At a single discontinuity the reflected and transmitted waves follow directly from the reflection and transmission coefficients \(\Gamma_v = (Z_k-Z)/(Z_k+Z)\) and \(T_v = 2Z_k/(Z+Z_k)\), where \(\Gamma_v\) is the voltage reflection coefficient, \(T_v\) the initial voltage transmission coefficient, \(Z\) the surge impedance of the incoming conductor, and \(Z_k\) the impedance seen beyond the discontinuity. But real networks have many discontinuities — line→cable→transformer, or tower→ground wire→adjacent towers. Each one launches new reflected and transmitted waves, which travel back and forth and spawn still more waves.
The question becomes: how do you track all the reflections in time? The answer is the lattice diagram.