Math Olympiad Test: Coordinate Geometry- 2 - Class 10 MCQ

B  (-3, 1) C (0, -2)
Let the third vertex be A (x, y)
G = (0, 0)
= 0 ⇒ x = 3 and 
⇒ y - 1 = 0 ⇒ y = 1
A (3, 1)

Let P (3, 3) be the circumcentre of ΔABC, C(x, y) be the third vertex

PA = PB = PC
PA² = PB² = PC²
PA² = PC²
⇒ (4 - 3)² + (6 - 3)²
= (x - 3)² + (y - 3)²
⇒ 1 + 9 = x² + 9 - 6x + y² + 9 - 6y
⇒ x² + y² - 6x - 6y + 8 = 0 ...(1)
and PB² = PC²
⇒ (0 - 3)² + (4, -3)² = (x - 3)² + (y - 3)²
⇒ 9 + 1 = x² + 9 - 6x + y² - 6y + 9
Equations (1) and (2) are identical
(x - 3)² + (y - 3 )² = 10
So, (6, 2) is the required point.

Let the ratio be k : 1

⇒ 6k = 3
⇒ k = 3/6 = 1/2

Area of triangle 
= 1/2 [x₁ (y₂ - y₃) + x₂ (y₃ -y₁) + x₃ (y₁ - y₂) 
= 1/2 [2 (1 − 2) + (−2) (2 + 2) + 5 (−2 −1)]
= 1/2 [−2−8 −15] = 25/2 = 12.5 sq. units

Let the other end be (x, y)

Mid-point of (4, 3) and (-4, -3)

Let P(x, y) be the circumcentre
PA = PB = PC
⇒ PA² = PB²
⇒ (x - 2)² + (y + 2)²
= (x - 8)² + (y - 6)²
⇒ x² + 4 - 4x + y² + 4 - 4y
= x²+ 64 - 16x + y² + 36 - 12y
⇒ - 4x + 16x + 4y + 12y = 100 - 8
⇒ 12x + 16y = 92 ⇒ 3x+ 4y = 23 ...(1)
and PB² = PC²
⇒ (x - 8)² + (y - 6)² = (x - 8)² + (y + 2)²
⇒ y² + 36 - 12y = y² + 4 + 4y
⇒ 16y = 32 ⇒ y = 2
3x = 23 - 4 ⇒ 2 = 15 ⇒ x = 5
P (5, 2)
∴ PA

Here (x -a)² + (y - 0)² = 2c²
x² + a² - 2ax + y² = 2c²
and (x + a)² + (y - 0)² = 2c²
⇒ x² + a² + 2ax + y² + 2c²
Now x² + a² - 2ax + y² = x² + a² + 2ax + y²
⇒ 4ax = 0 ⇒ x = 0 or a = 0
(x - 0)² + y² = 2c²
⇒ x⁰ + y² = 2c²

Distance of the point (4, 7) from (0, y)
= x co-ordinate
= 4

(3 - 0)² + (0 - y)² = 52
9 + y² = 25 ⇒ y² = 16 ⇒ y = ± 4
y is positive, ∴ y = 4

The given points are A (0,-2), B(3,1), C(0,4) and D(-3,1)

Thus, diagonal PR = diagonal QS 
Therefore, the given points from a square. 

OP = 5
⇒ OP² = 25
⇒ (x - 0)² + (4 - 0)² = 25
⇒ x² + 16 = 25
⇒ x² = 9 ⇒ x = ± 3