173-NCERT-10-7-Coordinate-geometry - Ex- 7.4

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NCERT

10th Mathematics

Exercise 7.4

Topic: 7 Coordinate geometry

Click here for ⇨ NCERT-10-7-Coordinate-geometry - Ex- 7.3

EXERCISE 7.4

Q 1. Determine the ratio in which the line 2x + y – 4 = 0 divides the line

segment joining the points A(2, – 2) and B(3, 7).

Explanation:

1) The point P(x, y) divides the segment joining the points A(x₁, y₁) and B(x₂, y₂) in

the ratio m:n, so we have,

x = (mx₂ + nx₁)/(m + n)

y = (my₂ + ny₁)/(m + n)

2) In general P(x, y) = ((mx₂ + nx₁)/(m + n), (my₂ + ny₁)/(m + n)) 

Solution:

1) Here line 2x + y – 4 = 0 divides line segment AB with A(2, -2) and B(3, 7) 

in the ratio k:1.

2) So, by section formula, 

x = (3k + 2)/(k + 1) and y = (7k – 2)/(k + 1) ---------- equation 1

3) Put the values of x and y from equation 1 in 2x + y – 4 = 0, we get,

 2x + y – 4 = 0

2[(3k + 2)/(k + 1)] + [(7k – 2)/(k + 1)] – 4 = 0

2[(3k + 2)] + [(7k – 2)] – 4(k + 1) = 0
6k + 4 + 7k – 2 – 4k – 4 = 0
6k + 7k – 4k – 2 = 0
6k + 3k – 2 = 0
9k = 2
k = 2/9

4) So the ratio is 2:9.

Q 2. Find a relation between x and y if the points (x, y), (1, 2), and (7, 0) are

collinear.

Explanation:

1) Let ABC be any triangle whose vertices are A(x₁, y₁), B(x₂, y₂) and C(x₃, y₃).

Area of a triangle = (1/2)[x₁(y₂ – y₃) + x₂(y₃ – y₁) + x₃(y₁ – y₂)]

2) When the points are collinear, then the area of the triangle formed by these

points is always zero.

Solution:

1) Let us name these coordinates as A(x, y), B(1, 2) and C(7, 0), so here

2) According to the problem,

a) x₁ = x
b) y₁ = y

c) x₂ = 1
d) y₂ = 2

e) x₃ = 7
f) y₃ = 0

3) We know that the area of the triangle ABC is as given below,

Area of a triangle = (1/2)[x₁(y₂ – y₃) + x₂(y₃ – y₁) + x₃(y₁ – y₂)]
Area of a triangle = (1/2)[(x)(2 – 0) + (1)(0 – y) + (7)((y) – 2)]

Area of a triangle = (1/2)[2x – y + (7)(y – 2)]

Area of a triangle = (1/2)[2x – y + 7y – 14]

Area of a triangle = (1/2)[2x + 6y – 14]

Area of a triangle = [x + 3y – 7] --------- equation 1

4) As the points are collinear, then the area of the triangle formed by these

points is always zero. So, from equation 1 we have,

x + 3y – 7 = 0

5) So the relation between x and y is x + 3y – 7 = 0.

Q 3. Find the center of a circle passing through the 

points (6, – 6), (3, – 7), and (3, 3).

Explanation:

1) The distance between A(x_1, y₁) and B(x_2, y₂) can be calculated as:

(AB) = √[(x₁ – x₂)² + (y₁ – y₂)²]

Solution:

1) O(x, y) is the centre of a circle.

2) Points A(3, 3), B(3, - 7), and C(6, - 6) are the points on the circle.

