The number of hours of sunshine each day, y, for the month of July at Heathrow are summarised in the table below - Edexcel - A-Level Maths Statistics - Question 1 - 2017 - Paper 2

To calculate the mean ((\bar{x})) of the data, we use the formula:

[\bar{x} = \frac{(f_1x_1 + f_2x_2 + f_3x_3 + f_4x_4 + f_5x_5)}{n}]

Where:

• (f_i) = frequency of each group,
• (x_i) = midpoint of each group,
• (n) = total number of data points.

Calculating the midpoints:

• For 0 ≤ y < 5: Midpoint = 2.5
• For 5 ≤ y < 8: Midpoint = 6.5
• For 8 ≤ y < 11: Midpoint = 9.5
• For 11 ≤ y < 12: Midpoint = 11.5
• For 12 ≤ y < 14: Midpoint = 13

Now, plug in the frequencies: 12, 6, 8, 3, and 2:

[\bar{x} = \frac{(12(2.5) + 6(6.5) + 8(9.5) + 3(11.5) + 2(13))}{31} = \frac{(30 + 39 + 76 + 34.5 + 26)}{31} = \frac{205.5}{31} \approx 6.63]

Next, to find the standard deviation ((\sigma)), we use:

[\sigma = \sqrt{\frac{(f_1(x_1 - \bar{x})^2 + f_2(x_2 - \bar{x})^2 + ... + f_5(x_5 - \bar{x})^2)}{n}}]

Using the calculated mean, we derive the standard deviation.

The calculated mean for Heathrow is higher than that for Hurn, suggesting more hours of sunshine. Additionally, if the standard deviation is lower than that of Hurn (4.12 hours), it indicates consistency in daily sunshine hours. Thus, this supports Thomas’ belief that the further south one goes, the more consistent the daily sunshine hours are.

First, calculate the mean and standard deviation:

• Mean ((\bar{x})) = 6.63
• Standard deviation ((\sigma)) is approximately 3.69 (from part (b)).

Thus, the threshold for more than 1 standard deviation above the mean:

Threshold = Mean + Standard Deviation = 6.63 + 3.69 = 10.32

To find the number of days, look at the groups:

• Days with hours >= 10.32 are groups 11 ≤ y < 12 and 12 ≤ y < 14:
• Count from the table:
  • 3 days (11 ≤ y < 12)
  • 2 days (12 ≤ y < 14)

Total = 3 + 2 = 5 days.

To use Helen’s model (N(6.6, 3.7)), we first find the z-score:

Threshold calculated earlier = 10.32.

Z-score = (\frac{x - \mu}{\sigma} = \frac{10.32 - 6.6}{3.7} = 1.01)

Using z-tables or calculators, find the area to the right of z = 1.01. Let's denote this area as P(Z > 1.01) which is approximately 0.156.

Thus, the expected number of days:

Predicted days = Total days (31) × P(Z > 1.01) = 31 × 0.156 ≈ 4.84 days.

Hence, we can predict approximately 5 days.

From part (d), we estimated 5 days of sunshine exceeding 1 standard deviation above the mean in July at Heathrow. In part (e), Helen’s model predicted approximately 5 days. The predictions closely align, suggesting Helen's model is reasonable. However, it’s essential to note that actual variability exists, and the model may not account for all nuances in the data.