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Cable Health Monitor

Original Research on Submarine Cable Routing

In-depth analysis of how internet traffic moves through 716 submarine cable systems, based on real measurements from our probes worldwide.

Learn how it works

Cable in focus 🌋 in the event zone
2,641 km · up since 2027 · 1 countries
Indonesia
now: noticeably slower than usual
Singapore → Sanur 30 ms (vs baseline 32 ms)
Corridors · now vs baseline
Sao Paulo → Sanur 392 ms (baseline 393)
Sydney → Sanur 310 ms (baseline 212)
Almaty → Sanur 299 ms (baseline 298)
faster100%slower
Open dossier →
Network latency index
For every monitored route the index compares its current round-trip time with that route's own 7-day norm. 100 = traffic moves at its usual speed, 108 = routes run about 8% slower than usual. Every cable weighs the same (now 313 cables, 6,254 routes). Updated hourly. Zones apply the same calculation to the cables serving a region or passing a chokepoint.
100 steady
faster100slower
⚙ Network load now
+2.3% above night floor
usual peak: 15:00 UTC · +6.9%
100 100 15.09 13:00 · 10115.09 14:00 · 10115.09 15:00 · 10115.09 16:00 · 10115.09 17:00 · 10115.09 18:00 · 10115.09 19:00 · 10115.09 20:00 · 10115.09 21:00 · 10115.09 22:00 · 10115.09 23:00 · 10116.09 00:00 · 10116.09 01:00 · 10116.09 02:00 · 10016.09 03:00 · 10016.09 04:00 · 10016.09 05:00 · 10016.09 06:00 · 10016.09 07:00 · 10016.09 08:00 · 10016.09 09:00 · 10016.09 10:00 · 10016.09 11:00 · 10016.09 12:00 · 10016.09 13:00 · 10016.09 14:00 · 10016.09 15:00 · 10016.09 16:00 · 10016.09 17:00 · 10016.09 18:00 · 10016.09 19:00 · 10016.09 20:00 · 9916.09 21:00 · 9916.09 22:00 · 9916.09 23:00 · 9917.09 00:00 · 9917.09 01:00 · 10017.09 02:00 · 10017.09 03:00 · 10017.09 04:00 · 10017.09 05:00 · 9917.09 06:00 · 9917.09 07:00 · 9917.09 08:00 · 9917.09 09:00 · 9917.09 10:00 · 10017.09 11:00 · 10017.09 12:00 · 10017.09 13:00 · 10017.09 14:00 · 10017.09 15:00 · 10017.09 16:00 · 10017.09 17:00 · 10017.09 18:00 · 10017.09 19:00 · 10017.09 20:00 · 10017.09 21:00 · 10017.09 22:00 · 10017.09 23:00 · 10018.09 00:00 · 10018.09 01:00 · 10018.09 02:00 · 10018.09 03:00 · 10018.09 04:00 · 10018.09 05:00 · 10018.09 06:00 · 10018.09 07:00 · 10018.09 08:00 · 10018.09 09:00 · 10018.09 10:00 · 10018.09 11:00 · 10018.09 12:00 · 10018.09 13:00 · 10018.09 14:00 · 10018.09 15:00 · 10018.09 16:00 · 10118.09 17:00 · 10118.09 18:00 · 10118.09 19:00 · 10018.09 20:00 · 10118.09 21:00 · 10118.09 22:00 · 10118.09 23:00 · 10119.09 00:00 · 10119.09 01:00 · 10119.09 02:00 · 10119.09 03:00 · 10019.09 04:00 · 10019.09 05:00 · 10019.09 06:00 · 10019.09 07:00 · 10019.09 08:00 · 10019.09 09:00 · 10019.09 10:00 · 10019.09 11:00 · 10019.09 12:00 · 10019.09 13:00 · 10019.09 14:00 · 10019.09 15:00 · 10019.09 16:00 · 10019.09 17:00 · 10119.09 18:00 · 10119.09 19:00 · 10019.09 20:00 · 10019.09 21:00 · 10019.09 22:00 · 10019.09 23:00 · 10020.09 00:00 · 10020.09 01:00 · 10020.09 02:00 · 10020.09 03:00 · 10020.09 04:00 · 10020.09 05:00 · 10020.09 06:00 · 10020.09 07:00 · 9920.09 08:00 · 9920.09 09:00 · 9920.09 10:00 · 9920.09 11:00 · 10020.09 12:00 · 10020.09 13:00 · 10020.09 14:00 · 10020.09 15:00 · 10020.09 16:00 · 10020.09 17:00 · 10020.09 18:00 · 10020.09 19:00 · 10020.09 20:00 · 10020.09 21:00 · 10020.09 22:00 · 10020.09 23:00 · 10021.09 00:00 · 10021.09 01:00 · 10021.09 02:00 · 10021.09 03:00 · 10021.09 04:00 · 10021.09 05:00 · 10021.09 06:00 · 10021.09 07:00 · 10021.09 08:00 · 10021.09 09:00 · 10021.09 10:00 · 10021.09 11:00 · 10021.09 12:00 · 10021.09 13:00 · 10021.09 14:00 · 10021.09 15:00 · 10021.09 16:00 · 10021.09 17:00 · 10021.09 18:00 · 10021.09 19:00 · 10021.09 20:00 · 10021.09 21:00 · 10021.09 22:00 · 10021.09 23:00 · 10022.09 00:00 · 10022.09 01:00 · 10022.09 02:00 · 10022.09 03:00 · 10022.09 04:00 · 10022.09 05:00 · 10022.09 06:00 · 10022.09 07:00 · 10022.09 08:00 · 10022.09 09:00 · 10022.09 10:00 · 10022.09 11:00 · 10022.09 12:00 · 100
16.0917.0918.0919.0920.0921.0922.09 now
7 days, hourly
at the usual level · measured across 6,254 corridors
1,103 checks today · last: Umeå → Vaasa 19 ms, 9 min ago
● Network stable · event watch
earthquake
Indonesia
M4.7event force
VS
degraded 1.9×Denpasar-Waingapu Cable Systems

