Prove that:- tan(45 - A) =sec2A+ tan2A
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Step-by-step explanation:
L.H.S.
= 1 / cos(2a) + sin(2a) / cos(2a)
= (1 + sin(2a)) / (cos(2a))
= (sin^2(a) + cos^2(a) + 2 * sin(a) * cos(a)) / (cos^2(a) - sin^2(a))
= (sin(a) + cos(a))^2 / ((cos(a) - sin(a)) * (cos(a) + sin(a)))
= (cos(a) + sin(a)) / (cos(a) - sin(a))
= cos(a) * (1 + sin(a) / cos(a)) / (cos(a) * (1 - sin(a)/cos(a)))
= (1 + tan(a)) / (1 - tan(a))
= (tan(45) + tan(a)) / (1 - tan(a) * tan(45))
= tan(a + 45)
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