16N.1.AHL.TZ0.H_10

* This question is from an exam for a previous syllabus, and may contain minor differences in marking or structure.

METHOD 1

$\text{P}(A\cup B)=\text{P}(A)+\text{P}(B)-\text{P}(A\cap B)$    M1

$=\text{P}(A)+\text{P}(A\cap B)+\text{P}(A^{\prime }\cap B)-\text{P}(A\cap B)$    M1A1

$=\text{P}(A)+\text{P}(A^{\prime }\cap B)$    AG

METHOD 2

$\text{P}(A\cup B)=\text{P}(A)+\text{P}(B)-\text{P}(A\cap B)$    M1

$=\text{P}(A)+\text{P}(B)-\text{P}(A|B)\times \text{P}(B)$    M1

$=\text{P}(A)+\left(1-\text{P}(A|B)\right)\times \text{P}(B)$

$=\text{P}(A)+\text{P}(A^{\prime }|B)\times \text{P}(B)$    A1

$=\text{P}(A)+\text{P}(A^{\prime }\cap B)$    AG

[3 marks]

(i)     use $\text{P}(A\cup B)=\text{P}(A)+\text{P}(A^{\prime }\cap B)$ and $\text{P}(A^{\prime }\cap B)=\text{P}(B|A^{\prime })\text{P}(A^{\prime })$     (M1)

$\frac{4}{9}=\text{P}(A)+\frac{1}{6}\left(1-\text{P}(A)\right)$    A1

$8=18\text{P}(A)+3\left(1-\text{P}(A)\right)$    M1

$\text{P}(A)=\frac{1}{3}$    AG

(ii)     METHOD 1

$\text{P}(B)=\text{P}(A\cap B)+\text{P}(A^{\prime }\cap B)$    M1

$=\text{P}(B|A)\text{P}(A)+\text{P}(B|A^{\prime })\text{P}(A^{\prime })$    M1

$=\frac{1}{3}\times \frac{1}{3}+\frac{1}{6}\times \frac{2}{3}=\frac{2}{9}$    A1

METHOD 2

$\text{P}(A\cap B)=\text{P}(B|A)\text{P}(A)\Rightarrow \text{P}(A\cap B)=\frac{1}{3}\times \frac{1}{3}=\frac{1}{9}$    M1

$\text{P}(B)=\text{P}(A\cup B)+\text{P}(A\cap B)-\text{P}(A)$    M1

$\text{P}(B)=\frac{4}{9}+\frac{1}{9}-\frac{1}{3}=\frac{2}{9}$    A1

[6 marks]

[N/A]

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