Question

How do you prove `(1+tan^2x)/(1-tan^2x)=1+tan2x.tanx` ?

Answer 1

Check the explanation below

Explanation:

`(1+tan^2x)/(1-tan^2x)`

`=(1color(green)(-tan^2x+tan^2x)+tan^2x)/(1-tan^2x)`

`=(1-tan^2x)/(1-tan^2x)+(2tan^2x)/(1-tan^2x)`

`color(red)(tanx=sinx/cosx`

`=1+(2color(green)(sin^2x/cos^2x))/(1-color(green)(sin^2x/cos^2x)`

`=1+(2sin^2x)/(cos^2x-sin^2x)`

Using the Double Angle Identities

• `color(red)(cos^2x-sin^2x=cos2x)`
• `color(red)(2sinxcosx=sin2x`

`=1+(2sin^2x)/(cos2x)`

`=1+2sin^2x/(cos2x)color(green)(xxcosx/cosx`

`=1+(sinx*(2sinxcosx))/(cosx*cos2x)`

`=1+color(green)(sinx*color(blue)(sin2x))/(color(green)(cosx*color(blue)(cos2x)`

`=1+tan2x*tanx` `color(green)(rarr " R.T.P"`

I hope this was helpful :)

Answer 2

We seek to prove the identity:

`(1+tan^2x)/(1-tan^2x) -=1+tan2xtanx`

We can utilise the tangent double angle formula:

`tan2A -= (2tanA)/(1-tan^2A)`

Consider the RHS:

`RHS = 1+tan2xtanx`

`\ \ \ \ \ \ \ \ = 1+((2tanx)/(1-tan^2x))tanx`

`\ \ \ \ \ \ \ \ = 1+(2tan^2x)/(1-tan^2x)`

`\ \ \ \ \ \ \ \ = ((1-tan^2x)+(2tan^2x))/(1-tan^2x)`

`\ \ \ \ \ \ \ \ = (1+tan^2x)/(1-tan^2x)`

`\ \ \ \ \ \ \ \ = LHS \ \ \` QED