If \[ a\cos2x+b\sin2x=c \] has roots \(\alpha\) and \(\beta\), prove that

Given,

\[ a\cos2x+b\sin2x=c \]

Using

\[ \cos2x=\frac{1-\tan^2x}{1+\tan^2x} \]

and

\[ \sin2x=\frac{2\tan x}{1+\tan^2x} \]

Substituting,

\[ a\left( \frac{1-\tan^2x}{1+\tan^2x} \right) + b\left( \frac{2\tan x}{1+\tan^2x} \right) = c \]

Multiplying throughout by \[ 1+\tan^2x \]

\[ a(1-\tan^2x)+2b\tan x = c(1+\tan^2x) \]

\[ a-a\tan^2x+2b\tan x = c+c\tan^2x \]

Rearranging,

\[ (a+c)\tan^2x-2b\tan x+(c-a)=0 \]

This is a quadratic equation in \[ \tan x \]

Since \(\alpha\) and \(\beta\) are roots,

\[ \tan\alpha \quad \text{and} \quad \tan\beta \]

are roots of

\[ (a+c)t^2-2bt+(c-a)=0 \]

Using the sum of roots formula,

\[ \tan\alpha+\tan\beta = \frac{-(-2b)}{a+c} \]

\[ \boxed{ \tan\alpha+\tan\beta = \frac{2b}{a+c} } \]

Using the product of roots formula,

\[ \tan\alpha\tan\beta = \frac{c-a}{a+c} \]

\[ \boxed{ \tan\alpha\tan\beta = \frac{c-a}{c+a} } \]

Now,

\[ \tan(\alpha+\beta) = \frac{ \tan\alpha+\tan\beta }{ 1-\tan\alpha\tan\beta } \]

Substituting the obtained values,

\[ = \frac{ \frac{2b}{a+c} }{ 1-\frac{c-a}{c+a} } \]

\[ = \frac{ \frac{2b}{a+c} }{ \frac{(a+c)-(c-a)}{a+c} } \]

\[ = \frac{ \frac{2b}{a+c} }{ \frac{2a}{a+c} } \]

\[ = \frac{b}{a} \]

Therefore,

\[ \boxed{ \tan(\alpha+\beta)=\frac{b}{a} } \]

Hence proved.