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Date November 2011 Marks available 4 Reference code 11N.3sp.hl.TZ0.1
Level HL only Paper Paper 3 Statistics and probability Time zone TZ0
Command term Find Question number 1 Adapted from N/A

Question

The weight of tea in Supermug tea bags has a normal distribution with mean 4.2 g and standard deviation 0.15 g. The weight of tea in Megamug tea bags has a normal distribution with mean 5.6 g and standard deviation 0.17 g.

Find the probability that a randomly chosen Supermug tea bag contains more than 3.9 g of tea.

[2]
a.

Find the probability that, of two randomly chosen Megamug tea bags, one contains more than 5.4 g of tea and one contains less than 5.4 g of tea.

[4]
b.

Find the probability that five randomly chosen Supermug tea bags contain a total of less than 20.5 g of tea.

[4]
c.

Find the probability that the total weight of tea in seven randomly chosen Supermug tea bags is more than the total weight in five randomly chosen Megamug tea bags.

[5]
d.

Markscheme

let S be the weight of tea in a random Supermug tea bag

\(S \sim {\text{N(4.2, 0.1}}{{\text{5}}^2})\)

\({\text{P}}(S > 3.9) = 0.977\)     (M1)A1

[2 marks]

a.

let M be the weight of tea in a random Megamug tea bag

\(M \sim {\text{N(5.6, 0.1}}{{\text{7}}^2})\)

\({\text{P}}(M > 5.4) = 0.880 \ldots \)     (A1)

\({\text{P}}(M < 5.4) = 1 - 0.880 \ldots = 0.119 \ldots \)     (A1)

required probability \( = 2 \times 0.880 \ldots \times 0.119 \ldots = 0.211\)     M1A1

[4 marks]

b.

\({\text{P}}({S_1} + {S_2} + {S_3} + {S_4} + {S_5} < 20.5)\)

let \({S_1} + {S_2} + {S_3} + {S_4} + {S_5} = A\)     (M1)

\({\text{E}}(A) = 5{\text{E}}(S)\)

= 21     A1

\({\text{Var}}(A) = 5{\text{Var}}(S)\)

= 0.1125     A1

\(A \sim {\text{N(21, 0.1125}})\)

\({\text{P}}(A < 20.5) = 0.0680\)     A1

[4 marks]

c.

\({\text{P}}({S_1} + {S_2} + {S_3} + {S_4} + {S_5} + {S_6} + {S_7} - ({M_1} + {M_2} + {M_3} + {M_4} + {M_5}) > 0)\)

let \({S_1} + {S_2} + {S_3} + {S_4} + {S_5} + {S_6} + {S_7} - ({M_1} + {M_2} + {M_3} + {M_4} + {M_5}) = B\)     (M1)

\({\text{E}}(B) = 7{\text{E}}(S) - 5{\text{E}}(M)\)

= 1.4     A1

Note: Above A1 is independent of first M1.

 

\({\text{Var}}(B) = 7{\text{Var}}(S) + 5{\text{Var}}(M)\)     (M1)

= 0.302     A1

\({\text{P}}(B > 0) = 0.995\)     A1

[5 marks]

d.

Examiners report

For most candidates this was a reasonable start to the paper with many candidates gaining close to full marks. The most common error was in (b) where, surprisingly, many candidates did not realise the need to multiply the product of the two probabilities by 2 to gain the final answer. Weaker candidates often found problems in understanding how to correctly find the variance in both (c) and (d).

a.

For most candidates this was a reasonable start to the paper with many candidates gaining close to full marks. The most common error was in (b) where, surprisingly, many candidates did not realise the need to multiply the product of the two probabilities by 2 to gain the final answer. Weaker candidates often found problems in understanding how to correctly find the variance in both (c) and (d).

b.

For most candidates this was a reasonable start to the paper with many candidates gaining close to full marks. The most common error was in (b) where, surprisingly, many candidates did not realise the need to multiply the product of the two probabilities by 2 to gain the final answer. Weaker candidates often found problems in understanding how to correctly find the variance in both (c) and (d).

c.

For most candidates this was a reasonable start to the paper with many candidates gaining close to full marks. The most common error was in (b) where, surprisingly, many candidates did not realise the need to multiply the product of the two probabilities by 2 to gain the final answer. Weaker candidates often found problems in understanding how to correctly find the variance in both (c) and (d).

d.

Syllabus sections

Topic 5 - Core: Statistics and probability » 5.7 » Normal distribution.
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