thanks
Hi again,
I have another question, lol.. It's a part of the one I previously posted.
Hence find ∫sec3x dx <-- I can do it until I have to find ∫secx dx, how would I do that?
Thanks for your help so far ppl!
I have another question, lol.. It's a part of the one I previously posted.
Hence find ∫sec3x dx <-- I can do it until I have to find ∫secx dx, how would I do that?
Thanks for your help so far ppl!
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[maths]\int \sec\Theta d\Theta [/maths]
[maths]=\int \frac{\sec\Theta (\sec\Theta +\tan\Theta )}{\sec\Theta +\tan\Theta }d\Theta [/maths]
[maths]=\ln(\sec\Theta +\tan\Theta )[/maths] as the derivative of demoninator is the numberator.
Alternatively, you could just use the t-formula.
[maths]=\int \frac{\sec\Theta (\sec\Theta +\tan\Theta )}{\sec\Theta +\tan\Theta }d\Theta [/maths]
[maths]=\ln(\sec\Theta +\tan\Theta )[/maths] as the derivative of demoninator is the numberator.
Alternatively, you could just use the t-formula.
Hi, thanks for your help... Just wondering though, how am I supposed to know this? lol... is there a 'list' of integrals like these that I should know and be able to manipulate?
Thanks
let t=tan@/2
dt/d@=(1/2)sec^2(@/2)=(1/2)(1+t^2)
d@=2dt/(1+t^2)
[maths]\int \sec\Theta d\Theta [/maths]
[maths]\int (\frac{1+t^2}{1-t^2})(\frac{2dt}{1+t^2})[/maths]
[maths]\int \frac{2dt}{(1-t)(1+t)}[/maths]
Then procede with partial fractions.
dt/d@=(1/2)sec^2(@/2)=(1/2)(1+t^2)
d@=2dt/(1+t^2)
[maths]\int \sec\Theta d\Theta [/maths]
[maths]\int (\frac{1+t^2}{1-t^2})(\frac{2dt}{1+t^2})[/maths]
[maths]\int \frac{2dt}{(1-t)(1+t)}[/maths]
Then procede with partial fractions.
You dont really need it in that form but if you want, you can do this:
[maths]\int (\frac{1}{1-t}+\frac{1}{1+t})dt [/maths]
[maths]=\ln(\frac{1+t}{1-t})[/maths]
[maths]=\ln[\frac{(1+t)^2}{1-t^2}][/maths]
[maths]=\ln(\frac{1+t^2}{1-t^2}+\frac{2t}{1-t^2})[/maths]
[maths]=\ln(\sec\Theta +\tan\Theta )[/maths]
However, you cant always expect the result to turn out neatly like this case, since in integration, the result may differ by a constant.
By the way, nice method lolokay.
[maths]\int (\frac{1}{1-t}+\frac{1}{1+t})dt [/maths]
[maths]=\ln(\frac{1+t}{1-t})[/maths]
[maths]=\ln[\frac{(1+t)^2}{1-t^2}][/maths]
[maths]=\ln(\frac{1+t^2}{1-t^2}+\frac{2t}{1-t^2})[/maths]
[maths]=\ln(\sec\Theta +\tan\Theta )[/maths]
However, you cant always expect the result to turn out neatly like this case, since in integration, the result may differ by a constant.
By the way, nice method lolokay.
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Hi, Sorry but I have more questions...
1. If Im, n=∫sinmx cosnx dx, prove that
Im, n=∫sinm-1x (d/dx)[(-cosn+1x)/(n+1)] dx = [-sinm-1x cosn+1x]/(n+1) + (m-1)/(n+1)[Im-2,n - Im,n]
Hence show that Im, n = [-sinm-1x cosn+1x]/(n+1) + (m-1)/(n+1)*Im-2,n
2. If Un=∫0pi/2 θsinnθdθ, n>1 prove that:
Un=(n-1)/n * Un-2 + 1/n2
3. If Un=∫(cos2nx)/sinx dx, show that Un=[2cos(2n-1)x/(2n-1)]+Un-1
Thanks alot for your help!
1. If Im, n=∫sinmx cosnx dx, prove that
Im, n=∫sinm-1x (d/dx)[(-cosn+1x)/(n+1)] dx = [-sinm-1x cosn+1x]/(n+1) + (m-1)/(n+1)[Im-2,n - Im,n]
Hence show that Im, n = [-sinm-1x cosn+1x]/(n+1) + (m-1)/(n+1)*Im-2,n
2. If Un=∫0pi/2 θsinnθdθ, n>1 prove that:
Un=(n-1)/n * Un-2 + 1/n2
3. If Un=∫(cos2nx)/sinx dx, show that Un=[2cos(2n-1)x/(2n-1)]+Un-1
Thanks alot for your help!
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I dont like working with U_n and @ so i changed it to I_n and x. Anyway, here it is:
[maths]I_n=\int_{0}^{\pi/2}x\sin^nxdx\\=\int_{0}^{\pi/2}\sin^{n-1}x(x\sin x)dx\\=\int_{0}^{\pi/2}\sin^{n-1}x\frac{\mathrm{d} }{\mathrm{d} x}(-x\cos x+\sin x)dx\\=[-x\cos x\sin^{n-1}x+\sin^nx]-(n-1)\int_{0}^{\pi/2}(-x\cos x+\sin x)(\sin^{n-2}x\cos x)dx\\=1+(n-1)\int_{0}^{\pi/2}(x\sin^{n-2}x(1-\sin^2x)-\sin^{m-1}x\cos x)dx\\=1+(n-1)[I_{n-2}-I_n]-(n-1)\int_{0}^{\pi/2}\sin^{n-1}x\cos xdx\\=1+(n-1)[I_{n-2}-I_n]-\frac{n-1}{n}[\sin^nx]^{\pi/2}_0[/maths]
[maths]I_n(n-1+1)=1+(n-1)I_{n-2}-\frac{n-1}{n}\\I_n=\frac{1}{n}+\frac{n-1}{n}I_{n-2}-\frac{n-1}{n^2}\\=\frac{n-1}{n}I_{n-2}+\frac{1}{n^2}[/maths]
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