The diagram shows quadrilateral ABCD and the bisectors of the angles at A, B, C and D. The bisectors at A and B intersect at the point P. The bisectors at A and D meet at Q. The bisectors at C and D meet at R. The bisectors at B and C meet at S. Copy or trace the diagram into your writing booklet. Show that PQRS is a cyclic quadrilateral.

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The diagram shows quadrilateral ABCD and the bisectors of the angles at A, B, C and D - HSC - SSCE Mathematics Extension 1 - Question 14 - 2018 - Paper 1

Question 14

The diagram shows quadrilateral ABCD and the bisectors of the angles at A, B, C and D. The bisectors at A and B intersect at the point P. The bisectors at A and D me... show full transcript

Worked Solution & Example Answer:The diagram shows quadrilateral ABCD and the bisectors of the angles at A, B, C and D - HSC - SSCE Mathematics Extension 1 - Question 14 - 2018 - Paper 1

Step 1

Show that PQRS is a cyclic quadrilateral

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Answer

To prove that quadrilateral PQRS is cyclic, we need to show that the opposite angles are supplementary.

Angle Relationships: Since the lines PQ, PR, QS, and SR are angle bisectors, we can express the angles at points P, Q, R, and S using the properties of angle bisectors.
Using Angle Bisector Properties: Let angle A, B, C, and D be represented as follows:
- Set angle A as $2a$ , angle B as $2b$ , angle C as $2c$ , and angle D as $2d$ . Hence:
- $APB = 180° - (2a + 2b)$
- $QRC = 180° - (2c + 2d)$
Opposite Angles: It must hold that: $ext{Angle PQR} + ext{Angle PRS} = 180°$ and $ext{Angle PQS} + ext{Angle QRS} = 180°$
Conclusion: Since both pairs of opposite angles are supplementary, we conclude that quadrilateral PQRS is cyclic.

Step 2

By considering the expansions of $(1 + (1 + x)^n)$ and $(2 + y^r)$, show that

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Answer

The expression expands to involve combinations where:

$inom{n}{r} = rac{n!}{r!(n-r)!}$

Expanding the First Expression: The binomial expansion of $(1 + (1 + x)^n)$ leads to: $(1 + x)^n = inom{n}{0} + inom{n}{1} (1 + x) + inom{n}{2} (1 + x)^2 + ...$ From this, we can derive coefficients for specific powers of x.
Expanding the Second Expression: For $(2 + y^r)$ , the terms also give rise to combinations.
Setting Both Expansions Equal: By comparing both expansions, we can find the coefficients of $y^r$ that yield the form as requested.

This set of relations and coefficients leads to the final required combinatorial results.

Step 3

There are 23 people who have applied to be selected for a committee of 4 people.

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Selecting 4 from 23: The number of ways to choose 4 people from a pool of 23 is given by the combination formula: $inom{n}{r} = rac{n!}{r!(n-r)!}$ Thus, for 23 applicants: $inom{23}{4} = rac{23!}{4!(23-4)!} = rac{23!}{4!19!}$
Calculating the Combination: This results in: $inom{23}{4} = rac{23 imes 22 imes 21 imes 20}{4 imes 3 imes 2 imes 1} = 8855$

Therefore, there are 8855 different ways to form a committee of 4 people from the group of 23 applicants.

The diagram shows quadrilateral ABCD and the bisectors of the angles at A, B, C and D - HSC - SSCE Mathematics Extension 1 - Question 14 - 2018 - Paper 1

Worked Solution & Example Answer:The diagram shows quadrilateral ABCD and the bisectors of the angles at A, B, C and D - HSC - SSCE Mathematics Extension 1 - Question 14 - 2018 - Paper 1

Show that PQRS is a cyclic quadrilateral

By considering the expansions of $(1 + (1 + x)^n)$ and $(2 + y^r)$, show that

There are 23 people who have applied to be selected for a committee of 4 people.

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