The functions f and g are defined by f : x ↦ e^x + 2, x ∈ ℝ g : x ↦ ln x, x > 0 (a) State the range of f - Edexcel - A-Level Maths Pure - Question 6 - 2012 - Paper 5

To find fg(x), we first compute g(x) = ln x. Now substituting into f, we have:

fg(x) = f(g(x)) = f(ln x) = e^{ ext{ln } x} + 2 = x + 2

Thus, fg(x) = x + 2.

Set f(2x + 3) to equal 6:

f(2x + 3) = e^{(2x + 3)} + 2 = 6.

Solving this gives:

e^{(2x + 3)} = 4

Taking natural log:

2x + 3 = ext{ln } 4

Thus, 2x = ext{ln } 4 - 3

x = rac{ ext{ln } 4 - 3}{2}.

To find the inverse function f^{-1}(y): Start with y = f(x) = e^x + 2.

Rearranging gives:

y - 2 = e^x

Taking the natural log:

x = ext{ln}(y - 2)

Thus, the inverse function is f^{-1}(y) = ext{ln}(y - 2) ext{ for } y > 2.

To sketch:

• The curve y = f(x) = e^x + 2 crosses the y-axis at (0, 3) because f(0) = e^0 + 2 = 3.
• The curve y = f^{-1}(x) = ext{ln}(x - 2) crosses the x-axis at (2, 0) since f^{-1}(2) = ext{ln}(0) is undefined, but it approaches this point. The curves are symmetric along the line y = x.