Smart Cable Routing
Dijkstra-based routing through real submarine cables and landing points from the industry cable inventory. Accurate distance multipliers for land and undersea segments.
In-depth analysis of how internet traffic moves through 716 submarine cable systems, based on real measurements from our probes worldwide.
On September 22, 2026, a magnitude 4.7 earthquake occurred 54 km north-northwest of Ende, Indonesia. The event was localized to the region, with no widespread disruptions reported. Earthquakes of this magnitude are typically felt in surrounding areas but rarely cause significant structural damage. Local authorities responded promptly, monitoring the situation to ensure public safety.
The submarine cable infrastructure in the vicinity demonstrated strong resilience during the event. Systems such as the Indonesia Tengah Cable Systems (landing at Labuhan Bajo, 175 km from the epicenter) and Palapa Ring East (landing at Waingapu, 193 km away) continued to operate within their usual performance ranges, maintaining average latencies of approximately 340 ms and 346 ms, respectively. These cables, critical for connectivity across Indonesia's islands, carried traffic seamlessly through the seismic activity, underscoring their robust design and operational reliability.
Real-time monitoring of these and other submarine cable systems remains active, with 1950 latency checks conducted in the past 24 hours across 713 systems. This ongoing vigilance ensures the continued stability and performance of global communication networks.
The network remained in excellent condition today with no anomalies or active alerts detected across 658 submarine cables during 1914 latency/route checks. This signifies a clean and stable day for the submarine cable infrastructure.
Notable jitter was observed on several cables, including HANNIBAL, Didon, and GO-1 Mediterranean Cable System, with increases of up to 214% and 167% respectively compared to their seven-day averages. These fluctuations are within normal operational ranges and do not indicate any significant issues or damage.
On 25 mornings in 2026 Iraq lost two thirds of its connectivity at the same hour, never on a Friday. Our monitor noticed the pattern, switched to 5-minute resolution and measured every window: 90 minutes in June, 40 in September.
Magnitude 6.5 earthquake near Nikolski, Alaska, and its impact on the AU-Aleutian submarine cable. Infrastructure endured the shock.
The 6.3 magnitude earthquake near Nikolski, Alaska, did not affect the operation of the submarine cable AU-Aleutian. The infrastructure continues to function normally.
Discover why internet traffic from Kazakhstan to Micronesia routes through Moscow, causing increased delays.
Magnitude 5.1 earthquake off Saipan caused anomalies on submarine cables TPU, GOKI, HANTRU1, and SEA-US. Analysis of consequences.
Why do data from South Africa to Brazil go through the US, increasing latency?
On Maïotka there are three submarine cables, but only one connection to the main networks. We'll look at what the others do and what our measurements show.
The 6.5-magnitude earthquake off the coast of Indonesia did not affect the operation of key submarine cables, including RISING 8, JAKABARE, and Echo.
| Point A | - |
|---|---|
| Point B | - |
| Coordinates A | - |
| Coordinates B | - |
| Cable Multiplier | - |
| Crosses Ocean | - |
| Route Details | - |
| Data Source | - |
Dijkstra-based routing through real submarine cables and landing points from the industry cable inventory. Accurate distance multipliers for land and undersea segments.
Interactive map showing every cable your data touches - backbone nodes, landing stations, and submarine segments with real geographic coordinates.
Launch real network measurements from probes worldwide. Compare theoretical estimates with actual RTT and hop-by-hop packet journeys with ISP geolocation.
Speed-of-light physics combined with cable distance to estimate latency. See the real-world overhead - how much slower actual routing is vs fiber limits.
Enter cities, IP addresses, or domain names - everything is resolved to coordinates with hosting location identification and optimal cable route.
Traceroute hops enriched with city, country, ISP. Phases auto-detected: local → ISP → CDN → backbone → submarine cable. Visual RTT timelines.
City names, IP addresses, or domains. The system resolves coordinates, identifies countries, and determines whether the route crosses oceans.
A graph algorithm finds the optimal route through landing points and submarine cables with accurate distance multipliers for each segment type.
One click launches RIPE Atlas probes for real ping and traceroute. See actual RTT, identify every router, and find where your packet enters submarine cables.
Validate routing assumptions, estimate latency budgets, troubleshoot unexpected paths.
Understand your ping. Compare the physical speed limit vs reality for any server.
Choose optimal PoP locations based on submarine cable topology and landing proximity.
Teach how the physical internet works. Visualize the gap between light speed and real routing.
Over 500 submarine cable systems span the world's oceans, with a combined length of approximately 1.4 million kilometers - enough to circle the Earth 35 times.
Submarine cables carry over 99% of intercontinental data traffic. Despite what many people think, satellites handle only a tiny fraction of global internet traffic.
Light travels through fiber optic cable at about two-thirds the speed of light in vacuum. A signal from London to New York takes approximately 28 milliseconds one way.
Modern submarine cables are designed to last 25 years. Cables are buried in the seabed near shores and laid directly on the ocean floor in deep water, protected by layers of steel and polyethylene.
The deepest submarine cables reach the abyssal plains at nearly 8,000 meters. At these depths, cables rest on the ocean floor under enormous pressure, beyond the reach of anchors and fishing gear.
Major transoceanic cable projects like 2Africa or PEACE cost over $1 billion. Investment comes from tech giants like Google, Meta, and Microsoft, as well as telecom consortiums.
GeoCables is a research publication on the physical infrastructure of the global internet. We publish in-depth analyses of how data actually travels between countries - which submarine cables are used, what the measured latency is, and why it differs from the theoretical minimum.
Our research is grounded in real measurements from our own distributed network of measurement servers. We trace specific routes across 716 submarine cable systems and 1,900+ landing points in the global cable inventory, then publish what we find.
Light through fiber travels at ~200,000 km/s - about two-thirds the speed of light in vacuum. That sets the theoretical floor for round-trip time. In practice, real RTT is 1.5-4× higher due to routing detours, optical amplifiers, protocol processing, peering between networks, and suboptimal path selection. Our research articles document this overhead on specific routes - measuring it, explaining it, and tracing it back to the cables and networks responsible.