यदि tan (A – B) = x, तो x का मूल्य है ;fn tan (A – B) = x,

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

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

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

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

Answer : Option D

Explanation :

sin (A – B) = sinA . cosB – cosA . sinB

cos (A – B) = cosA . cosB + sinA . sinB

$\therefore \frac{\sin (A-B)}{\cos (A-B)}$

$=\frac{\sin A \cdot \cos B-\cos A \cdot \sin B}{\cos A \cdot \cos B+\sin A \cdot \sin B}$

$\Rightarrow \tan (A-B)$

$=\frac{\frac{\sin A \cdot \cos A}{\cos A \cdot \cos B}-\frac{\cos A \cdot \sin B}{\cos A \cdot \cos B}}{\frac{\cos A \cdot \cos B}{\cos A \cdot \cos B}+\frac{\sin A \cdot \sin B}{\cos A \cdot \cos B}}$

(cosA cosB द्वारा अंश और हर को विभाजित करना)

$=\frac{\tan A-\tan B}{1+\tan A \cdot \tan B}$

Todaysprint

Todaysprint

यदि tan (A – B) = x, तो x का मूल्य है ;fn tan (A – B) = x,