Solve the following equation by factorization: 4x^2 – 4ax + (a^2 – b^2) = 0, where a, b ∈ R [Hint: Given equation may be written as: 4x^2 – 2(a + b)x – 2(a – b)x + (a^2 – b^2) = 0]

Solve the following equation by factorization:

4x² – 4ax + (a² – b²) = 0, where a, b ∈ R

[Hint: Given equation may be written as: 4x² – 2(a + b)x – 2(a – b)x + (a² – b²) = 0]

बेरीज

Given,

⇒ 4x² – 4ax + (a² – b²) = 0

⇒ (4x² – 4ax + a²) – b² = 0

⇒ [(2x)² – 2 × a × 2x + (a)²] – b² = 0

⇒ (2x – a)² – b² = 0

⇒ (2x – a + b)(2x – a – b) = 0

⇒ (2x – a + b) = 0 or (2x – a – b) = 0 ...[Using zero-product rule]

⇒ 2x = a – b or 2x = a + b

⇒ `x = (a - b)/2` or `x = (a + b)/2`

Hence, `x = {(a + b)/2, (a - b)/2}`.

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पाठ 5: Quadratic Equation - EXERCISE 5A [पृष्ठ ५३]

पाठ 5 Quadratic Equation
EXERCISE 5A | Q 28. | पृष्ठ ५३