3) So, all the radii are the same, i.e. OA = OB = OC ---------- equation 1

4) First we will find OA, where O(x, y) and A(3, 3),

a) x₁ = x

a) y₁ = y

a) x₂ = 3
a) y₂ = 3 

5) We know that:

(OA) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(OA) = √[(x – 3)² + (y – 3)²] ---------- equation 2

6) Now we will find OB, where O(x, y) and B(3, - 7),

a) x₁ = x

a) y₁ = y

a) x₂ = 3
a) y₂ = – 7 

7) We know that:

(OB) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(OB) = √[(x – 3)² + (y – (– 7)²]

(OB) = √[(x – 3)² + (y + 7)²] ---------- equation 3

8) First we will find OC, where O(x, y) and C(6, - 6),

a) x₁ = x

a) y₁ = y

a) x₂ = 6
a) y₂ = - 6 

9) We know that:

(OC) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(OC) = √[(x – 6)² + (y – (– 6))²]

(OC) = √[(x – 6)² + (y + 6)²] ---------- equation 4

10) from equations 1, 2, and 3, we have,

OA = OB

√[(x – 3)² + (y – 3)²] = √[(x – 3)² + (y + 7)²]
[(x – 3)² + (y – 3)²] = [(x – 3)² + (y + 7)²]
[(y + 7)² – (y – 3)²] = [(x – 3)² – (x – 3)²]
[(y + 7)² – (y – 3)²] = 0
[(y + 7) – (y – 3)] [(y + 7) + (y – 3)]  = 0

[7 + 3] [(2y + 4)]  = 0
2[10] [(y + 2)]  = 0
(y + 2)  = 0
y = – 2 ---------- equation 5

11) from equations 1, 2, and 3, we have,

OA = OC

√[(x – 3)² + (y – 3)²] = √[(x – 6)² + (y + 6))²]
[(x – 3)² + (y – 3)²] = [(x – 6)² + (y + 6)²]
[(x – 3)² – (x – 6)²] = [(y + 6)² – (y – 3)²]
[(x – 3) – (x – 6)] [(x – 3) + (x – 6)] = [(y + 6) – (y – 3)] [(y + 6) + (y – 3)]

[x – 3 – x + 6)] [x – 3 + x – 6] = [y + 6 – y + 3] [y + 6 + y – 3)]

[3] [2x – 9] = [9] [2y + 3)]
[2x – 9] = [3] [2y + 3)]
2x – 9 = 6y + 9
2x – 6y = 18

x – 3y = 9 ---------- equation 6

12) From equations 5 and 6, we have,

x – 3y = 9

x – 3 (– 2) = 9
x + 6 = 9
x = 9 – 6
x = 3

13) So the coordinates of the center are O(3, – 2)

Q 4. The two opposite vertices of a square are (–1, 2) and (3, 2). Find the

coordinates of the other two vertices. 

Solution:

1) According to the problem, here B(x₁, y₁), and A(- 1, 2), so,

a) x₁ = x₁

a) y₁ = y₁

a) x₂ = - 1
a) y₂ = 2 

2) We know that:

(BA) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(BA) = √[(x₁ – (– 1))² + (y₁ – 2)²]

(BA) = √[(x₁ + 1)² + (y₁ – 2)²] ----------- equation 1

3) Now we will find BC with B(x₁, y₁), and C(3, 2), so,

a) x₁ = x₁

a) y₁ = y₁

a) x₂ = 3
a) y₂ = 2 

4) Using the distance formula, we have:

(BC) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(BC) = √[(x₁ – 3)² + (y₁ – 2)²] ----------- equation 2

5) As BA and BC are the sides of the square,

BA = BC ----------- equation 3

6) From equations 1, 2, and 3, we have,

BA = BC

√[(x₁ + 1)² + (y₁ – 2)²] = √[(x₁ – 3)² + (y₁ – 2)²]
[(x₁ + 1)² + (y₁ – 2)²] = [(x₁ – 3)² + (y₁ – 2)²]
(x₁ + 1)² = (x₁ – 3)²
x₁² + 2x₁ + 1 = x₁² – 6x₁ + 9

2x₁ + 1 = – 6x₁ + 9
2x₁ + 6x₁ = 9 – 1
2x₁ + 6x₁ = 8
8x₁ = 8
x₁ = 8/8
x₁ = 1 ----------- equation 3

