Edge stations
Debian on bare metal, with the kernel network stack tuned per site for the traffic that site actually sees. Nothing else shares the forwarding path.
Sheet 1 · North Sea & Baltic approaches · Edition 2026.1
Sixteen edge stations around the North Sea and the Baltic. One anycast address puts every European visitor inside ten milliseconds of a warm cache — and we publish the position, capacity and measured latency of every station on it.
Backbone route, private fibre
Route continued off this sheet
Edge station · figure below is p50
Soundings
Measured from probes across the ten countries we serve, aggregated over a rolling twenty-four hours. Where a figure moves, this sheet is corrected.
Passage plan
Four hops from a browser in Tampere to your origin — and on most days it stops at the second one.
Hop 00
The same address is announced from all sixteen sites. The visitor's resolver returns the station nearest them, not the one nearest you. No redirect, no second lookup — 0 ms added.
Hop 01
TLS terminates here on a session ticket the visitor already holds. On a cache hit — 97 of 100 requests — the answer never leaves the building, and the passage ends at this hop.
Hop 02
A miss travels our own fibre between stations rather than the open internet. Fewer hops, no congested exchange in the middle, and a path we can see end to end when you ask us why something was slow.
Hop 03
Reached once. The object is then held at every station that asked for it, so the next visitor in Riga is served from Riga.
Legend
Four things every station does, described the way we would describe them to an engineer who has to operate around them.
Debian on bare metal, with the kernel network stack tuned per site for the traffic that site actually sees. Nothing else shares the forwarding path.
SAN certificates are issued once your domain validates and renewed without anyone watching a calendar. Upload your own, or pin a stricter TLS profile, if policy says so.
Volumetric floods are absorbed at the station that receives them, so they never reach your origin or the rest of the network. Layer 7 filtering runs inline — real requests do not queue behind an attack.
Health checks and geographic weighting spread requests across your origins, and pull a failing one out of rotation before your users are the ones who find it.
Register of stations
Two stations lie south of this sheet and are shown on the chart only as a route leaving the frame. Their figures are printed here all the same.
| Station | Code | Position | p50 | Egress |
|---|---|---|---|---|
| Amsterdam | AMS | 52.37°N 4.90°E | 3 ms | 1600 Gbit/s |
| London | LHR | 51.51°N 0.13°W | 4 ms | 1600 Gbit/s |
| Frankfurt | FRA | 50.11°N 8.68°E | 4 ms | 1600 Gbit/s |
| Copenhagen | CPH | 55.68°N 12.57°E | 5 ms | 800 Gbit/s |
| Paris | CDG | 48.86°N 2.35°E | 5 ms | 800 Gbit/s |
| Oslo | OSL | 59.91°N 10.75°E | 6 ms | 800 Gbit/s |
| Stockholm | ARN | 59.33°N 18.07°E | 7 ms | 800 Gbit/s |
| Dublin | DUB | 53.35°N 6.26°W | 7 ms | 400 Gbit/s |
| Prague | PRG | 50.08°N 14.42°E | 7 ms | 400 Gbit/s |
| Tallinn | TLL | 59.44°N 24.75°E | 8 ms | 400 Gbit/s |
| Vienna | VIE | 48.21°N 16.37°E | 8 ms | 400 Gbit/s |
| Helsinki | HEL | 60.17°N 24.94°E | 9 ms | 400 Gbit/s |
| Riga | RIX | 56.95°N 24.11°E | 9 ms | 400 Gbit/s |
| Warsaw | WAW | 52.23°N 21.01°E | 9 ms | 400 Gbit/s |
| Madrid · off sheet | MAD | 40.42°N 3.70°W | 14 ms | 400 Gbit/s |
| Rome · off sheet | FCO | 41.90°N 12.50°E | 15 ms | 400 Gbit/s |
Come alongside
Fourteen days, no card, no call. If the figures on this chart do not hold for your traffic, you will know inside an afternoon.