How do you find #(f^-1)'(a)# if #f(x)= x/sqrt{x-3}# and a = 4?

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Answer 1 · 2016-10-06T08:19:18

The function is not bijective, So, the bi-valued inverse is not differentiable. See the explanation..

y = f(x) is real for x >=3.

#y'=1/(x-3)-x/(2(x-3)^(3/2))=(x-6)/(2(x-3)^(3/2))#.

Inversely, bi-valued #x=(y (y+-sqrt(y^2-12)))/2#, with #|y|>=2sqrt3#

However, assigning y = 4, x = 4 or 12.for the two inverse forms.

Both are admissible....

The inverse is not unique for the given y = a = 4. The inverse is not

differentiable.