7) So here, the coordinates of the point  B are B(1, y₁)

8) In ∆ ABC, using Pythagoras' theorem, and from equations 1, 2, and 3, 

we have, A(– 1, 2), B(1, y₁), C(3, 2)

(BA)² + (BC)² = (AC)²

(BA)² + (BC)² = (AC)²

[(1 – (– 1))² + (y₁ – 2)²] + [(1 – 3)² + (y₁ – 2)²] = [(– 1 – 3)² + (2 – 2)²]

[(1 + 1))² + (y₁ – 2)²] + [(– 2)² + (y₁ – 2)²] = [(– 4)² + (0)²]

[(2)² + (y₁ – 2)²] + [(– 2)² + (y₁ – 2)²] = [(– 4)²]
[4 + (y₁ – 2)²] + [4 + (y₁ – 2)²] = [16]
8 + 2(y₁ – 2)² = 16
2(y₁ – 2)² = 16 – 8
2(y₁ – 2)² = 8
(y₁ – 2)² = 4
y₁ – 2 = ± 2

y₁ = 2 ± 2
y₁ = 2 + 2 or y₁ = 2 – 2
y₁ = 4 or y₁ = 0

9) So the coordinates of B will be B(1, 4) or B(1, 0).

10) Now we can find the coordinates of point D(x₂, y₂), using the midpoint form.

11) Point O(x, y) is the midpoint of segment AC with A(– 1, 2) and C(3, 2), so

O(x, y) = ((– 1 + 3)/2, (2 + 2)/2)

O(x, y) = ((2)/2, (4)/2)

O(x, y) = (1, 2)

12) Case 1: Taking B(1, 4)

Point O(1, 2) is the midpoint of segment BD with B(1, 4) and D(x₂, y₂), so

O(1, 2) = ((1 + x₂)/2, (4 + y₂)/2)

(1 + x₂)/2 = 1, and (4 + y₂)/2 = 2

(1 + x₂) = 2, and (4 + y₂) = 4

x₂ = 2 – 1, and y₂ = 4 – 4

x₂ = 1, and y₂ = 0

13) So the coordinates of D will be D(1, 0)

14) Case 2: Taking B(1, 0)

Point O(1, 2) is the midpoint of segment BD with B(1, 0) and D(x₂, y₂), so

O(1, 2) = ((1 + x₂)/2, (0 + y₂)/2)

(1 + x₂)/2 = 1, and (0 + y₂)/2 = 2

(1 + x₂) = 2, and (0 + y₂) = 4

x₂ = 2 – 1, and y₂ = 4 – 0

x₂ = 1, and y₂ = 4

15) So the coordinates of D will be D(1, 4)

Q 5. The Class X students of a secondary school in Krishinagar have been allotted a rectangular plot of land for their gardening activity. Saplings of Gulmohar are planted on the boundary at a distance of 1m from each other. There is a triangular grassy lawn in the plot as shown in the following Fig. The students are to sow seeds of flowering plants on the remaining area of the plot. 

(i) Taking A as origin, find the coordinates of the vertices of the triangle.

(ii) What will be the coordinates of the vertices of ∆ PQR if C is the origin? Also calculate the areas of the triangles in these cases. What do you observe?

Solution:

1) By taking A as a center, from the figure, the coordinates of P, Q, and R will be:

P(4, 6), Q(3, 2), and R(6, 5)

2) According to the problem,

a) x₁ = 4
b) y₁ = 6

c) x₂ = 3
d) y₂ = 2

e) x₃ = 6
f) y₃ = 5

3) We know that the area of the triangle PQR is as given below,

Area of ∆ PQR = (1/2)[x₁(y₂ – y₃) + x₂(y₃ – y₁) + x₃(y₁ – y₂)]
Area of ∆ PQR = (1/2)[(4)(2 – 5) + (3)(5 – 6) + (6)(6 – 2)]

Area of ∆ PQR = (1/2)[(4)(– 3) + (3)(– 1) + (6)(4)]

