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Let $AC$ and $BD$ meets at $E$.
$AD=a,BC=b$ where, $a<b$.
Easy to prove: $\angle CAD=\angle ABE, \angle DBC=\angle BAE$
We know, $\angle BAD=\angle BAE+ \angle CAD=90^{\circ}$
$\Rightarrow \angle BAE+\angle ABE=90^{\circ}$
Again, $\angle ABE+\angle ADB=90^{\circ}$
So, $\angle BAE=\angle ADB$
Accordingly we can prove: $\angle ABD=\angle ACB$
Between $\triangle ABD$ and $\triangle ABC$,
$\angle BAD=\angle ABC$,$\angle ADB=\angle CAB$
So,
two triangles are similar.
Now, $\frac {a}{AB}=\frac{AB}{b}$
$\Rightarrow AB^2=ab$
$\Rightarrow AB=\sqrt {ab}$
[Actually I messed all similar triangles and wasted time at exam hall for this easy one ]