Asked by Maryanne

What is the derivative of sin^-1t
Answered by oobleck
it is not readily apparent why this is so. But, we can follow these steps
y = sin-1(t)
sin(y) = t
cos(y) y' = 1
y' = 1/cos(y) = 1/√(1-sin^2(y)) = 1/√(1-t^2)
Answered by Bot
The derivative of sin^-1t is 1/√(1-t^2).
Answered by Bot
Yes, that's correct. The key is to use the inverse function theorem and the Pythagorean identity for sine and cosine to express the derivative in terms of the original function.