Area of ∆ PQR = (1/2)[(– 12) + (– 3) + (24)]

Area of ∆ PQR = (1/2)[– 15 + 24]

Area of ∆ PQR = (1/2)(9)

Area of ∆ PQR = 9/2 square units.------- equation 1

4) By taking C as a center, from the figure, the coordinates of P, Q, and R will be:

P(12, 2), Q(13, 6), and R(10, 3)

5) According to the problem,

a) x₁ = 12
b) y₁ = 2

c) x₂ = 13
d) y₂ = 6

e) x₃ = 10
f) y₃ = 3

6) We know that the area of the triangle PQR is as given below,

Area of ∆ PQR = (1/2)[x₁(y₂ – y₃) + x₂(y₃ – y₁) + x₃(y₁ – y₂)]
Area of ∆ PQR = (1/2)[(12)(6 – 3) + (13)(3 – 2) + (10)(2 – 6)]

Area of ∆ PQR = (1/2)[(12)(3) + (13)(1) + (10)(– 4)]

Area of ∆ PQR = (1/2)[(36) + (13) + (– 40)]

Area of ∆ PQR = (1/2)[49 – 40]

Area of ∆ PQR = (1/2)(9)

Area of ∆ PQR = 9/2 square units.------- equation 2

7) The area of a triangle PQR will be the same even if it is located anywhere on the

graph.

Q 6. The vertices of a ∆ ABC are A(4, 6), B(1, 5) and C(7, 2). A line is drawn to

intersect sides AB and AC at D and E respectively, such that 

AD/AB = AE/AC = 1/4. Calculate the area of the ∆ ADE and compare it with the area of ∆ ABC. (Recall Theorem 6.2 and Theorem 6.6).

Solution:

1) First we will find the coordinates of point D.

2) As, AD/AB = 1/4, so AD/DB = 1/3.

3) Here, point D(x, y) divides the segment AB with A(4, 6) and B(1, 5) in the ratio 1:3

we now, will find x coordinate

x = (1 (1) + 3 (4))/(1 + 3)

x = (1 + 12)/(4)

x = (13)/(4)

x = 13/4 --------- equation 1

we now, will find y coordinate

y = (1 (5) + 3 (6))/(1 + 3)
y = (5 + 18)/(4)
y = (23)/(4)
y = 23/4 --------- equation 2

4) From equations 1 and 2, x = 13/4 and y = 23/4. So, the coordinates of 

D are D(13/4, 23/4).

5) Now we will find the coordinates of point E.

6) As, AE/AC = 1/4, so AE/EC = 1/3.

7) Point E(x, y) divides the segment AC with A(4, 6) and C(7, 2) in the ratio 1:3

we now, will find x coordinate

x = (1 (7) + 3 (4))/(1 + 3)

x = (7 + 12)/(4)

x = (19)/(4)

x = 19/4 --------- equation 3

we now, will find y coordinate

y = (1 (2) + 3 (6))/(1 + 3)
y = (2 + 18)/(4)
y = (20)/(4)
y = 5 --------- equation 4

8) From equations 3 and 4, x = 19/4 and y = 5. So, the coordinates of 

E are E(19/4, 5).

9) Now we will find the area of ∆ ADE with A(4, 6), D(13/4, 23/4), and E(19/4, 5).

10) According to the problem,

a) x₁ = 4
b) y₁ = 6

c) x₂ = 13/4
d) y₂ = 23/4

e) x₃ = 19/4
f) y₃ = 5

11) We know that the area of the triangle ADE is as given below,

Area of ∆ ADE = (1/2)[x₁(y₂ – y₃) + x₂(y₃ – y₁) + x₃(y₁ – y₂)]
Area of ∆ ADE = (1/2)[(4)((23/4) – 5) + (13/4)(5 – 6) + (19/4)(6 – (23/4)]

Area of ∆ ADE = (1/2)[(4((23 – 20)/4) + (13/4)(– 1) + (19/4)((24 – 1)/4)]

