The coordinates of P and Q are (1, 5) and (9, −3) respectively, find

2. 1. The coordinates of PandQ are (1, 5) and (9, −3) respectively, find (i) the equation of the line PQ P (1, 5) Q (9, −3) (x1, y1) (x2, y2) (x1, y1) = (1, 5) m = −1 (y – y1) = m(x – x1) (y – 5) = −1(x – 1) y – 5 = − x + 1 x + y – 6 = 0

3. 1. The coordinates of PandQ are (1, 5) and (9, −3) respectively, find (ii) the equation of the line k, which passes through the origin O and is perpendicular to PQ Perpendicular lines: m1m2 = −1 −1 × mk = −1 mk = 1 (x1, y1) = (0, 0) mk = 1 (y – y1) = m(x – x1) (y – 0) = 1(x – 0) y = x 0 = x − y

4. 1. The coordinates of PandQ are (1, 5) and (9, −3) respectively, find (iii) the coordinates of the point A, where PQ ∩ k = {A} x + y = 6 Let x = 3: x – y = 0 x – y = 0 2x = 6 3 – y = 0 x = 3 3 = y Point of intersection= (3, 3)

5. 1. The coordinates of PandQ are (1, 5) and (9, −3) respectively, find (iv) the coordinates of R, where QOPR is a parallelogram. • Plot the three given points O, P and Q. • The vertices of the parallelogram are in the order of QOPR, as you go around the shape. This means that the translation which maps O to Q must be the same as the one which maps P to R. • To go from O (0, 0) to Q (9, −3), add 9 to the x coordinate and subtract 3 from the y coordinate. • Apply this same translation to P (1, 5) results in R: (10, 2)

6. 2. l is the line 5x − 2y + c = 0 (i) (3, 4) is a point on l. Find the value of c. Substitute the coordinates of (3, 4) into the equation: 5x − 2y + c = 0 5(3) − 2(4) + c = 0 15 − 8 + c = 0 7 + c = 0 c = −7

7. 2. l is the line 5x − 2y + c = 0 (ii) The line k is parallel to l and passes through the point (−2, 0). Find the equation of k. l: 5x − 2y − 7 = 0 a = 5, b = −2 Parallel lines have equal slopes, therefore

8. 2. l is the line 5x − 2y + c = 0 (ii) The line k is parallel to l and passes through the point (−2, 0). Find the equation of k. (y − y1) = m(x − x1) (y − 0) = (x − (−2)) (y − 0) = (x + 2) 2(y − 0) = 5(x + 2) 2y = 5x + 10 k: 0 = 5x − 2y + 10

9. 2. l is the line 5x − 2y + c = 0 (iii) The lines l and k together with the line x = 2 and the y-axis, form parallelogram.Find the coordinates of the vertices of the parallelogram. l: 5x − 2y − 7 = 0 Let x = 2: At the y-axis, x = 0 5x − 2y − 7 = 0 5x − 2y − 7 = 0 5(2) − 2y − 7 = 0 5(0) − 2y = 7 10 − 7 = 2y y = = y

10. 2. l is the line 5x − 2y + c = 0 (iii) The lines l and k together with the line x = 2 and the y-axis, form parallelogram.Find the coordinates of the vertices of the parallelogram. k: 5x − 2y + 10 = 0 At the y-axis, x = 0: Let x = 2: 5x − 2y + 10 = 0 5x − 2y + 10 = 0 5(0) − 2y + 10 = 0 5(2) − 2y + 10 = 0 10 + 10 = 2y 10 = 2y 10 = y 5 = y (2, 10) (0, 5)

11. 2. l is the line 5x − 2y + c = 0 (iii) The lines l and k together with the line x = 2 and the y-axis, form parallelogram.Find the coordinates of the vertices of the parallelogram.

12. 3. A (6, 4) and B (4, 3) are two points on the coordinated plane. (i) Find the equation of the line AB. A (6, 4) B (4, 3) (x1,y1) (x2, y2) (x1, y1) = (6, 4) m = (y − y1) = m(x − x1) (y − 4) = 2(y − 4) = 1(x − 6) 2y − 8 = x − 6 0 = x − 2y + 2

13. 3. A (6, 4) and B (4, 3) are two points on the coordinated plane. (ii) The line AB crosses the y-axis at the point C. Find the coordinates of C. Crossing y-axis, x = 0: 0 = x − 2y + 2 0 = 0 − 2y + 2 2y = 2 y = 1 C: (0, 1)

14. 3. A (6, 4) and B (4, 3) are two points on the coordinated plane. (iii) Find the ratio , giving your answer in the form , where p, q ∈ . A: (6, 4) B: (4, 3) B: (4, 3) C: (0, 1) (x1,y1) (x2, y2) (x1,y1) (x2, y2)

15. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (i) The line l has equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. Substitute the point B = (−6, 0): Substitute the point A = (0, 4): 2x − 3y + 12 = 0 2x − 3y + 12 = 0 2(0) − 3(4) + 12 = 0 2(−6) −3(0) + 12 = 0 0 − 12 + 12 = 0 −12 − 0 + 12 = 0 0 = 0 0 = 0 Therefore, A is on the line. Therefore, B is on the line.

16. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (ii) Find the slope of l. l: 2x − 3y + 12 = 0 a = 2, b = −3

17. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (iii) The line k is perpendicular to l and it contains the point B. Find the equation of k. For perpendicular lines: m1 m2= −1 (x1,y1) = (−6, 0) mk = (y − y1) = m (x − x1) mlmk= −1 mk= −1 (y − 0) = mk = (y − 0) = 2(y − 0) = −3(x + 6) 2y = −3x – 18 3x + 2y + 18 = 0

18. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (iv) k intersects the y-axis at the point C. Find the coordinates of C. At the y-axis, x = 0: 3x + 2y + 18 = 0 3(0) + 2y + 18 = 0 2y = −18 y = −9 C: (0, −9)

19. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (v) • Using the same axis and scale, plot the points A, B and C and graph the lines l and k.

20. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (vi) • D is another point such that ABCD is a rectangle. Find the coordinates of D. • The vertices of the rectangle are in the order of ABCD, as you go around the shape. This means that the translation which maps B to A must be the same as the one which maps C to D. • To go from B (−6, 0) to A (0, 4), add 6 to the x-coordinate and add 4 to the y-coordinate. • Apply this same translation to C (0, −9) results in D: (6, −5)

21. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (vii) • Calculate the area of ABCD. One possible solution: Move one point to (0, 0) and move all other points under the same translation: (−6, 0) (−6 + 6, 0) (0, 0) (0, −9) (0 + 6, −9) (6, −9) (0, 4) (0 + 6, 4) (6, 4) (6, −5) (6 + 6, −5) (12, −5)

22. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (vii) • Calculate the area of ABCD. (0, 0) (6, −9) (12, −5) Area1 (x1, y1) (x2, y2) = 39 units2

23. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (vii) • Calculate the area of ABCD. (0, 0) (6, 4) (12, −5) Area2 (x1, y1) (x2, y2) = 39 units2

24. 4. The line lhas equation 2x − 3y + 12 = 0. A (0, 4) and B (−6, 0) are two points. (vii) • Calculate the area of ABCD. Total area = Area1 + Area2 = 39 + 39 = 78 units2

25. 5. An electrician charges a call-out fee of €45 and then an additional €1·20 for every minute that he is working on a repair job in a house. (i) Write an equation to show the relationship between the total fee which the electrician will charge (F) and the number of minutes he is working on the job (T). y = starting value + growth rate(x) Starting value = 45 Growth rate = €1·20 = 1·2 F = 45 + 1·2T

26. 5. An electrician charges a call-out fee of €45 and then an additional €1·20 for every minute that he is working on a repair job in a house. (ii) Graph this linear relationship for 0 ≤ T ≤ 120. T = 120 T = 0 F = 45 + 12(120) F = 45 + 12(0) = 45 + 144 F = €45 (0, 45) F = €189 (120, 189)

27. 5. An electrician charges a call-out fee of €45 and then an additional €1·20 for every minute that he is working on a repair job in a house. (iii) Use your graph to find the cost of a 40-minute repair job. • Go to 40 on the horizontal axis. • Draw a line vertically upwards until you touch the graph. • Draw a line horizontally across until you touch the vertical axis. From the graph, when T = 40 minutes, F = €93

28. 5. An electrician charges a call-out fee of €45 and then an additional €1·20 for every minute that he is working on a repair job in a house. (iv) Use your graph to find how long the electrician was working on a job, for which he charged €135. • Go to 135 on the vertical axis. • Draw a line horizontally across until you touch the graph. • Draw a line vertically downwards until you touch the horizontal axis. From the graph, when F = €135, T = 75 minutes.

29. 5. An electrician charges a call-out fee of €45 and then an additional €1·20 for every minute that he is working on a repair job in a house. (v) The point (60, 117) is on this graph. Write a sentence that describes the meaning of these coordinates. A 60 minute job would be charged a fee of €117.

30. 5. An electrician charges a call-out fee of €45 and then an additional €1·20 for every minute that he is working on a repair job in a house. (vi) If the electrician changed his rate per minute to €1.50, what effect would this have on the graph? Greater rate of change. It would make the slope of the graph steeper.

31. 5. An electrician charges a call-out fee of €45 and then an additional €1·20 for every minute that he is working on a repair job in a house. (vii) If the electrician changed his call-out fee to €20, what effect would this have on the graph? The graph would be parallel to the current line, but with a lower starting value. It would start at €20 on the y-axis, instead of €45.

32. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. Prove that AC ⊥ BC (i) If AC ⊥ BC then m1 × m2 = −1. B: (−4, 1) C: (−2, 5) A: (2, 3) C: (−2, 5) (x1, y1) (x2, y2) (x1, y1) (x2, y2)

33. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. Prove that AC ⊥ BC (i) If two lines are perpendicular, then m1 × m2 = −1 Therefore, AC ⊥ BC

34. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. Prove that |AC| = |BC| (ii) B: (−4, 1) C(−2, 5) A: (2, 3) C: (−2, 5) (x1, y1) (x2, y2) (x1, y1) (x2, y2) , therefore |AC| = |BC|

35. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. • Calculate the area of the triangle BAC. (iii) Move the point A (2, 3) to (0, 0) and move B and C by the same translation:

36. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. • Calculate the area of the triangle BAC. (iii) Area1 = 10 units2

37. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. • The diagonals of the square BAHG intersect at C. Find the coordinates of H and the coordinates of G. (iv) To find the coordinates of H: Go from B into C and out the same amount on the far side

38. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. • The diagonals of the square BAHG intersect at C. Find the coordinates of H and the coordinates of G. (iv) To find the coordinates of G: Go from A into C and out the same amount on the far side

39. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. Find the equation of the line BC and show that H lies on this line. (v) B: (−4, 1) C:(−2, 5) (x1, y1) (x2, y2) (x1, y1) = (−4, 1) m = 2 (y − y1) = m(x − x1) (y − 1) = 2(x − (−4)) (y − 1) = 2(x + 4) y − 1 = 2x + 8 0 = 2x − y + 9 Slope of BC = 2

40. 6. A (2, 3), B (−4, 1) and C (−2, 5) are three points. Find the equation of the line BC and show that H lies on this line. (v) Substitute the coordinates of H: (0, 9) into the equation: 0 = 2x − y + 9 0 = 2(0) − 9 + 9 0 = 0 − 9 + 9 0 = 0 Therefore H is on the line.

41. 7. The line kmakes equal intercepts on the axes at the points Pand Q, as shown. (i) Write down the slope of k. Rise = Run = a

42. 7. The line kmakes equal intercepts on the axes at the points Pand Q, as shown. (ii) The point (2, 7) is on k. Find the equation of k. (x1, y1) = (2, 7) m = 1 (y − y1) = m(x − x1) y − 7 = 1(x − 2) y − 7 = x − 2 k: 0 = x − y + 5

43. 7. The line kmakes equal intercepts on the axes at the points Pand Q, as shown. (iii) The line n is perpendicular to k and contains the point (2, 1). Find the equation of n. Perpendicular lines, therefore mk × mn = −1 1 × mn = −1 mn = −1 (x1, y1) = (2, 1) (y − y1) = m(x − x1) y − 1 = −1(x − 2) y − 1 = − x + 2 n: x + y − 3 = 0

44. 7. The line kmakes equal intercepts on the axes at the points Pand Q, as shown. (iv) Find the coordinates of the point R, such that k ∩ n = {R}. Let x = −1: x + y = 3  x − y = −5 −1 + y = 3  x + y = 3 y = 4 2x = −2 x = −1 Therefore, k ∩ n = R = (−1, 4)

45. 8. The points P, Qand Rare the vertices of a triangle, as shown. QRis the line 2x + y + 3 = 0. Pin the point (4, 4) and Qis the point (−2, 1). (i) Find the slope of the line PQ. P: (4, 4) Q: (−2, 1) (x1, y1) (x2, y2)

46. 8. The points P, Qand Rare the vertices of a triangle, as shown. QRis the line 2x + y + 3 = 0. Pin the point (4, 4) and Qis the point (−2, 1). (ii) State whether or not PQ and QR are perpendicular to each other. Give a reason for your answer. QR: 2x + y + 3 = 0 a = 2, b = 1

47. 8. The points P, Qand Rare the vertices of a triangle, as shown. QRis the line 2x + y + 3 = 0. Pin the point (4, 4) and Qis the point (−2, 1). (ii) State whether or not PQ and QR are perpendicular to each other. Give a reason for your answer. If the lines are perpendicular lines, then m1 × m2 = −1 mPQ × mQR = −1 × −2 = −1 −1 = −1 Therefore PQQR

48. 8. The points P, Qand Rare the vertices of a triangle, as shown. QRis the line 2x + y + 3 = 0. Pin the point (4, 4) and Qis the point (−2, 1). (iii) QR intersects the y-axis at the point R. Find the coordinates of the point R. At the y-axis, x = 0: 2x + y + 3 = 0 2(0) + y + 3 = 0 y + 3 = 0 y= −3 R: (0, −3)

49. 8. The points P, Qand Rare the vertices of a triangle, as shown. QRis the line 2x + y + 3 = 0. Pin the point (4, 4) and Qis the point (−2, 1). (iv) • Find the area of the triangle PQR. Move the point R to (0, 0) and then move the points P and Q under the same translation:

50. 8. The points P, Qand Rare the vertices of a triangle, as shown. QRis the line 2x + y + 3 = 0. Pin the point (4, 4) and Qis the point (−2, 1). (iv) • Find the area of the triangle PQR. Area1 = 15 units2