TS EAMCET · Maths · Complex Number
If \(\omega\) is the complex cube root of unity and \(\left(\frac{a+b \omega+c \omega^2}{c+a \omega+b \omega^2}\right)^k+\left(\frac{a+b \omega+c \omega^2}{b+a \omega^2+c \omega}\right)^l=2\)
then \(2 k+l\) is always
- A divisible by 2
- B divisible by 6
- C divisible by 3
- D divisible by 5
Answer & Solution
Correct Answer
(C) divisible by 3
Step-by-step Solution
Detailed explanation
\begin{array}{r}\left(\frac{a+b \omega+c \omega^2}{c+a \omega+b \omega^2}\right)^k+\left(\frac{a+b \omega+c \omega^2}{b+a \omega^2+c \omega}\right)^l=2 \\ \left(\frac{\omega\left(a+b \omega+c \omega^2\right)}{\omega\left(c+a \omega+b \omega^2\right)}\right)^k+\left(\frac{a+b…
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