Inverse Trig Problem (1 Viewer)

Ostentatious

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Q22. of Excerise 26(a) of 3U Fitzpatrick.

I'm having trouble finding the inverse function of f(x)=x2+2x, x>2

My working:

Let f(x) = y <--- just for simplicity
Interchange x's and y's:
x=y2+2y
y2=x-2y
y=(x-2y)1/2

STUCK. How can I eliminate the other y to return a function of y=-1+(1+x)1/2 ?

Any help appreciated :)
 

gurmies

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y = x^2 + 2x

= (x+1)^2 - 1

y + 1 = (x+1)^2

Interchanging x's and y's,

x + 1 = (y+1)^2

y + 1 = ±(x+1)^(1/2)

y = ±(x+1)^(1/2) - 1
 

Ostentatious

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Thanks! I never would have thought of completing the square there.
 

Pwnage101

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PS. this is an 'inverse' problem, NOT an 'inverse trig' problem

also could have used quadratic formula to find y in terms of x....
 

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