Question

What is the equation of the tangent line of `f(x)=sinx-cosx/2` at `x=pi/4`?

Answer 1

The equation of tangent is `y= 3/(2sqrt2)x +1/(2sqrt2) (1- (3pi)/4)`

Explanation:

`f(x) = sinx - 1/2 cosx :. f(pi/4) = sin (pi/4) -1/2 cos (pi/4)` or

`f(pi/4) = 1/sqrt2 -1/2 *1/sqrt2 = 1/(2sqrt2)` . The point at which

tangent equation to be found is `(pi/4, 1/(2sqrt2))`

`f(x) = sinx - 1/2 cosx : f^'(x) = cosx + 1/2 sinx` or

`f^'(pi/4) = cos(pi/4) + 1/2 sin(pi/4) = 1/sqrt2 +1/2*1/sqrt2` or

`f^'(pi/4) = 1/sqrt2(3/2) or 3/(2sqrt2)` , So slope at the point is

`m= 3/(2sqrt2)` The equation of tangent at `(pi/4, 1/(2sqrt2))`

is `y -1/(2sqrt2) = 3/(2sqrt2) (x- pi/4)` or

`y= 3/(2sqrt2)x +1/(2sqrt2) (1- (3pi)/4)` [Ans]