M4.7 earthquake · 54 km NNW of Ende, Indonesia

6h ago
M 4.7magnitude 8.39°S · 121.47°Eepicenter Mataram Kupang Cable System (MKCS) · 54 kmnearest cable

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.

See it on the live map →
Explore the map →
716 submarine cables, landing points & routes
Watch it live →
Real-time latency, outages & network pulse
Read research →
Deep dives into cables, incidents & geography
Earlier on the networkFull chronicle →
10h M4.8 earthquake · 70 km N of Claveria, Philippines 10h M5.2 earthquake · 92 km S of Sarangani, Philippines 20h M5 earthquake · 38 km E of Nobeoka, Japan Sep 21 M5.5 earthquake · 35 km NNE of Ruteng, Indonesia Sep 20 M4.7 earthquake · 54 km SE of Shima, Japan
● Daily digest

Today on the network

September 22, 2026
1,914checks · 24h
658cables watched
0anomalies
0active alerts

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.

HANNIBAL System▲ 160.7ms today vs 51.1ms 7d-avg (▲214%) Didon▲ 159.5ms today vs 61ms 7d-avg (▲161%) PIPE Pacific Cable-1 (PPC-1)▲ 258.7ms today vs 169.8ms 7d-avg (▲52%) GO-1 Mediterranean Cable System▲ 140.8ms today vs 56.9ms 7d-avg (▲147%) Coral Sea Cable System (CS²)▲ 242.7ms today vs 165ms 7d-avg (▲47%) Equiano▲ 166.8ms today vs 100.1ms 7d-avg (▲67%) Asia Connect Cable-1 (ACC-1)▲ 304.1ms today vs 246.2ms 7d-avg (▲24%) JAKABARE▲ 231.6ms today vs 175.1ms 7d-avg (▲32%) Trapani-Kelibia 2 (KELTRA-2)▲ 166.9ms today vs 110.6ms 7d-avg (▲51%)

Latest Research

View all research →
region

Iraq switches off the internet at the same hour every exam morning: what the signal shows

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.

cable

Magnitude 6.5 earthquake west of Nikolski, Alaska; AU-Aleutian cable fully operational

Magnitude 6.5 earthquake near Nikolski, Alaska, and its impact on the AU-Aleutian submarine cable. Infrastructure endured the shock.

cable

Magnitude 6.3 earthquake west of Nikolski, Alaska; AU-Aleutian cable fully operational

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.

route

Data Detour: Almaty to Saipan via Moscow, 3104 km Off Course

Discover why internet traffic from Kazakhstan to Micronesia routes through Moscow, causing increased delays.

cable

Magnitude 5.1 earthquake near Saipan impacts RTT on key regional submarine cables

Magnitude 5.1 earthquake off Saipan caused anomalies on submarine cables TPU, GOKI, HANTRU1, and SEA-US. Analysis of consequences.

route

Cape Town to Coari: a 5168 km internet detour through Atlanta

Why do data from South Africa to Brazil go through the US, increasing latency?

region

Three cables of Mayotte: why only one leads to the mainland

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.

cable

6.5 Magnitude Earthquake Near Teluknaga: Submarine Cables Remain Fully Operational

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.

