MedVision ad

Inverse Functions -_- (1 Viewer)

scardizzle

Salve!
Joined
Aug 29, 2008
Messages
166
Location
Rwanda
Gender
Male
HSC
2010
This Q comes from the 1996 HSC paper

Consider the function f(x) = 1/4 [(x-1)^2 + 7]

Rigmarole:

(i)sketch the parabola

(ii) what is the largest domain containing x = 3 that has an inverse function?

(iii)sketch y = f^-1(x)

Now here's what i dont understand:

(iv) Let a be a real number not in the domain found in part (ii). Find f^-1(f(a))

answers say 2-a

any help would be much appreciated
 

yibbon

Member
Joined
May 2, 2008
Messages
35
Gender
Undisclosed
HSC
N/A
This Q comes from the 1996 HSC paper

Consider the function f(x) = 1/4 [(x-1)^2 + 7]

Rigmarole:

(i)sketch the parabola

(ii) what is the largest domain containing x = 3 that has an inverse function?

(iii)sketch y = f^-1(x)

Now here's what i dont understand:

(iv) Let a be a real number not in the domain found in part (ii). Find f^-1(f(a))

answers say 2-a

any help would be much appreciated
To solve you find f^-1(x) which is y = 1-root(4x-7), then sub f(a) into the x value there (1/4 and 4 cross out in the process):

f(a) = [(a-1)^2]/4 + 7

f^-1(f(a)) = 1-root(-7+7+(a-1)^2)
f^-1(f(a)) = 1-(a-1)
f^-1(f(a)) = 2-a
 

Aquawhite

Retiring
Joined
Jul 14, 2008
Messages
4,946
Location
Gold Coast
Gender
Male
HSC
2010
Uni Grad
2013
Above post seems a good solve...

This question would be worth a maximum of 2 marks in the exam... I'd say 1. Don't panic too much. lol
 

oly1991

Member
Joined
Nov 20, 2008
Messages
411
Location
Sydney
Gender
Male
HSC
2009
To solve you find f^-1(x) which is y = 1-root(4x-7), then sub f(a) into the x value there (1/4 and 4 cross out in the process):

f(a) = [(a-1)^2]/4 + 7

f^-1(f(a)) = 1-root(-7+7+(a-1)^2)
f^-1(f(a)) = 1-(a-1)
f^-1(f(a)) = 2-a
lol i kept doing this and i kept getting just (-a) and i could not see were i went wrong.....i know realise that i didnt put the (a-1) in brackets in the 2nd last step haha silly me.
 

scardizzle

Salve!
Joined
Aug 29, 2008
Messages
166
Location
Rwanda
Gender
Male
HSC
2010
To solve you find f^-1(x) which is y = 1-root(4x-7), then sub f(a) into the x value there (1/4 and 4 cross out in the process):

f(a) = [(a-1)^2]/4 + 7

f^-1(f(a)) = 1-root(-7+7+(a-1)^2)
f^-1(f(a)) = 1-(a-1)
f^-1(f(a)) = 2-a
isn't the inverse function y = 1 + root(4x - 7) ? why do you take the negative root?

Above post seems a good solve...

This question would be worth a maximum of 2 marks in the exam... I'd say 1. Don't panic too much. lol
I was afraid i was missing some important formula or something the solutions say as the first step of working :
If a<1 then f(a) = f(1+(1-a)) = f(2-a)
since x = 1 is the axis of symmetry


anyone care to enlighten me?

EDIT:
oh i think i get it now since its a parabola, a which lies outside the domain has a y value inside the range since its an even function anyone care to confirm?
 
Last edited:

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top