If the lines $a x + y + 1 = 0, x + b y + 1 = 0, and x + y + c = 0 (a, b, c being different from 1)$ are concurrent, then $\frac{1}{1 - a} + \frac{1}{1 - b} + \frac{1}{1 - c}$ is

0

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\frac{1}{a + b + c}

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a + b + c

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Solution

The correct option is B $1$
If the lines $a x + y + 1 = 0, x + b y + 1 = 0, and x + y + c = 0 (a, b, c being different from 1)$ are concurrent, then

$∣ ∣ ∣ ∣ \begin{matrix} a & 1 & 1 1 & b & 1 1 & 1 & c \end{matrix} ∣ ∣ ∣ ∣ = 0$
Performing the operations $R_{2} \to R_{2} - R_{1}$ and $R_{3} \to R_{3} - R_{1}$
$\Rightarrow ∣ ∣ ∣ ∣ \begin{matrix} a & 1 - a & 1 - a 1 & b - 1 & 0 1 & 0 & c - 1 \end{matrix} ∣ ∣ ∣ ∣ = 0 \Rightarrow a (b - 1) (c - 1) - (1 - a) (c - 1) + (1 - a) (- (b - 1)) = 0$
Dividing the equation by $(1 - a) (1 - b) (1 - c)$
$\Rightarrow \frac{a}{1 - a} + \frac{1}{1 - b} + \frac{1}{1 - c} = 0 \Rightarrow - \frac{1 - a - 1}{1 - a} + \frac{1}{1 - b} + \frac{1}{1 - c} = 0 \Rightarrow \frac{1}{1 - a} + \frac{1}{1 - b} + \frac{1}{1 - c} = 1$

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Similar questions

a x + y + 1 = 0, x + b y + 1 = 0

x + y + c = 0

a, b, c

(\frac{1}{1 - a}) + (\frac{1}{1 - b}) + (\frac{1}{1 - c}) =

a x + y + 1 = 0, x + b y + 1 = 0, and x + y + c = 0 (a, b, c being different from 1)

\frac{1}{1 - a} + \frac{1}{1 - b} + \frac{1}{1 - c}

a x + y + 1 = 0, x + b y + 1 = 0

x + y + c = 0

\frac{1}{1 - a} + \frac{1}{1 - b} + \frac{1}{1 - c} =

x + a y + a = 0, b x + y + b = 0, c x + c y + 1 = 0 (a \neq b \neq c \neq 1)

\frac{a}{a - 1} + \frac{b}{b - 1} + \frac{c}{c - 1}

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