5.7 SPM Practice (Long Questions 6)

Posted on May 29, 2020 by Myhometuition

Question 11 (5 marks):
Diagram 4 shows a parallelogram drawn on a Cartesian plane which represents the locations of Rahman's house, a cinema, a school and a shop.

It is given that the scale is 1 unit : 1 km.
(a) Calculate the distance, in km, between Rahman's house and the school.
(b) Find the equation of the straight line that links the school to the cinema.

Solution:
(a)
2y = 3x + 15
When y = 0
3x + 15 = 0
3x = –15
x = –5

Rahman's house = (–5, 0)
School = (3, 0)

Distance, between Rahman's house and the school
= 3 – (– 5)
= 8 units
= 8 km

(b)

\begin{array}{l} 2 y = 3 x + 15 \\ y = \frac{3}{2} x + \frac{15}{2} \\ Thus m = \frac{3}{2} \\ At point (3, 0), y_{1} = m x_{1} + c \\ 0 = \frac{3}{2} (3) + c \\ \frac{9}{2} + c = 0 \\ c = - \frac{9}{2} \\ Thus, the linear equation is \\ y = \frac{3}{2} x - \frac{9}{2} \\ 2 y = 3 x - 9 \end{array}

Question 12 (6 marks):
Diagram 6 shows two parallel straight lines, JK and LM, drawn on a Cartesian plane.
The straight line KM is parallel to the x-axis.

Diagram 6

Find
(a) the equation of the straight line KM,
(b) the equation of the straight line LM,
(c) the value of k.

Solution:
(a)
The equation of the straight line KM is y = 3

(b)

\begin{array}{l} Given, equation of J K : \\ 2 y = 4 x + 3 \\ y = 2 x + \frac{3}{2} \\ Thus, m_{J K} = 2 \\ m_{L M} = m_{J K} = 2 \\ y = m x + c \\ At M (5, 3) \\ 3 = 2 (5) + c \\ 3 = 10 + c \\ c = - 7 \\ ∴ Equation of the straight line L M \\ is y = 2 x - 7. \end{array}

(c)

\begin{array}{l} Substitute (k, 0) into y = 2 x - 7 \\ 0 = 2 (k) - 7 \\ 7 = 2 k \\ k = \frac{7}{2} \end{array}

5.7 SPM Practice (Long Questions 5)

Posted on May 26, 2020 by Myhometuition

Question 9:

The diagram above shows that the straight line PMQ intersects with PNR at N. Given that OQ = OR and M is the midpoint of PQ. Find
(a) the coordinate of P
(b) the value of m and n.

Solution:

\begin{array}{l} (a) \\ Given M is midpoint of P Q \\ x -coordinate of P = 0 \\ For y -coordinate of P, \\ \frac{y + 0}{2} = 3 \\ y = 6 \\ Coordinates of P = (0, 6) . \end{array}

\begin{array}{l} (b) \\ \frac{0 + 4}{2} = m \\ 2 m = 4 \\ m = 2 \\ Gradient of P R \\ = \frac{6 - 0}{0 - (- 4)} \\ = \frac{6}{4} \\ = \frac{3}{2} \\ At point N (n, 4), \\ using y_{1} = m x_{1} + c \\ 4 = \frac{3}{2} n + 6 \\ 8 = 3 n + 12 \\ 3 n = - 4 \\ n = - \frac{4}{3} \end{array}

Question 10 (5 marks):
Diagram 6 shows two parallel straight lines, POQ and RMS drawn on a Cartesian plane.

Diagram 6

Find
(a) the equation of the straight line RMS,
(b) the x-intercept of the straight line MN.

Solution:
(a)

\begin{array}{l} m_{R M S} = m_{P O Q} \\ = \frac{1 - 0}{- 2 - 0} \\ = - \frac{1}{2} \\ At point (4, 6) \\ y_{1} = m x_{1} + c \\ 6 = - \frac{1}{2} (4) + c \\ 6 = - 2 + c \\ c = 8 \\ The equation of straight line R M S is \\ y = - \frac{1}{2} x + 8 \end{array}

(b)

\begin{array}{l} When y = 0, \\ - \frac{1}{2} x + 8 = 0 \\ \frac{1}{2} x = 8 \\ x = 16 \\ x -intercept of straight line M N is 16. \end{array}

5.7 SPM Practice (Long Questions 4)

Posted on May 26, 2020 by Myhometuition

Question 7:

The diagram above shows a parallelogram on a Cartesian plane. MP and NO are parallel to the y-axis. Given that the distance of MZ is 4 units. Find
(a) the value of p and q.
(b) the equation of the straight line MN.

