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I have to prove this most difficult trigonometric identity.

$\tan(A+B+Y)=\frac{\tan A+\tan B+\tan Y-\tan A\tan B\tan Y}{1-\tan A \tan B-\tan B\tan Y-\tan Y\tan A}.$

I know $\tan(A+B)=\frac{\tan A+\tan B}{1-\tan A\tan B}$

My problem is with the extra $Y$ in this problem. What can I do about I think I know a solution which is to do $\tan(A+B)$ then $\tan(B+Y)$ but I am not sure how to apply it.

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    Now try $\tan(A+B+C+D)$ - these $\tan$ formulae are beautiful things.2012-08-01

6 Answers 6

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Just like when you use an eraser on pencil written paper stuff, erase $b$ and in its place write $B+C$ wherever it comes.

You know $\tan(A+b)=\frac{\tan A+\tan b}{1-\tan A\tan b}$

It becomes:

$\tan(A+B+C)=\frac{\tan A+\tan (B+C)}{1-\tan A\tan (B+C)}$

Now expand and simplify... that's it!

Remember, this way you can even go to next step( for practice) to expand $\tan(A+B+C+D) !$

Suggest (for practice) use procedure in this thread outlined by robjohn

$ (1+i\tan(A))(1+i\tan(B))(1+i\tan(Y)) (1+i\tan(Z))$

to appreciate how it goes in complex algebra and trig connections .

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With all these simple solutions available, how about a complex one?

  1. The argument of the product of two complex numbers is the sum of their arguments.
  2. The imaginary part of a complex number divided by its real part is the tangent of its argument.

Consider the product $ \begin{align} &(1+i\tan(A))(1+i\tan(B))(1+i\tan(Y))\\ &=1-\tan(A)\tan(B)-\tan(B)\tan(Y)-\tan(Y)\tan(A)\\ &+i\,(\tan(A)+\tan(B)+\tan(Y)-\tan(A)\tan(B)\tan(Y))\tag{1} \end{align} $ Using 1. and 2., $(1)$ says that $ \tan(A+B+Y)=\frac{\tan(A)+\tan(B)+\tan(Y)-\tan(A)\tan(B)\tan(Y)}{1-\tan(A)\tan(B)-\tan(B)\tan(Y)-\tan(Y)\tan(A)}\tag{2} $

4

We have $ \tan(A+B+C)=\tan(A+(B+C))=\frac{\tan A+\tan(B+C)}{1-\tan A \tan(B+C)}= $ $ \frac{\tan A+\frac{\tan B+\tan C}{1-\tan B \tan C}}{1-\tan A\frac{\tan B+\tan C}{1-\tan B\tan C}}= \frac{\tan A+\tan B+\tan C-\tan A\tan B\tan C}{1-\tan A\tan B-\tan B\tan C-\tan C\tan A} $ In the last step we multiplied the numerator and the denominator by $1-\tan B\tan C$.

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    It makes sense thanks.2012-08-01
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Replacing $B$ by $B+Y$ in your expression for $\tan(A+B)$ gives

$\dfrac{\tan A + \tan(B+Y)}{1 - \tan A \tan(B+Y)}$

Expanding gives

$\dfrac{\tan A + \frac{\tan B + \tan Y}{1 - \tan B \tan Y}}{1 - \tan A \frac{\tan B + \tan Y}{1 - \tan B \tan Y}}$

Multiplying through by $1 - \tan B \tan Y$ gives

$\frac{\tan A(1 - \tan B \tan Y) + \tan B + \tan Y}{1 - \tan B \tan Y - \tan A(\tan B + \tan Y)}$

And simplifying gives you what you want.

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    Very help answer thanks.2012-08-01
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Do $a=\tan A, b= \tan B$ and $y = \tan Y$. Then, \begin{eqnarray} \tan (A+B+Y) &=& \dfrac{\tan(A+B) + \tan(Y)}{1-\tan(A+B)y}\\ &=& \dfrac{\dfrac{a+b}{1-ab}+y}{1 - \Big(\dfrac{a+b}{1-ab}\Bigr)y}\\ &=& \dfrac{\dfrac{a+b+(1-ab)y}{1-ab}}{\dfrac{1-ab - (a+b)y}{1-ab}}\\ &=& \dfrac{a+b+y -aby}{1-ab-ay-by}.\\ \end{eqnarray}

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Just use the sum formula twice: $ \begin{align*} \tan(A+B+Y)=\tan((A+B)+Y) &= \frac{\tan(A+B)+\tan Y}{1-\tan(A+B)\tan Y}\\ &=\frac{\left(\frac{\tan A +\tan B}{1-\tan A\tan B}\right)+\tan Y}{1-\left(\frac{\tan A +\tan B}{1-\tan A\tan B}\right)\tan Y}\\ &= \frac{(\tan A + \tan B)+ \tan Y(1-\tan A\tan B)}{(1-\tan A\tan B)-(\tan A + \tan B)\tan Y}\\ &=\frac{\tan A + \tan B + \tan Y - \tan A\tan B\tan Y}{1-\tan A\tan B-\tan A\tan Y-\tan B\tan Y} \end{align*} $

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    Although all responses are good Fernando likes this one especially.2012-08-01