how to prove the question M tanAtanB+tanBtanC+tanCtanA=1, if A+B+C=180° —Preceding unsigned comment added by Siddhiraj Khanal (talk • contribs) 11:38, 23 September 2010 (UTC)[reply]

What is M? Note that in general, tanAtanB+tanBtanC+tanCtanA≠1. Consider an equilateral triangle; tan60°=√3, so the sum would be 9. Your formula does no appear to be related to the Law of tangents. I added a section title.-- 114.128.149.193 (talk) 14:10, 23 September 2010 (UTC)[reply]

However, if A+B+C = 180 degrees, we do have

${\displaystyle {\frac {1}{\tan A\tan B}}+{\frac {1}{\tan B\tan C}}+{\frac {1}{\tan C\tan A}}=1}$

so maybe that is the real question. Gandalf61 (talk) 14:33, 23 September 2010 (UTC)[reply]

From the standard identity

${\displaystyle \tan(x+y)={\frac {\tan x+\tan y}{1-\tan x\tan y}}}$

we can see that

${\displaystyle \tan(x+y+z)={\frac {\tan x+\tan y+\tan z-\tan x\tan y\tan z}{1-\tan x\tan y-\tan x\tan z-\tan y\tan z}}}$

and then consider what happens when

${\displaystyle x+y+z={\text{half-circle}}=180^{\circ }.\,}$

What happens is that in that case,

${\displaystyle \tan(z+y+z)=0,\,}$

so the numerator on the other side of the fraction must be zero. Michael Hardy (talk) 20:21, 23 September 2010 (UTC)[reply]

....Oh.....that's not quite what you were asking. What you need is for the denominator to be zero. That happens if

${\displaystyle x+y+z=90^{\circ }\,}$

And what is your "M"? Michael Hardy (talk) 20:23, 23 September 2010 (UTC)[reply]