Solution:

\begin{array}{l} (a) \\ Line N O is parallel to y -axis, \\ p = 2 \\ M P = \sqrt{3^{2} + 4^{2}} \\ = \sqrt{9 + 16} \\ = \sqrt{25} \\ = 5 \\ N O = M P = 5 units \\ q = 7 - 5 = 2 \end{array}

\begin{array}{l} (b) \\ Point O = (2, 2) \\ Gradient P O = \frac{2 - 0}{2 - 0} = 1 \\ Gradient M N = g radient P O = 1 \\ y_{1} = m x_{1} + c \\ 7 = 1 (2) + c \\ c = 5 \\ Equation of line M N is \\ y = x + 5 \end{array}

Question 8:

The diagram above shows that two straight line intersect at point (0 , -2). Find
(a) the value of b
(b) the x-intercept of the straight line XY if the gradient of XY is equal to 2.
(c) the equation of XY.

Solution:
(a)
Value of b
= 2 units + 3 units
= 5 units
= –5

\begin{array}{l} (b) \\ Given m = 2, c = - 2 \\ For x -intercept, y = 0 \\ 0 = 2 x + (- 2) \\ 0 = 2 x - 2 \\ 2 x = 2 \\ x = 1 \\ Therefore x intercept of X Y = 1. \end{array}

\begin{array}{l} (c) \\ Substitute m = 2 and (0, - 2) into y = m x + c \\ y = 2 x + (- 2) \\ y = 2 x - 2 \\ Therefore equation of X Y : y = 2 x - 2 \end{array}

5.5 Parallel Lines (Part 2)

Posted on May 26, 2020 by Myhometuition

(B) Equation of Parallel Lines

To find the equation of the straight line which passes through a given point and parallel to another straight line, follow the steps below:

Step 1 : Let the equation of the straight line take the form y = mx + c.

Step 2 : Find the gradient of the straight line from the equation of the straight line parallel to it.

Step 3 : Substitute the value of gradient, m, the x-coordinate and y-coordinate of the given point into y = mx + c to find the value of the y-intercept, c.

Step 4 : Write down the equation of the straight line in the form y = mx + c.

Example 2:

Find the equation of the straight line that passes through the point (–8, 2) and is parallel to the straight line 4y + 3x = 12.

Solution:

\begin{array}{l} 4 y + 3 x = 12 \\ 4 y = - 3 x + 12 \\ y = - \frac{3}{4} x + 3 \\ ∴ m = - \frac{3}{4} \\ At (- 8, 2), substitute m = - \frac{3}{4}, x = - 8, y = 2 into: \\ y = m x + c \\ 2 = - \frac{3}{4} (- 8) + c \\ c = 2 - 6 \\ c = - 4 \\ ∴ The equation of the staright line is y = - \frac{3}{4} x - 4. \end{array}

5.7 SPM Practice (Long Questions 2)

Posted on April 23, 2020 by user

Question 3:

Diagram below shows a straight line JK and a straight line ST drawn on a Cartesian plane. JK is parallel to ST.

Find

(a) the equation of the straight ST,

(b) the x-intercept of the straight line ST.

Solution:

(a)
JK is parallel to ST, therefore gradient of JK = gradient of ST.

\begin{array}{l} = \frac{8 - 0}{0 - 4} \\ = - 2 \end{array}

Substitute m = –2 and S (5, 6) into y = mx + c

6 = –2 (5) + c

c = 16

Therefore equation of ST: y = –2x + 16

(b)
For x-intercept, y = 0

0 = –2x + 16

2x = 16

x = 8

Therefore x-intercept of ST = 8

Question 4:

In the diagram above, PQRS is a parallelogram. Find

(a) the gradient of SR,

(b) the equation of QR,

(c) the x-intercept of QR.

Solution:

(a)
PQ is parallel to SR, gradient of PQ = gradient of SR.

Gradient of S R = - \frac{6}{- 3} = 2

(b)

\begin{array}{l} Gradient of Q R = \frac{8 - 6}{5 - 0} = \frac{2}{5} \\ Substitute m = \frac{2}{5} and R (5, 8) into y = m x + c \\ 8 = \frac{2}{5} (5) + c \\ c = 6 \\ Therefore equation of Q R : y = \frac{2}{5} x + 6 \end{array}

(c)

\begin{array}{l} For x-intercept, y = 0 \\ 0 = \frac{2}{5} x + 6 \\ x = - 15 \end{array}

Therefore x-intercept of QR = –15.

5.7 SPM Practice (Long Questions 3)

Posted on April 23, 2020 by user

Question 5:

In the diagram above, a straight line 5x + 7y + 35 = 0 intersects with the x-axis and y-axis at R and S respectively. Determine

(a) the gradient of the straight line RS.

(b) the x-intercept of the straight line RS.

(c) the distance of RS.

