Inverse functions + finding area via volumes -- HELP NEEDED (1 Viewer)

blackops23 · Aug 4, 2011

Hi guys, here's the question:

Q. Consider the function f(x) = 0.5(arcsinx)

Find the area of the region bounded the curve, the x-axis and the line x=1

----------------------------
My solution (which is wrong)

http://imageshack.us/photo/my-images/810/inverse.jpg/#

(Zoom the browser in with ctrl + scroll if its too small)

The answer is (pi/4 - 1/2) u^2

Can someone please explain why I am wrong, and how to obtain the correct answer without integration by parts?

Help is much appreciated

Hermes1 · Aug 4, 2011

blackops23 said:
Hi guys, here's the question:

Q. Consider the function f(x) = 0.5(arcsinx)

Find the area of the region bounded the curve, the x-axis and the line x=1

----------------------------
My solution (which is wrong)

http://imageshack.us/photo/my-images/810/inverse.jpg/#

(Zoom the browser in with ctrl + scroll if its too small)

The answer is (pi/4 - 1/2) u^2

Can someone please explain why I am wrong, and how to obtain the correct answer without integration by parts?

Help is much appreciated

you could find the area between the curve and the y-axis. which would be easier to integrate. then take the area of the rectangle and minus the area you found with respect to the y-axis. this will give you the desired area.

tell me if u want a whole solution, i can write it up

Hermes1 · Aug 4, 2011

ok so first u draw the graph. at x = 1 y = pi/4

then find x as a function of y
ie x = sin 2y

integrate that with respect to y between 0 and pi/4
you should get a 1/2

then get the area of the rectangle ie pi/4 multipled by 1
which is just pi/4

now Area of rectangle - area with respect to y-axis = area with respect to x-axis. as can be seen on graph.
therefore Area = pi/4 -1/2

hscishard · Aug 4, 2011

Make a rectangle, then find the area bounded by curve and y axis
You tried that?

arj1 confirmed it works
oh wait, it's hermes1 now?

Hermes1 · Aug 4, 2011

hscishard said:
Make a rectangle, then find the area bounded by curve and y axis
You tried that?

arj1 confirmed it works
oh wait, it's hermes1 now?

yes its me arj1. i changed my username.

blackops23 · Aug 4, 2011

Hermes1 said:
you could find the area between the curve and the y-axis. which would be easier to integrate. then take the area of the rectangle and minus the area you found with respect to the y-axis. this will give you the desired area.

tell me if u want a whole solution, i can write it up

ahhhhhhhhhh ok thank you very very much I get it know

Drongoski · Aug 4, 2011

Hermes1 · Aug 4, 2011

Drongoski said:
$\int sin^{-1}xdx = xsin^{-1}x - \int \frac {-x}{\sqrt{1-x^2}} dx = xsin^{-1}x + \sqrt{(1-x^2)} + C$

$\therefore Area = \frac {1}{2} \int ^1 _0 sin^{-1}x dx = \left[ xsin^{-1}x + \sqrt{1-x^2} \right] ^1 _0 = \frac {\pi}{4} - \frac {1}{2}$

but he didnt want to use integration by parts and this is in the mx1 forum.

Drongoski · Aug 4, 2011

Didn't read that. So he doesn't want it done using IBP. Maybe I should delete my solution.

Hermes1 · Aug 4, 2011

Drongoski said:
Didn't read that. So he doesn't want it done using IBP. Maybe I should delete my solution.

no leave it up. bcuz sometimes in 3 unit ive seen them do it by parts. but they usually guide you through it in 3U.

Inverse functions + finding area via volumes -- HELP NEEDED (1 Viewer)

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