Using factor theorem, factorize the polynomial $x^{3} - 6 x^{2} + 11 x - 6$ .

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Solution

Let f(x) = $x^{3} - 6 x^{2} + 11 x - 6$
The constant term in f(x) is equal to -6 and factors of -6 are $\pm 1, \pm 2, \pm 3, \pm 6.$
Putting x = 1 in f(x), we have
$f (1) = 1^{3} - 6 \times 1^{2} + 11 \times 1 - 6$
= 1 - 6 + 11 - 6 = 0
$∴$ (x - 1) is a factor of f(x)
Similarly, x - 2 and x - 3 are factors of f(x)
Since f(x) is a polynomial of degree 3. So, it can not have more than three linear factors.
Let f(x) = k (x - 1) (x - 2) (x - 3). Then,
$x^{3} - 6 x^{2} + 11 x - 6 = k (x - 1) (x - 2) (x - 3)$
Putting x = 0 on both sides, we get
-6 = k (0 - 1) (0 - 2) (0 - 3)
$\Rightarrow$ -6 = -6 k $\Rightarrow$ k = 1
Putting k = 1 in f(x) = k (x - 1) (x - 2) (x - 3), we get
f(x) = (x - 1) (x - 2) (x - 3)
Hence, $x^{3} - 6 x^{2} + 11 x - 6 = (x - 1) (x - 2) (x - 3)$

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