z1985+z100+1=0 and z3+2z2+2z+1=0,then number of common roots of equation is

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Concepts Used:

Algebra of Complex Numbers

Algebra of complex numbers

1. Addition of two complex numbers:

Consider z₁ and z₂ are two complex numbers.

For example, z₁ = 3+4i and z₂ = 4+3i

Here a=3, b=4, c=4, d=3

∴z₁+ z₂ = (a+c)+(b+d)i

⇒z₁ + z₂ = (3+4)+(4+3)i

⇒z₁ + z₂ = 7+7i

Properties of addition of complex numbers

Closure law: While adding two complex numbers the resulting number is also a complex number.
Commutative law: For the complex numbers z₁ and z₂ , the commutation can be z₁+ z₂ = z₂+z₁
Associative law: While considering three complex numbers, (z₁+ z₂) + z?₃ = z₁ + (z₂ + z₃)
Additive identity: An Additive identity is nothing but zero complex numbers that go as 0+i0. For every complex number z, z+0 = z.
Additive inverse: Every complex number has an additive inverse denoted as -z.

2. Difference between two complex numbers

It is similar to the addition of complex numbers, such that, z₁ - z₂= z₁ + ( -z₂)

For example: (5+3i) - (2+1i) = (5-2) + (-2-1i) = 3 - 3i

3. Multiplication of complex numbers

Considering the same value of z₁ and z₂ , the product of the complex numbers are

z₁* z₂ = (ac-bd) + (ad+bc) i

For example: (5+6i) (2+3i) = (5×2) + (6×3)i = 10+18i

Properties of Multiplication of complex numbers

Note: The properties of multiplication of complex numbers are similar to the properties we discussed in addition to complex numbers.

Closure law: When two complex numbers are multiplied the result is also a complex number.
Commutative law: z₁* z₂ = z₂ * z₁

Associative law: Considering three complex numbers, (z₁ z₂) z₃ = z₁ (z₂ z₃)

Multiplicative identity: 1+0i is always denoted as 1. This is multiplicative identity. This means that z.1 = z for every complex number z.
Distributive law: Considering three complex numbers, z₁ (z₂ + z₃) =z₁ z₂ + z₁ z₃ and (z₁+ z₂) z₃ = z₁ z₂ + z₂ z₃.

4. Division of complex numbers

If z₁ / z₂ of a complex number is asked, simplify it as z₁ (1/z₂ )

For example: z₁ = 4+2i and z₂ = 2 - i

z₁ / z₂ =(4+2i)×1/(2 - i) = (4+i2)(2/(2²+(-1)² ) + i (-1)/(2²+(-1)² ))

=(4+i2) ((2+i)/5) = 1/5 [8+4i + 2(-1)+1] = 1/5 [8-2+1+41] = 1/5 [7+4i]

\(z^{1985}+z^{100}+1=0\) and \(z^3+2z^2+2z+1=0\), then number of common roots of equation is

The Correct Option is B

Solution and Explanation

Top Questions on Algebra of Complex Numbers