Question

How do you find the equation of the line tangent to `y=cosx-sinx`, at (pi,-1)?

Answer 1

`y=x-(pi+1)`

Explanation:

`•color(white)(2/2)dy/dx=m_(color(red)"tangent")" at x = a"`

`y=cosx-sinx`

`rArrdy/dx=-sinx-cosx`

`x=pitody/dx=-sinpi-cospi=1`

`rArry+1=x-pi`

`rArry=x-(pi+1)larr" equation of tangent"`