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What is the derivative of #(1-sinx)/cosx #?

1 Answer

Mar 20, 2017

# dy/dx = secxtanx - sec^2x#

Explanation:

We have:

# y = (1-sinx)/cosx #
# \ \ = 1/cosx - sinx/cosx#

Differentiating wrt #x# we get:

# dy/dx = secx - tanx#
# \ \ \ \ \ = secxtanx - sec^2x#

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