Math, asked by adnan47, 1 year ago

plz help me in solving this question of trigonometry

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Answered by jproyalejp

1 + cos A/ 1 - cos A = tan²A/(secA - 1)²
LHS = (1 + cos A)/ (1 - cos A)
RHS = tan²A/(secA - 1)²
= [tanA/(sec-1)]^2
= [tanA/((1/cosA)-1)]^2
= [tanA/(1-cosA)/cosA]^2
= [(tanA*cosA)/(1-cosA)]^2
= [sinA/(1-cosA)]^2
= sinA^2/(1-cosA)^2
= (1-cosA^2)/(1-cosA)^2
= [(1-cosA)*(1+cosA)]/[(1-cosA)*(1-cosA)]
= (1+cosA)/(1-cosA)
LHS = RHS
Regards
JP

adnan47: thnks for helping me with this question

jproyalejp: tq

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