That's not controlled, seamless hand-over as we know it from GSM/3G/LTE/5G for 30 years now.
We basically miss all data (received stations/signal levels from both sides, Bit Rate errors, etc.) for making roaming decisions and then to softly connect them to an AP you want them to be on.
Enterprise WiFi is currently mostly "This is a list of APs you maybe can connect to.. have fun.. if you can connect we pre-seeded the AP with some crypto data, so it doesn't take ages to negotiate. Here's your (more or less friendly) disassoc. Fuck off bye."
It does somehow work for stationary setups - but as soon as you have mobile traffic (like walking around or machines moving) with multiple APs the quality hits the shitter brutally.
Currently this gap is being filled by industrial 5G with dedicated frequencies. It's crazy expensive.
That's not controlled, seamless hand-over as we know it from GSM/3G/LTE/5G for 30 years now.
We basically miss all data (received stations/signal levels from both sides, Bit Rate errors, etc.) for making roaming decisions and then to softly connect them to an AP you want them to be on.
Enterprise WiFi is currently mostly "This is a list of APs you maybe can connect to.. have fun.. if you can connect we pre-seeded the AP with some crypto data, so it doesn't take ages to negotiate. Here's your (more or less friendly) disassoc. Fuck off bye."
It does somehow work for stationary setups - but as soon as you have mobile traffic (like walking around or machines moving) with multiple APs the quality hits the shitter brutally.
Currently this gap is being filled by industrial 5G with dedicated frequencies. It's crazy expensive.
So SCTP (multi homing)?
On paper, yes. In the real world, that random Android client is clinging to an AP that can barely hear it while a better one would be available.