Cable Latency Estimator
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Estimate network latency for submarine cables, fiber optic links, and satellite connections. Enter distance to see theoretical and real-world round-trip times.
Preset Routes
Latency Estimate
One-Way
ms
Theoretical
Round-Trip
ms
Theoretical RTT
Real-World
ms
With 1.4x overhead
Compared to Human Reaction Time
This cable latency is of human reaction time (200 ms).
How to Use
-
1
Enter distance
Type the cable distance in kilometers between two endpoints, or select a preset route like NYC to London (5,600 km).
-
2
Choose cable type
Select the transmission medium: fiber optic (submarine or terrestrial), copper, or satellite (GEO orbit).
-
3
Read the results
View theoretical one-way delay, round-trip time (RTT), and a real-world estimate that includes routing and protocol overhead.
About
The global submarine cable network spans over 1.4 million kilometers of fiber optic cable laid across ocean floors, carrying more than 95% of intercontinental data traffic. These cables are typically 17-21 mm in diameter and contain multiple fiber pairs, each capable of carrying terabits per second using wavelength-division multiplexing.
Latency in fiber optic cables is fundamentally limited by the speed of light in glass. The refractive index of the silica core (approximately 1.47) slows light to about 200,000 km/s, compared to 299,792 km/s in vacuum. This means the theoretical minimum one-way latency between New York and London (5,600 km of cable) is about 28 milliseconds.
In practice, real-world latency is higher due to signal regeneration at optical amplifiers spaced every 60-80 km, routing through network switches at landing stations, protocol overhead from TCP and TLS handshakes, and the physical cable path being longer than a straight line. These factors combine to produce round-trip times roughly 1.4 times the theoretical minimum.