Hi Niarnniarn wrote: Can you provide 'the correct' definition of what a SVF is?
Maybe my reply is somehow bass ackwards-- Maybe some extremely esoteric abstract mathematical definition (which has always been beyond my pay grade)-- Or merely study common practical analog state variable filters?
For some purposes SVF might be the ideal analog filter. Unless you are too cheap to pay a couple of extra bucks for extra opamps. For instance there are three- and four-opamp common analog SVF variants. The extra opamp in the four opamp variant just adds buffered mixing for the feedback, which makes very easy independent control of frequency and Q. The three opamp version is easy, but the four opamp version is TRIVIALLY easy to adjust. The three opamp model will tend to have interaction between gain and Q as best I recall.
Just sayin, so far as I know, the svf started in analog and generally offers very few problems in analog. Digital is just trying to achieve that same goodness without having to sniff solder fumes. Perhaps you would examine the analog svf for the standard by which a digital svf should be judged?
I can't quickly tonight find an excellent description of the four opamp version, though most features of both variants are the same . So far as I know the extra opamp just makes practical çircuits more flexible and better-performing.
You can build one-opamp second order filters, but I don't think it is very easy to make one-opamp circuits that can perform as good as svf. On the other hand, for applications where modest one-opamp filter performance is good enough, one may be loathe to invest extra parts and circuit board space to solve trivial problems.
This first article seems not shabby in describing analog svf. The second article has a brief discussion on the four opamp variant.
http://www.electronics-tutorials.ws/fil ... ilter.html
https://www.maximintegrated.com/en/app- ... vp/id/1762
