Ask a New Question

solve algebreically the equation

cos2x=1-sinx

also cosx=cosx-1

and please also sin2x=3sinx

1 answer

Isn't cos2x=cos^2x-sin^2x=1-2sin^2 x ?
put that into the left side, gather terms, and you have a quadratic equation.

The second makes no sense.

Ask a New Question or answer this question.

Similar Questions

Verify the identity:tanx(cos2x) = sin2x - tanx Left Side = (sinx/cosx)(2cos^2 x -1) =sinx(2cos^2 x - 1)/cosx Right Side = 2sinx
1. 0 answers
Solve the equation of the interval (0, 2pi)cosx=sinx I squared both sides to get :cos²x=sin²x Then using tri indentites I came
1. 4 answers
Hi, I need a bit of help with verifying identities. The problems are as follows:sinx+cosx/cotx+1=sinx sin2x/sin -
1. 2 answers
how do i simplify (secx - cosx) / sinx?i tried splitting the numerator up so that i had (secx / sinx) - (cosx / sinx) and then i
1. 1 answer

more similar questions