Consistency of a Pair of Linear Equations

Video Explanation

Question

For which value(s) of \( \lambda \), do the pair of linear equations

\[ \lambda x + y = \lambda^2, \qquad x + \lambda y = 1 \]

have (i) no solution (ii) infinitely many solutions (iii) a unique solution?

Solution

Step 1: Write in Standard Form

\[ \lambda x + y – \lambda^2 = 0 \quad (1) \]

\[ x + \lambda y – 1 = 0 \quad (2) \]

Step 2: Identify Coefficients

From equations (1) and (2),

\[ a_1 = \lambda, \quad b_1 = 1, \quad c_1 = -\lambda^2 \]

\[ a_2 = 1, \quad b_2 = \lambda, \quad c_2 = -1 \]

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(i) Condition for No Solution

A pair of linear equations has no solution if

\[ \frac{a_1}{a_2} = \frac{b_1}{b_2} \neq \frac{c_1}{c_2} \]

\[ \frac{\lambda}{1} = \frac{1}{\lambda} \Rightarrow \lambda^2 = 1 \Rightarrow \lambda = \pm 1 \]

Check the third ratio:

\[ \frac{c_1}{c_2} = \lambda^2 \]

For \( \lambda = -1 \):

\[ \frac{a_1}{a_2} = -1, \quad \frac{b_1}{b_2} = -1, \quad \frac{c_1}{c_2} = 1 \]

Hence, the system is inconsistent.

\[ \boxed{\lambda = -1} \]

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(ii) Condition for Infinitely Many Solutions

A pair of linear equations has infinitely many solutions if

\[ \frac{a_1}{a_2} = \frac{b_1}{b_2} = \frac{c_1}{c_2} \]

From above, \( \lambda = 1 \).

Check:

\[ \frac{a_1}{a_2} = 1, \quad \frac{b_1}{b_2} = 1, \quad \frac{c_1}{c_2} = 1 \]

Hence, the equations represent the same line.

\[ \boxed{\lambda = 1} \]

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(iii) Condition for a Unique Solution

A pair of linear equations has a unique solution if

\[ \frac{a_1}{a_2} \neq \frac{b_1}{b_2} \]

\[ \lambda \neq \frac{1}{\lambda} \Rightarrow \lambda^2 \neq 1 \]

\[ \boxed{\lambda \neq \pm 1} \]

Conclusion

(i) No solution for:

\[ \boxed{\lambda = -1} \]

(ii) Infinitely many solutions for:

\[ \boxed{\lambda = 1} \]

(iii) Unique solution for:

\[ \boxed{\lambda \neq \pm 1} \]