Earlier quoted context omitted.
A big technical EE problem for analog computers is interconnects and their EMI/EMC interference issues and impedance issues. The analog specs for on-chip digital circuitry are much more relaxing to develop around. You can work around the interconnect issues on analog computers by dumping lots of power into the driver and input circuits but eventually some joker is going to point out that it would be electrically chea…
I always hear such things from EE's. So, what's your thoughts on stuff like this in terms of analog "always" being more expensive or power hungry: http://www.cisl.columbia.edu/grads/gcowan/vlsianalog.pdf http://citeseerx.ist.psu.edu/viewdoc/download?doi=10.1.1.325... Now, I won't argue with cheaper to develop since analog is manual with a lot of issues to contend with. I'm just wondering if there are more application…
Couple of points from your lower link:
- return of "wafer-scale"! Nice.
- " the average power consumption is expected to stay below 1 kW for a single wafer"; not bad but you're still going to need to cool that
- actually a hybrid system: long range comms is digital and multiplexed to save wiring, converted to analogue at the synapse
- "All analog parameters are stored in non-volatile single-poly floating-gate analog storage cells developed for the FACETS project" => basically analogue Flash? A development of MLC I suppose
On reading the whole thing, it seems the magic is actually in choosing which bits to make digital. The "long range" neural events are sent as differential 6-bit bursts, multiplexed, which they claim saves significant power.