g(x) = e^x + x - 6 a) Show that the equation g(x) = 0 can be written as x = ln(6 - x) + 1, x < 6 The root of g(x) = 0 is a - Edexcel - A-Level Maths Pure - Question 24 - 2013 - Paper 1

Using the iterative formula.

1. Start with x_0 = 2: $x_1 = ext{ln}(6 - x_0) + 1 = ext{ln}(6 - 2) + 1 = ext{ln}(4) + 1 \\ = 2.3863$

2. Now using x_1 to find x_2: $x_2 = ext{ln}(6 - x_1) + 1 = ext{ln}(6 - 2.3863) + 1 = ext{ln}(3.6137) + 1 \\ = 2.2847$

3. Finally, using x_2 to find x_3: $x_3 = ext{ln}(6 - x_2) + 1 = ext{ln}(6 - 2.2847) + 1 = ext{ln}(3.7153) + 1 \\ = 2.3125$

Thus, values obtained are:

• x_1 = 2.3863
• x_2 = 2.2847
• x_3 = 2.3125

To show that a = 2.307, we can choose the interval [2.3065, 2.3075].

Calculating g(x) at the endpoints:

• For x = 2.3065: $g(2.3065) = e^{2.3065} + 2.3065 - 6 \\ = 0.0002$
• For x = 2.3075: $g(2.3075) = e^{2.3075} + 2.3075 - 6 \\ = -0.0044$

Since g(2.3065) is positive and g(2.3075) is negative, by the Intermediate Value Theorem, there exists a root in the interval [2.3065, 2.3075].

Thus, we conclude that a = 2.307 correct to 3 decimal places.