Question

Find f.

f'(x) = 9/(square root of (1-x^2)) ,

f(1/2) = 1

f(x) = ??????

Answer 1

dy/dx = 9 integral dx/(1-x^2)^.5

y = 9 sin^-1 x + c
note sin pi/6 = sin 30 deg = 1/2
so
y(1/2) = 9 (pi/6) + c = 1
so
c = 1 - 3 pi/2
so
y = 9 sin^-1 x + (2-3 ) pi/2