That is an application of Ohm's Law, not the Law itself.
Of course, if the voltage and current are directly proportional, then the resistance could not have changed. If it does change, then the voltage and current are related according to the new resistance.
Further down, the author states:
However, in some diode applications, the AC signal applied to the device is small and it is possible to analyze the circuit in terms of the dynamic, small-signal, or incremental resistance, defined as the one over the slope of the V–I curve at the average value (DC operating point) of the voltage (that is, one over the derivative of current with respect to voltage). For sufficiently small signals, the dynamic resistance allows the Ohm's law small signal resistance to be calculated as approximately one over the slope of a line drawn tangentially to the V-I curve at the DC operating point.
So, you can get a large signal or DC voltage, but if you try to vary the current by changing the voltage over a small range, it may take a totally different ratio of voltage to current to do this.
This is still Ohm's Law and it shows the power and beauty of the Law that it can be adapted to situations that Mr Ohm could not have dreamt of.
If you read further down, regarding reactive components, you can see the application of Ohms Law to AC circuits where there may not even be any resistance.