Author Topic: Math P1 s07  (Read 710 times)

Offline mz

  • Newbie
  • *
  • Posts: 31
  • Reputation: 63
Math P1 s07
« on: May 10, 2010, 02:56:30 pm »
can anybody please explain the concept behind question number 11, part ii?

Offline immortal

  • SF Geek
  • ****
  • Posts: 486
  • Reputation: 854
  • Gender: Male
Re: Math P1 s07
« Reply #1 on: May 10, 2010, 03:09:54 pm »
Find da inverse of f(x) dat is f-1(x)
Domain of f-1(x)=range of f(x) & vice-versa
Life is short...so live it to da fullest :)

nid404

  • Guest
Re: Math P1 s07
« Reply #2 on: May 10, 2010, 03:26:24 pm »
can anybody please explain the concept behind question number 11, part ii?

here u go


Let f-1(x) = y
i.e. f(y) = x

x= 6/ 2y+3

2y+3=6/x
2y= 6/x -3
y= (6-3x)/2

thus f-1(x)= (6-3x)/2
y >= 0 implies that 6-3x >= 0 i.e.
6 >= 3x  i.e.  x <= 2
Thus the domain of f-1(x) is 0 <=  x  <= 2


Offline mz

  • Newbie
  • *
  • Posts: 31
  • Reputation: 63
Re: Math P1 s07
« Reply #3 on: May 10, 2010, 03:40:08 pm »
thankyou so much both of you!!!!