Question:
The roots of $ (x- a) (x - a-1) + (x - a -1) (x - a - 2) + (x - a) (x - a - 2) = 0 , a \in R$ are always
The roots of $ (x- a) (x - a-1) + (x - a -1) (x - a - 2) + (x - a) (x - a - 2) = 0 , a \in R$ are always
Updated On: Jun 23, 2023
- Equal
- Imaginary
- real and distinct
- rational and equal
Hide Solution
Verified By Collegedunia
The Correct Option is C
Solution and Explanation
Given,
$(x - a)(x - a - 1) + (x - a -1) (x - a - 2) + (x - a) (x - a - 2) = 0$
Let $x - a = t, $ then
$ t(t -1) + (t - 1)(t - 2) + t(t - 2) = 0 $
$\Rightarrow \, \, \, t^2 - t + t^2 - 3t + 2 + t^2 - 2t = 0 $
$\Rightarrow \, \, \, 3t^2 - 6t + 2 = 0$
$\Rightarrow \, \, \, t = \frac{6 \pm \, \overline{36 - 24}}{2 \, 3} = \frac{6 \pm 2 \, \bar{3}}{2 \, 3} $
$\Rightarrow \, \, \, x - a = \frac{3 \pm \, \bar{3}}{3}$
$\Rightarrow \, \, \, x = a + \frac{3 \pm \, \bar{3}}{3} $
Hence, $x$ is real and distinct.
$(x - a)(x - a - 1) + (x - a -1) (x - a - 2) + (x - a) (x - a - 2) = 0$
Let $x - a = t, $ then
$ t(t -1) + (t - 1)(t - 2) + t(t - 2) = 0 $
$\Rightarrow \, \, \, t^2 - t + t^2 - 3t + 2 + t^2 - 2t = 0 $
$\Rightarrow \, \, \, 3t^2 - 6t + 2 = 0$
$\Rightarrow \, \, \, t = \frac{6 \pm \, \overline{36 - 24}}{2 \, 3} = \frac{6 \pm 2 \, \bar{3}}{2 \, 3} $
$\Rightarrow \, \, \, x - a = \frac{3 \pm \, \bar{3}}{3}$
$\Rightarrow \, \, \, x = a + \frac{3 \pm \, \bar{3}}{3} $
Hence, $x$ is real and distinct.
Was this answer helpful?
1
0
Top Questions on Quadratic Equations
- The roots of the quadratic equation \(x^2 + x – p (p + 1) = 0 \)are :
- CBSE Class X - 2024
- Mathematics
- Quadratic Equations
- If $\alpha$ and $\beta$ are the zeroes of the quadratic polynomial $f(x) = 6x^2 + 11x - 10$, find the value of $\frac{\alpha}{\beta} + \frac{\beta}{\alpha}$.
- CBSE Class X - 2024
- Mathematics
- Quadratic Equations
- If the roots of quadratic equation \(4x^2 - 5x + k = 0\) are real and equal, then value of \(k\) is:
- CBSE Class X - 2024
- Mathematics
- Quadratic Equations
- If $\alpha$ and $\beta$ are the zeroes of the quadratic polynomial $f(x) = 6x^2 + 11x - 10$, find the value of $\frac{\alpha}{\beta} + \frac{\beta}{\alpha}$.
- CBSE Class X - 2024
- Mathematics
- Quadratic Equations
- The roots of the quadratic equation \(x^2 + x – p (p + 1) = 0 \)are :
- CBSE Class X - 2024
- Mathematics
- Quadratic Equations
View More Questions
Questions Asked in BITSAT exam
- Minimum value of 5cos(2x) + 5sin(2x)
- BITSAT - 2023
- Trigonometric Functions
- Two capacitors, of capacitance C, are connected in series. If one of them is filled with a dielectric substance K, what is the effective capacitance?
- BITSAT - 2023
- electrostatic potential and capacitance
- What is the dimension of the Gravitational constant?
- BITSAT - 2023
- Gravitation
NaOH is deliquescent
- BITSAT - 2023
- States of matter
- The freezing point of the 0.05 molal solution of non - electrolyte in water is? (kf = 1.86)
- BITSAT - 2023
- Solutions
View More Questions
Concepts Used:
Quadratic Equations
A polynomial that has two roots or is of degree 2 is called a quadratic equation. The general form of a quadratic equation is y=ax²+bx+c. Here a≠0, b, and c are the real numbers.
Consider the following equation ax²+bx+c=0, where a≠0 and a, b, and c are real coefficients.
The solution of a quadratic equation can be found using the formula, x=((-b±√(b²-4ac))/2a)
Two important points to keep in mind are:
- A polynomial equation has at least one root.
- A polynomial equation of degree ‘n’ has ‘n’ roots.
Read More: Nature of Roots of Quadratic Equation
There are basically four methods of solving quadratic equations. They are:
- Factoring
- Completing the square
- Using Quadratic Formula
- Taking the square root