If, $\dfrac{2a + 2b - 3c - 3d}{2a - 2b - 3c + 3d} = \dfrac{a + b - 4c - 4d}{a - b - 4c + 4d}$, prove that $\dfrac{a}{b} = \dfrac{c}{d}$.

Given,

$\Rightarrow \dfrac{2a + 2b - 3c - 3d}{2a - 2b - 3c + 3d} = \dfrac{a + b - 4c - 4d}{a - b - 4c + 4d}$

Applying componendo and dividendo, we get :

$\Rightarrow \dfrac{(2a + 2b - 3c - 3d) + (2a - 2b - 3c + 3d)}{(2a + 2b - 3c - 3d) - (2a - 2b - 3c + 3d)} = \dfrac{(a + b - 4c - 4d) + (a - b - 4c + 4d)}{(a + b - 4c - 4d) - (a - b - 4c + 4d)} \\[1em] \Rightarrow \dfrac{(2a + 2b - 3c - 3d) + (2a - 2b - 3c + 3d)}{(2a + 2b - 3c - 3d) - 2a + 2b + 3c - 3d} = \dfrac{(a + b - 4c - 4d) + (a - b - 4c + 4d)}{(a + b - 4c - 4d) - a + b + 4c - 4d} \\[1em] \Rightarrow \dfrac{4a - 6c}{4b - 6d} = \dfrac{2a - 8c}{2b - 8d} \\[1em] \Rightarrow \dfrac{2(2a - 3c)}{2(2b - 3d)} = \dfrac{2(a - 4c)}{2(b - 4d)} \\[1em] \Rightarrow \dfrac{2a - 3c}{2b - 3d} = \dfrac{a - 4c}{b - 4d} \\[1em] \Rightarrow \dfrac{2a - 3c}{a - 4c} = \dfrac{2b - 3d}{b - 4d}$

Cross - multiplying and simplifying:

$\Rightarrow (2a - 3c)(b - 4d) = (a - 4c)(2b - 3d) \\[1em] \Rightarrow 2ab - 8ad - 3bc + 12cd = 2ab - 3ad - 8bc + 12cd \\[1em] \Rightarrow 2ab - 2ab - 8ad + 3ad - 3bc + 8bc + 12cd - 12cd = 0 \\[1em] \Rightarrow 5bc - 5ad = 0 \\[1em] \Rightarrow 5bc = 5ad \\[1em] \Rightarrow bc = ad \\[1em] \therefore \dfrac{a}{b} = \dfrac{c}{d}.$

Hence, proved that $\dfrac{a}{b} = \dfrac{c}{d}$.