4. (a) Differentiate to find $f'(x)$. The curve with equation $y = f(x)$ has a turning point at $P$. The x-coordinate of $P$ is $\alpha$. (b) Show that $\alpha = \frac{1}{6} e^{-\alpha}$. The iterative formula $x_{n+1} = \frac{1}{6} e^{-x_n}, \quad x_0 = 1,$ is used to find an approximate value for $\alpha$. (c) Calculate the values of $x_1, x_2, x_3$ and $x_4$, giving your answers to 4 decimal places. (d) By considering the change of sign of $r'(x)$ in a suitable interval, prove that $\alpha = 0.1443$ correct to 4 decimal places.

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4. (a) Differentiate to find $f'(x)$ - Edexcel - A-Level Maths Pure - Question 6 - 2005 - Paper 5

Question 6

4. (a) Differentiate to find $f'(x)$. The curve with equation $y = f(x)$ has a turning point at $P$. The x-coordinate of $P$ is $\alpha$. (b) Show that $\al... show full transcript

Worked Solution & Example Answer:4. (a) Differentiate to find $f'(x)$ - Edexcel - A-Level Maths Pure - Question 6 - 2005 - Paper 5

Step 1

Differentiate to find $f'(x)$

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Answer

To differentiate the function given by
$f(x) = 3e^{-\frac{1}{2} \ln(x - 2)}$
we can simplify to get ( f'(x) ).
Starting with the function, we use the chain rule and properties of logarithms:

Rewrite the function in exponential form:
$f(x) = 3(x - 2)^{-\frac{1}{2}}$
Differentiate using the product and chain rules:
$f'(x) = 3 \cdot -\frac{1}{2}(x - 2)^{-\frac{3}{2}} \cdot 1$
Simplifying, we have:
$f'(x) = -\frac{3}{2(x - 2)^{\frac{3}{2}}}$
Setting this equal to zero to find critical points yields:
$3e^{-\frac{1}{2} \ln(x - 2)} = \frac{1}{2x}$
Thus, we obtain our equation for critical points.

Step 2

Show that $\alpha = \frac{1}{6} e^{-\alpha}$

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Answer

To show that $\alpha = \frac{1}{6} e^{-\alpha}$ , we rearrange the expression obtained from setting $f'(x) = 0$ :

From the previous derivation, we have:
$6\alpha e^{\alpha} = 1$
This rearranges to give:
$\alpha = \frac{1}{6} e^{-\alpha}$
, confirming the required relation.

Step 3

Calculate the values of $x_1, x_2, x_3$ and $x_4$

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Answer

Given the iterative formula:
$x_{n+1} = \frac{1}{6} e^{-x_n}, \quad x_0 = 1$
we perform the iterations:

For $x_1$ :
$x_1 = \frac{1}{6} e^{-1} \approx 0.0613$
For $x_2$ :
$x_2 = \frac{1}{6} e^{-0.0613} \approx 0.5683$
For $x_3$ :
$x_3 = \frac{1}{6} e^{-0.5683} \approx 0.1425$
For $x_4$ :
$x_4 = \frac{1}{6} e^{-0.1425} \approx 0.1444$
Thus, we find the values for $x_1, x_2, x_3$ , and $x_4$ as 0.0613, 0.5683, 0.1425, and approximately 0.1444 respectively.

Step 4

By considering the change of sign of $f'(x)$ in a suitable interval, prove that $\alpha = 0.1443$ correct to 4 decimal places.

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Answer

To demonstrate that $\alpha = 0.1443$ is correct to four decimal places:

Evaluate $f'(x)$ $f^{'} (x)$ at points around $x = 0.1443$ $x = 0.1443$ :
- If $x = 0.14425$ , compute:
  $f'(0.14425) \approx 0.0007$
- If $x = 0.14435$ , compute:
  $f'(0.14435) \approx -0.0021$
Observe that $f'(0.14425) > 0$ and $f'(0.14435) < 0$ .
This indicates a sign change around $x = 0.1443$ , hence confirming the root.
In conclusion, with change of sign confirmed, $\alpha = 0.1443$ is accurate to four decimal places.

4. (a) Differentiate to find $f'(x)$ - Edexcel - A-Level Maths Pure - Question 6 - 2005 - Paper 5

Worked Solution & Example Answer:4. (a) Differentiate to find $f'(x)$ - Edexcel - A-Level Maths Pure - Question 6 - 2005 - Paper 5

Differentiate to find $f'(x)$

Show that $\alpha = \frac{1}{6} e^{-\alpha}$

Calculate the values of $x_1, x_2, x_3$ and $x_4$

By considering the change of sign of $f'(x)$ in a suitable interval, prove that $\alpha = 0.1443$ correct to 4 decimal places.

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