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 8 - 2012 - Paper 5

We begin by expressing fg(x) as f(g(x)). Using g(x) = ln x, we substitute:

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

Thus, the solution in its simplest form is fg(x) = x + 2.

To find x, we start with the equation:

f(2x + 3) = 6.

Replacing f with its definition:

e^{2x + 3} + 2 = 6.

Subtracting 2 from both sides:

e^{2x + 3} = 4.

Taking the natural logarithm of both sides, we have:

2x + 3 = ext{ln }4.

Now, isolating x:

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

To find the inverse function f^{-1}, we first let y = f(x):

y = e^x + 2.

Next, we solve for x:

e^x = y - 2.\

deriving x gives:

x = ext{ln}(y - 2).

Hence, the inverse function is: f^{-1}(y) = ext{ln}(y - 2).

The domain of f^{-1} is the range of f, which is y > 2.

When sketching the graphs, we highlight the key features of both curves:

1. For y = f(x) (which is increasing and starts at (0, 3)):

   • It crosses the y-axis at (0, 3).

2. For y = f^{-1}(x) (which is also increasing):

   • It crosses the x-axis when y = 0, so at the point (2, 0).

Both curves will intersect at the line y = x, indicating symmetry. Ensure the curvature reflects exponential growth for y = f(x) and logarithmic behavior for y = f^{-1}(x).