Distance Calculator

Resolving locations & calculating...

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Est. Latency
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fiber ≈ 200k km/s
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📋 Connection Details

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Coordinates A-
Coordinates B-
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⚠️ Calculated distances may differ from actual cable routes by 5-15% due to seabed terrain, cable landing infrastructure, and network peering points.
716
Submarine Cables
1,941+
Landing Points
390,238
Health Checks
< 1s
Route Calculation
Features
Network infrastructure made visible
Three layers of analysis - from theoretical cable distances to real-world packet measurements.

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.

Submarine Cable Map

Interactive map showing every cable your data touches - backbone nodes, landing stations, and submarine segments with real geographic coordinates.

RIPE Atlas Verification

Launch real network measurements from probes worldwide. Compare theoretical estimates with actual RTT and hop-by-hop packet journeys with ISP geolocation.

Latency Estimation

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.

IP & Domain Resolution

Enter cities, IP addresses, or domain names - everything is resolved to coordinates with hosting location identification and optimal cable route.

Packet Journey Analysis

Traceroute hops enriched with city, country, ISP. Phases auto-detected: local → ISP → CDN → backbone → submarine cable. Visual RTT timelines.

How It Works
From two points to a complete picture
Three-step analysis reveals the hidden infrastructure connecting any two locations.
1

Enter any two points

↑ Open the calculator

City names, IP addresses, or domains. The system resolves coordinates, identifies countries, and determines whether the route crosses oceans.

2

Smart Route calculates the path

A graph algorithm finds the optimal route through landing points and submarine cables with accurate distance multipliers for each segment type.

3

Verify with live measurements

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.

Use Cases
Built for engineers. Useful for everyone.

Network Engineers

Validate routing assumptions, estimate latency budgets, troubleshoot unexpected paths.

Gaming & Low-Latency

Understand your ping. Compare the physical speed limit vs reality for any server.

CDN & Cloud Planning

Choose optimal PoP locations based on submarine cable topology and landing proximity.

Education & Research

Teach how the physical internet works. Visualize the gap between light speed and real routing.

Submarine Cable Facts
The hidden backbone of the internet
Everything you see online travels through a global network of undersea fiber optic cables. Here's what makes it work.
1.4 million km

Total Cable Length

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.

99%

Intercontinental Data Share

Submarine cables carry over 99% of intercontinental data traffic. Despite what many people think, satellites handle only a tiny fraction of global internet traffic.

200,000 km/s

Speed of Light in Fiber

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.

25 years

Cable Lifespan

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.

~8,000m

Deepest Cable Depth

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.

~$1B+

Cost Per Major Cable

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.

ℹ️ About GeoCables - Original Research on Submarine Cable Routing

How Internet Traffic Routes Through Submarine Cables

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.

Theory vs Reality: Why Measured Latency Matters

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.

