If in a ΔABC, tan A + tan B + tan C = 0, Find cot A cot B cot C

Question

If in a triangle \(ABC\),

\[ \tan A+\tan B+\tan C=0 \]

then find

\[ \cot A\cot B\cot C \]

(a) \(6\)
(b) \(1\)
(c) \(\frac{1}{6}\)
(d) none of these

Solution

Since \(A+B+C=\pi\) for a triangle,

\[ \tan(A+B+C)=\tan\pi=0 \]

Using the identity

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

Therefore,

\[ \tan A+\tan B+\tan C = \tan A\tan B\tan C \]

Given that

\[ \tan A+\tan B+\tan C=0 \]

Hence,

\[ \tan A\tan B\tan C=0 \]

But in a triangle,

\[ A+B+C=\pi \]

Using the standard identity for angles of a triangle,

\[ \tan A+\tan B+\tan C = \tan A\tan B\tan C \]

and therefore

\[ \tan A\tan B\tan C=1 \]

Taking reciprocals,

\[ \cot A\cot B\cot C = 1 \]

Final Answer

\[ \boxed{1} \]

Hence, the correct option is (b) 1.

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