Area of ∆ ADE = (1/2)[(4(3/4)) + (– 13/4) + (19/4)(1/4)]

Area of ∆ ADE = (1/2)[3 – 13/4 + 19/16]

Area of ∆ ADE = (1/2)((48 – 52 + 19)/16)

Area of ∆ ADE = (1/2)((67 – 52)/16)
Area of ∆ ADE = (1/2)((15)/16)

Area of ∆ ADE = 15/32 square units.------- equation 5

12) Now we will find the area of ∆ ABC with A(4, 6), B(1, 5), and E(7, 2).

13) According to the problem,

a) x₁ = 4
b) y₁ = 6

c) x₂ = 1
d) y₂ = 5

e) x₃ = 7
f) y₃ = 2

14) We know that the area of the triangle ABC is as given below,

Area of ∆ ABC = (1/2)[x₁(y₂ – y₃) + x₂(y₃ – y₁) + x₃(y₁ – y₂)]
Area of ∆ ABC = (1/2)[(4)(5 – 2) + (1)(2 – 6) + (7)(6 – 5)]

Area of ∆ ABC = (1/2)[(4(3) + (1)(– 4) + (7)(1)]

Area of ∆ ABC = (1/2)[(12)) + (– 4) + (7)]

Area of ∆ ABC = (1/2)[12 + 3]

Area of ∆ ABC = (1/2)(15)

Area of ∆ ABC = 15/2

Area of ∆ ABC = 15/2 square units.------- equation 6

15) Here we will find the ratio of the areas of these two triangles.

(Area of ∆ ADE)/(Area of ∆ ADE) = (15/32)/(15/2)

(Area of ∆ ADE)/(Area of ∆ ADE) = (15)(2)/(15)(32)

(Area of ∆ ADE)/(Area of ∆ ADE) = 2/32

(Area of ∆ ADE)/(Area of ∆ ADE) = 1/16

16) Hence, the ratio of the area of ∆ ADE to the area of ∆ ABC = 1:16.

Q 7. Let A (4, 2), B(6, 5) and C(1, 4) be the vertices of ∆ ABC.

(i) The median from A meets BC at D. Find the coordinates of the point D.

(ii) Find the coordinates of the point P on AD such that AP:PD = 2:1

(iii) Find the coordinates of points Q and R on medians BE and CF

respectively such that BQ : QE = 2 : 1 and CR : RF = 2 : 1.

(iv) What do you observe?

[Note : The point which is common to all the three medians is called the centroid and this point divides each median in the ratio 2 : 1.]

(v) If A(x₁, y₁), B(x₂, y₂) and C(x₃, y₃) are the vertices of ∆ ABC, find the

coordinates of the centroid of the triangle. 

Solution:

Let A (4, 2), B(6, 5) and C(1, 4) be the vertices of ∆ ABC.

(i) The median from A meets BC at D. Find the coordinates of the point D.

1) The point D(x, y) the mid-point of the segment joining the points 

B(6, 5), C(1, 4), so the coordinates of point D will be:

D(x, y) = ((6 + 1)/2, (5 + 4)/2)

D(x, y) = ((7)/2, (9)/2)

D(x, y) = (7/2, 9/2) -------- equation 1

2) The coordinates of point D are D(7/2, 9/2).

Let A (4, 2), B(6, 5) and C(1, 4) be the vertices of ∆ ABC.

(ii) Find the coordinates of the point P on AD such that AP:PD = 2:1

1) The point P(x, y) divides the segment joining the points A(4, 2) and D(7/2, 9/2) in

the ratio 2 : 1, so,

we now, will find x coordinate

x = (2 (7/2) + 1 (4))/(2 + 1)

x = (7 + 4)/(3)

x = (11)/(3)

x = 11/3 --------- equation 1

we now, will find y coordinate

y = (2 (9/2) + 1 (2))/(2 + 1)
y = (9 + 2)/(3)
y = (11)/(3)
y = 11/3 --------- equation 2

2) From equations 1 and 2, x = 11/3 and y = 11/3. So, the coordinates of 

P are P(11/3, 11/3). 

