If a =	? 3 - ? 2	, b =	? 3 + ? 2	, then the value of
	?3 + ?2		?3 - ?2

	a 2	+	b 2	is :
	b		a

Given in the question,
Points (a, b) and [(a + 3), (b + k)] will satisfy the equation x ? 3y + 7 = 0.
Points (a, b) in the equation x ? 3y + 7 = 0, We will get
? a ? 3b + 7 = 0 ...................... (i)
Points (a + 3), (b + k) in the equation x ? 3y + 7 = 0, We will get
a + 3 ? 3 (b + k) + 7 = 0
? a + 3 ? 3b ? 3 k + 7 = 0 (Rearrange the equation)
? a ? 3b + 7 + 3 ? 3 k = 0 (a ? 3b + 7 = 0 , Put the value from Equation (1) ), We will get
? 0 + 3 ? 3k = 0
? 3k = 3
? k = 1

According to question ,
PQ = ?( 5 - 2 )² + ( 4 - 0 )²
PQ = ?9 + 16 = 5
? Area of circle = ?r²
Area of circle = 25 ? sq. units

As we know that given in question,
ax + by = 6 ........................ (i)
bx ? ay = 2 ........................ (ii)
On squaring the both equation and adding,
a² x² + b² y² + 2abxy + b² x² + a² y² ? 2abxy = 36 + 4
? x² (a² + b²) + y² (a² + b²) = 40
? (a² + b²) (x² + y²) = 40
As per given question, x² + y² = 40 , Put this value in above equation, we will get
? (a² + b²) × 4 = 40
? a² + b² = 10

As we know from the formula,
A³ + B³ + C³ = ( A + B + C) (A² + B² + C² ? AB ? BC ? CA) + 3ABC
If A + B + C = 0 then,
A³ + B³ + C³ = 0 x (A² + B² + B² ? AB ? BC ? CA) + 3ABC
A³ + B³ + C³ = 0 + 3ABC
A³ + B³ + C³ - 3ABC= 0
As we know that from given question,
A = a, B = b and C = 1, Put these value in above equation, we will get
a³ + b³ + 1³ - 3 x a x b x 1 = 0
a³ + b³ + 1 - 3ab = 0

Given in the question ,
x - 1 = ?2 + ?3
On squaring both sides ,
x ² ? 2x + 1 = 2 + 3 + 2?6
? x ² - 2x - 4 = 2 ?6
On squaring again,
? x⁴ + 4x² + 16 ? 4x³ ? 8x² + 16x = 24
? x⁴ ? 4x³ ? 4x² + 16x ? 8 = 0
? 2x⁴ ? 8x³ ? 8x² + 32x ? 16 = 0
? 2x⁴ ? 8x³ ? 5x² + 26x ? 28 ? 3x² + 6x + 12 = 0
? 2x⁴ ? 8x³ ? 5x² + 26x ? 28 = 3x² ? 6x ? 12
? 2x⁴ ? 8x³ ? 5x² + 26x ? 28 = 3 (x² ? 2x ? 4)
? 2x⁴ ? 8x³ ? 5x² + 26x ? 28 = 3 x 2?6 = 6 ?6

As per the given question , we have
a² + b² + c² = 2 (a – b –c) –3
⇒ a² + b² + c² = 2a + 2b + 2c + 3 = 0
⇒ a² – 2a + 1 + b² + 2b + 1 + c² + 2c + 1 = 0
⇒ (a –1)² + (b + 1)² + (c + 1)² = 0
[If x² + y² + z² = 0 ⇒ x = 0; y = 0; z = 0]
∴ a – 1 = 0 ⇒ a = 1
b + 1 = 0 ⇒ b = – 1
c + 1 = 0 ⇒ c = – 1
∴ 2a – 3b + 4c = 2 + 3 – 4 = 1