How do you express #sin^2 theta - sec theta + tan^2 theta # in terms of #cos theta #?

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Answer 1 · 2016-02-11T03:54:26

#1/cos^2 theta-1/cos theta-cos^2 theta#

The expression contains three trigonometric functions, #sin^2 theta#, #sec theta# and #tan^ theta#.

In terms of #cos theta#, these are respectively #1-cos^2 theta#, #1/cos theta# and #sec^2 theta-1# i.e. #1/cos^2 theta-1#.

Hence expression #sin^2 theta-sec theta+tan^2 theta# in terms of #cos theta# can be written as

#1-cos^2 theta-1/cos theta+1/cos^2 theta-1# or

#-cos^2 theta-1/cos theta+1/cos^2 theta#

or #1/cos^2 theta-1/cos theta-cos^2 theta#

(transposition done as #1/cos^2 theta# would be the largest term among three.