Solution:
(a)

\begin{array}{l} 5 x + 7 y + 35 = 0 \\ 7 y = - 5 x - 35 \\ y = - \frac{5}{7} x - 5 \\ ∴ The gradient of the straight line R S = - \frac{5}{7} . \end{array}

(b)

\begin{array}{l} At x-intercept, y = 0 \\ 0 = - \frac{5}{7} x - 5 \\ \frac{5}{7} x = - 5 \\ x = - 7 \\ ∴ x-intercept of the straight line R S = - 7. \end{array}

(c)

\begin{array}{l} Point R = (- 7, 0) and point S = (0, - 5) \\ Distance of R S = \sqrt{{(- 7 - 0)}^{2} + {(0 - (- 5))}^{2}} \\ Distance of R S = \sqrt{49 + 25} \\ Distance of R S = \sqrt{74} units \end{array}

Question 6:

In the diagram above, O is the origin of the Cartesian plane, AOB is a straight line and OA = AC. Find

(a) the coordinates of C.

(b) the value of h.

(c) the equation of BC.

Solution:
(a)

x-coordinate of C = –3 × 2 = –6

Therefore coordinates of C = (–6, 0).

(b)

\begin{array}{l} Gradient of A O = Gradient of O B \\ \frac{0 - (- 4)}{0 - (- 3)} = \frac{h - 0}{6 - 0} \\ \frac{4}{3} = \frac{h}{6} \\ h = 8 \end{array}

(c)

\begin{array}{l} Gradient of B C = \frac{8 - 0}{6 - (- 6)} = \frac{8}{12} = \frac{2}{3} \\ At point C (- 6, 0), \\ 0 = \frac{2}{3} (- 6) + c \\ c = 4 \\ The equation of B C is, \\ y = \frac{2}{3} x + 4 \end{array}

5.2 Gradient of a Straight Line in Cartesian Coordinates

Posted on April 23, 2020 by user

5.2 Finding the Gradient of a Straight Line

The gradient, m, of a straight line which passes through P (x₁, y₁) and Q (x₂, y₂) is given by,

m_PQ =

\frac{y_{2} - y_{1}}{x_{2} - x_{1}}

Example 1:

Find the gradient of the straight line joining two points P and Q in the above diagram.

Solution:

P = (x₁, y₁) = (4, 3), Q = (x₂, y₂) = (10, 5)

Gradient of the straight line PQ

\begin{array}{l} = \frac{y_{2} - y_{1}}{x_{2} - x_{1}} \\ = \frac{5 - 3}{10 - 4} \\ = \frac{2}{6} = \frac{1}{3} \end{array}

Example 2:

Calculate the gradient of a straight line which passes through point A (7, -3) and point B (-3, 6).

Solution:

A = (x₁, y₁) = (7, -3), B = (x₂, y₂) = (-3, 6)

Gradient of the straight line AB

\begin{array}{l} = \frac{y_{2} - y_{1}}{x_{2} - x_{1}} \\ = \frac{6 - (- 3)}{- 3 - 7} \\ = - \frac{9}{10} \end{array}

5.3 Intercepts (Sample Questions)

Posted on April 23, 2020 by user

Example 1:

The x-intercept of the line ST is

Solution:

The x-coordinate for the point of intersection of the straight line with x-axis is -0.4.

Therefore the x-intercept of the line ST is –0.4.

Example 2:

Find the x-intercept of the straight line 2x + 3y + 6 = 0.

Solution:

2x + 3y + 6 = 0

At x-intercept, y = 0

2x + 3(0) + 6 = 0

2x = –6

x = –3

Example 3:

What is the y-intercept of the straight line 12x – 15y = 60?

Solution:

12x – 15y = 60

At y-intercept, x = 0

12(0) – 15y = 60

– 15y = 60

y = –4

5.3 Intercepts

Posted on April 23, 2020 by user

5.3 Intercepts

1. The x-intercept is the point of intersection of a straight line with the x-axis.

2. The y-intercept is the point of intersection of a straight line with the y-axis.

3. In the above diagram, the x-intercept of the straight line PQ is 6 and the y-intercept of PQ is 5.

4. If the x-intercept and y-intercept of a straight line are given,

Gradient, m = - \frac{y - intercept}{x - intercept}

5.1 Gradient of a Straight Line

Posted on April 23, 2020 by user

5.1 Gradient of a Straight Line

The gradient of a straight line is the ratio of the vertical distance to the horizontal distance between any two given points on the straight line.

Gradient, m = \frac{Vertical distance}{Horizontal distance}

Example:

Find the gradient of the straight line above.

Solution:

\begin{array}{l} Gradient, m = \frac{Vertical distance}{Horizontal distance} \\ = \frac{4 units}{6 units} \\ = \frac{2}{3} \end{array}