答案:A
考慮 $\Delta ABC$,可得
考慮 $\Delta ABC$,可得
$\begin{array}{rcl}
\tan \beta & = & \dfrac{AC}{AB} \\
AC & = & AB \tan \beta
\end{array}$
考慮 $\Delta ACD$,可得
$\begin{array}{rcl}
\cos \alpha & = & \dfrac{AD}{AC} \\
\cos \alpha & = & \dfrac{AD}{AB \tan \beta} \\
\dfrac{AD}{AB} & = & \cos \alpha \tan \beta
\end{array}$
