A machine puts liquid into bottles of perfume - Edexcel - A-Level Maths Statistics - Question 5 - 2019 - Paper 1

In this situation, we want to determine whether fewer than 100 bottles (i.e., half of 200) contain liquid between 24.63 ml and k ml.

Using the normal approximation: We have:

• Mean (μ) = 200 × P(24.63 < D < k) = 200 × 0.45 = 90
• Standard deviation (σ) is computed as follows:

ightarrow ext{std dev} ext{ (σ)} ext{ is approximately } 6.93$$ To find the probability: $$P(X < 100) ightarrow z = rac{100 - 90}{6.93} ightarrow z ext{ (approx.) is } 1.44$$ Using a z-table, we find: $$P(Z < 1.44) ext{ approx } 0.9115 ext{, or } 0.912$$

Here, we set the null and alternative hypotheses:

• Null Hypothesis (H0): μ = 25 ml
• Alternative Hypothesis (H1): μ < 25 ml

We will calculate the z-score using Hannah's sample mean: z = rac{ar{x} - ext{mean}}{rac{ ext{std dev}}{ ext{sqrt}(n)}} Given:

• Sample mean (x̄) = 24.94 ml
• Standard deviation (σ) = 0.16 ml
• n = 20 bottles

So, z = rac{24.94 - 25}{rac{0.16}{ ext{sqrt}(20)}} Calculating this gives: $z ext{ (approx.) = -0.6466}$

Referring to the z-table, the critical z-value for a one-tailed test at 5% significance is approximately -1.645. Since -0.6466 > -1.645, we fail to reject the null hypothesis. Therefore, there is insufficient evidence to support Hannah’s belief that the mean amount of liquid put in each bottle is less than 25 ml.