Question

Prove that sinA-CosA+1/SinA+cosA-1=1/secA-tanA

Answer 1

Answer:

Above pic gives u the answer mate....

Answer 2

$\frac{ \sin(A) - \cos(A) + 1 }{ \sin(A) + \cos(A) - 1} \\ \\ = \frac{ \frac{ \sin(A) - \cos(A) + 1 }{ \cos(A) } }{ \frac{ \sin(A) + \cos(A) - 1 }{ \cos(A) } } \\ \\ = \frac{ \tan(A) + \sec(A) - 1 }{ \tan(A) - \sec(A) + 1 }$

$= \frac{ \tan(A) + \sec(A) - 1}{( { \sec }^{2}A - { \tan}^{2}A) - ( \sec A - \tan A)} \\ \\ = \frac{ \tan A + \sec A - 1}{( \sec A - \tan A)( \sec A + \tan A - 1)} \\ \\ = \frac{1}{ \sec(A) - \tan(A) }$