Live Cable Monitoring

Real-time health checks from GeoCables measurement servers. Full dashboard →
716
Cables Monitored
1,103
Checks Today
192ms
Avg RTT (24h)
390,238
Total Checks
🔴 Asia Connect Cable-1 (ACC-1) 247ms 162-669ms 🔴 2Africa 230ms 154-484ms 🔴 Jakarta-Bangka-Bintan-Batam-Singapore (B3JS) 133ms 16-358ms 🔴 Djibouti Africa Regional Express 1 (DARE 1) 238ms 68-465ms 🔴 Batam Dumai Melaka (BDM) 78ms 11-407ms 🔴 RISING 8 45ms 14-190ms 🔴 Indonesia Global Gateway (IGG) System 59ms 18-361ms 🔴 Palapa Ring East 346ms 293-537ms 🔴 SMPCS Packet-1 346ms 276-683ms 🔴 South Atlantic Cable System (SACS) 109ms 45-360ms 🔴 Barat Timur Indonesia-2 (BTI-2) 322ms 247-681ms 🔴 Groote Eylandt 269ms 31-501ms 🔴 Project Waterworth 230ms 22-450ms 🔴 SMPCS Packet-2 308ms 211-450ms 🔴 SJJK 337ms 264-581ms 🔴 Hawaiki Nui 1 249ms 0-502ms 🔴 SAT-3/WASC 157ms 67-447ms 🔴 Unitel North Submarine Cable (UNSC) 205ms 37-395ms 🔴 West Africa Cable System (WACS) 233ms 155-496ms 🔴 North-West Cable System 299ms 205-493ms 🔴 Trans Global Cable System (TGCS) 288ms 208-438ms 🔴 JaKa2LaDeMa 323ms 247-449ms 🔴 Italy-Libya 123ms 68-322ms 🔴 Patara-2 301ms 211-410ms 🟢 Italy-Albania 64ms 40-70ms 🔴 S-U-B Cable System 322ms 247-464ms 🔴 PIPE Pacific Cable-1 (PPC-1) 132ms 110-333ms 🟢 Ultramar GE 220ms 209-239ms 🔴 Link 4 Phase-2 330ms 252-905ms 🔴 Jakarta Surabaya Cable System (JAYABAYA) 335ms 260-482ms
🏆 Cable of the Day
Manatua
Slowest route today: 🟢 625ms from To'ahotu to Apia. · 25 hops
Overview Manatua is a submarine cable system spanning 3,634 km across the central South Pacific Ocean. It connects four island nations - Cook Islands,...
🚨 Anomaly Detected
Italy-Libya
Latency to Tripoli hit 117ms - 13.1x above baseline (22ms).
📝 Recently Updated: Cable & Landing Point Dossiers
Hachijojima-Mainland Bicentenario · 250 km Gqeberha, South Africa Halaihai · 17,483 km Polar Express · 12,650 km Tanjung Pinggir, Indonesia Hawaiki Nui 1 · 10,000 km Asia Link Cable (ALC) · 7,200 km Tata TGN-Pacific · 22,300 km Domestic Submarine Cable of Maldives (DSCoM) · 286 km Barcelos, Brazil TEGOPA · 222 km

Recent Cable Checks

Botnia Umeå → Vaasa 19ms
Trans-Pacific Express (TPE) Cable System Tanshui → Nedonna Beach 179ms
Gondwana-1 Noumea → Sydney 23ms
Batam-Rengit Cable System (BRCS) Rengit → Tanjung Pinggir 98ms
Jakarta-Bangka-Batam-Singapore (B2JS) Tanah Merah → Jakarta 17ms
BRUSA Virginia Beach → Rio de Janeiro 138ms
Proa Shima → Tanguisson Point 48ms
Apricot Tanjung Pakis → Minamiboso 198ms

Internet Health (IODA)

Russian Federation 170,881 prefixes NORMAL
India 154,833 prefixes NORMAL
Pakistan 21,080 prefixes NORMAL
United Arab Emirates 22,155 prefixes NORMAL

Frequently Asked Questions

What is a submarine cable?
A submarine cable is a fiber-optic cable laid on the ocean floor to carry telecommunications data between land-based stations. Over 95% of intercontinental internet traffic travels through these cables - they are the physical backbone of the global internet, far more important than satellites for bulk data transfer.
How does GeoCables monitor cable health?
GeoCables operates its own distributed network of measurement servers, including in regions poorly covered by public measurements. These servers run continuous ping and traceroute measurements to destinations near cable landing points, comparing real-time RTT (Round Trip Time) against historical baselines. When RTT exceeds 4x the baseline, the system flags an anomaly.
How accurate is the cable distance calculator?
The calculator uses real submarine cable route data from the global cable inventory (716 cables, 1,900+ landing points) with a Dijkstra-based routing algorithm. Distances are estimates based on geographic cable paths - actual distances may vary by 5-15% depending on cable slack, seabed terrain, and routing decisions made during cable installation.
Why is real latency higher than the theoretical minimum?
Light travels through fiber at about 200,000 km/s - two-thirds the speed of light in vacuum. But real-world RTT is typically 1.5-4x higher than the physical minimum due to optical amplifier processing delays, routing overhead at each network hop, protocol processing, peering between different carriers, and suboptimal path selection by ISPs.
What happens when a submarine cable is cut?
When a cable is severed, internet traffic automatically reroutes through alternative paths via the Border Gateway Protocol (BGP). Users may experience higher latency but rarely total outages - the internet was designed to route around damage. However, repairs can take weeks to months, requiring specialized cable ships that are in short supply globally.
How many submarine cables exist in the world?
As of 2026, there are approximately 716 submarine cable systems in service or under construction worldwide, spanning over 1.5 million kilometers of ocean floor. GeoCables tracks all of them, with active health monitoring on the most critical routes.

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