Math, asked by MohdSaif12345, 1 year ago

cotA/2 + cotB/2 +cotC/2=CotA/2.CotB/2.CotC/2
Prove it please........

Answers

Answered by hari2162
107


If ABC is a triangle 
A + B + C = π 
=> A/2 + B/2 = π/2 - C/2 
=> tan (A/2 + B/2) = tan (π/2 - C/2) 
=> (tan A/2 + tanB/2) / (1 - tan A/2 tan B/2) = cot C/2 
=> (cot A/2 + cot B/2) / (cot A/2 cot B/2 - 1) = cot C/2 
=> cot A/2 + cot B/2 + cot C/2 = cot A/2 cot B/2 cot C/2 


Answered by nikolatesla2
59
If ABC is a triangle 
A + B + C = π 
=> A/2 + B/2 = π/2 - C/2 
=> tan (A/2 + B/2) = tan (π/2 - C/2) 
=> (tan A/2 + tanB/2) / (1 - tan A/2 tan B/2) = cot C/2 
=> (cot A/2 + cot B/2) / (cot A/2 cot B/2 - 1) = cot C/2 
=> cot A/2 + cot B/2 + cot C/2 = cot A/2 cot B/2 cot C/2 
Of course its only true when ABC are angles of a triangle
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