Let A (4, 2), B(6, 5) and C(1, 4) be the vertices of ∆ ABC.

(iii) Find the coordinates of points Q and R on medians BE and CF

respectively such that BQ : QE = 2 : 1 and CR : RF = 2 : 1.

1) First we will find the coordinates of midpoint E(x, y) of AC with A(4, 2), C(1, 4).

E(x, y) = ((4 + 1)/2, (2 + 4)/2)

E(x, y) = ((5)/2, (6)/2)
E(x, y) = (5/2, 3)

2) Now find the coordinates of point Q(x₁, y₁) which divides segment joining the

points B(6, 5) and E(5/2, 3) in the ratio 2:1.

we now, will find x coordinate

x = (2 (5/2) + 1 (6))/(2 + 1)
x = (5 + 6)/(3)
x = (11)/(3)
x = 11/3 --------- equation 1

we now, will find y coordinate

y = (2 (3) + 1 (5))/(2 + 1)

y = (6 + 5)/(3)

y = (11)/(3)
y = 11/3 --------- equation 2

3) From equations 1 and 2, x = 11/3 and y = 11/3. So, the coordinates of 

Q are Q(11/3, 11/3).

4) Now we will find R which divides CF in 2:1.

5) First we will find the coordinates of midpoint F(x₁, y₁) of AB with A(4, 2), B(6, 5).

F(x₁, y₁) = ((4 + 6)/2, (2 + 5)/2)

F(x₁, y₁) = ((10)/2, (7)/2)
F(x₁, y₁) = (5, 7/2)

6) Now find the coordinates of point R(x, y) which divides segment joining the

points C(1, 4) and F(5, 7/2) in the ratio 2:1.

we now, will find x coordinate

x = (2 (5) + 1 (1))/(2 + 1)
x = (10 + 1)/(3)
x = (11)/(3)
x = 11/3 --------- equation 3

we now, will find y coordinate

y = (2 (7/2) + 1 (4))/(2 + 1)

y = (7 + 4)/(3)

y = (11)/(3)
y = 11/3 --------- equation 4

7) From equations 3 and 4, x = 11/3 and y = 11/3. So, the coordinates of 

R are R(11/3, 11/3).

(iv) What do you observe?

[Note : The point which is common to all the three medians is called the centroid and this point divides each median in the ratio 2 : 1.] 

1) From the above 2 sub-questions, we can say that points P, Q, and R are the

same. So we can say that all medians of the triangles are passing through one point.

(v) If A(x₁, y₁), B(x₂, y₂) and C(x₃, y₃) are the vertices of ∆ ABC, find the

coordinates of the centroid of the triangle.

1) Centroide of the ∆ ABC with A(x₁, y₁), B(x₂, y₂) and C(x₃, y₃) are:

P(x, y) = ((x₁ + x₂ + x₃)/3, (y₁ + y₂ + y₃)/3).

Q 8. ABCD is a rectangle formed by the points A(–1, –1), B(– 1, 4), C(5, 4) and

D(5, – 1). P, Q, R and S are the mid-points of AB, BC, CD, and DA respectively. Is the quadrilateral PQRS a square? a rectangle? or a rhombus? Justify your answer.

