MHT CET · Maths · Properties of Triangles
In a triangle ABC with usual notations.
\(\cot \frac{\mathrm{A}}{2}+\cot \frac{\mathrm{B}}{2}+\cot \frac{\mathrm{C}}{2}=\)
- A \(\frac{s^2}{\Delta}\), where \(\Delta\) is the area of the triangle \(A B C\).
- B \(\frac{s}{\Delta}\), where \(\Delta\) is the area of the triangle \(A B C\).
- C \(\frac{\triangle}{s}\), where \(\triangle\) is the area of the triangle \(A B C\).
- D \(\Delta\), where \(\Delta\) is the area of the triangle \(A B C\).
Answer & Solution
Correct Answer
(A) \(\frac{s^2}{\Delta}\), where \(\Delta\) is the area of the triangle \(A B C\).
Step-by-step Solution
Detailed explanation
\(\cot \frac{\mathrm{A}}{2}+\cot \frac{\mathrm{B}}{2}+\cot \frac{\mathrm{C}}{2} = \frac{s(s-a)}{\Delta} + \frac{s(s-b)}{\Delta} + \frac{s(s-c)}{\Delta}\) \(= \frac{s}{\Delta} ((s-a) + (s-b) + (s-c))\)
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