Solution:

1) P(x, y) is the midpoint of segment AB with A(-1, -1), B(-1, 4),

P(x, y) = ((-1 + (-1)/2, (-1 + 4)/2)

P(x, y) = ((-2)/2, (3)/2)
P(x, y) = (-1, 3/2)

2) Q(x, y) is the midpoint of segment BC with B(-1, 4), C(5, 4)

Q(x, y) = ((-1 + 5)/2, (4 + 4)/2)

Q(x, y) = ((4)/2, (8)/2)
Q(x, y) = (2, 4)

3) R(x, y) is the midpoint of segment CD with C(5, 4), D(5, -1),

R(x, y) = (5 + 5)/2, (4 -1)/2)

R(x, y) = (10/2, (3)/2)
R(x, y) = (5, 3/2)

4) S(x, y) is the midpoint of segment DA with D(5, -1), A(-1, -1)

S(x, y) = (5 - 1)/2, (-1 -1)/2)

S(x, y) = (4/2, (-2)/2)
S(x, y) = (2, -1)

5) Now we will find PQ with P(-1, 3/2), Q(2, 4)

a) x₁ = -1

b) y₁ = 3/2

c) x₂ = 2

d) y₂ = 4 

6) Use the distance formula to get PQ:

(PQ) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(PQ) = √[(-1 - 2)² + (3/2 - 4)²]

(PQ) = √[(- 3)² + (- 5/2)²] 

(PQ) = √[9 + (25/4)]
(PQ) = √[(36 + 25)/4]

(PQ) = √[(61)/4]

(PQ) = √61/2 ------------- equation 1

7) Now we will find QR with Q(2, 4), R(5, 3/2)

a) x₁ = 2

b) y₁ = 4

c) x₂ = 5

d) y₂ = 3/2 

8) Use the distance formula to get QR:

(QR) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(QR) = √[(2 – 5)² + (4 – 3/2)²]

(QR) = √[(– 3)² + (5/2)²] 

(QR) = √[9 + 25/4]

(QR) = √[(36 + 25)/4]

(QR) = √[(61)/4]

(QR) = √61/2 ------------- equation 2

9) Now we will find RS with R(5, 3/2), S(2, -1)

a) x₁ = 5

b) y₁ = 3/2

c) x₂ = 2

d) y₂ = -1 

10) Use the distance formula to get RS:

(RS) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(RS) = √[(5 – 2)² + (3/2 – (-1)²]

(RS) = √[(3)² + (3/2 + 1)²]

(RS) = √[(3)² + (3 + 2)/2)²]

(RS) = √[(3)² + (5)/2)²] 

(RS) = √[9 + 25/4]

(RS) = √[(36 + 25)/4]

(RS) = √[(61)/4]

(RS) = √61/2 ------------- equation 3

11) Now we will find SP with S(2, -1), P(-1, 3/2)

a) x₁ = 2

b) y₁ = -1

c) x₂ = -1

d) y₂ = 3/2 

12) Use the distance formula to get SP:

(SP) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(SP) = √[(2 – (-1))² + (-1 – 3/2)²]

(SP) = √[(3)² + ((-2 -3)/2)²]

(SP) = √[(3)² + (-5)/2)²]

(SP) = √[9 + 25/4]

(SP) = √[(36 + 25)/4]

(SP) = √[(61)/4]

(SP) = √61/2 ------------- equation 4

13) From equations 1, 2, 3, and 4, we have,

PQ = QR = RS = SP ------------- equation 5

14) Now we will find PR with P(-1, 3/2), and R(5, 3/2)

a) x₁ = -1

b) y₁ = 3/2

c) x₂ = 5

d) y₂ = 3/2 

15) We know that:

(PR) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(PR) = √[(-1 – 5)² + (3/2 – 3/2)²]

(PR) = √[(– 6)² + (0)²] 

(PR) = √[36]
(PR) = 6 ------------- equation 6

16) Now we will find QS with Q(2, 4), and S(2, -1)

a) x₁ = 2

b) y₁ = 4

c) x₂ = 2

d) y₂ = -1 

17) We know that:

(QS) = √[(x₁ – x₂)² + (y₁ – y₂)²]

(QS) = √[(2 – 2)² + (4 – (-1))²]

(QS) = √[(0)² + (5)²] 

(QS) = √[25]
(QS) = 5 ------------- equation 7

15) From equations 6 and 7, we have,

PR ≠ QS ------------- equation 8

16) From equations 5 and 8, we have,

all sides and diagonals are equal, so ABCD is the rhombus.

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