Distance from Epicenter
Calculate your distance from an earthquake epicenter and check if you would have felt the shaking.
CalculationHow Distance from the Epicenter Affects Shaking
The epicenter is the point on the Earth's surface directly above the earthquake's focus (hypocenter), where the fault rupture originates. Seismic waves radiate outward from the hypocenter in all directions, and their amplitude decreases with distance due to geometric spreading and attenuation — the absorption of energy by rock and soil. This is why shaking intensity diminishes as you move farther from the epicenter, though the rate of decrease depends on local geology, earthquake depth, and wave type.
The felt radius — the maximum distance at which people can perceive an earthquake — depends primarily on magnitude and depth. A shallow M6.0 earthquake might be felt 200–400 km away, while a deep M6.0 event at 300 km depth might have a smaller felt radius despite the same magnitude. Shallow earthquakes concentrate energy near the surface, producing stronger but more localized shaking, while deep earthquakes distribute energy over a wider but less intense area.
Key Concepts
- The Haversine formula calculates great-circle distance between two points on a sphere, which is the method used to determine epicentral distance.
- Seismic wave types — P-waves (primary, compressional) arrive first and travel fastest; S-waves (secondary, shear) arrive next and cause more damage; surface waves (Love and Rayleigh) arrive last but carry the most destructive energy.
- Intensity attenuation models (such as those from USGS ShakeMap) predict how Modified Mercalli Intensity decreases with distance for a given magnitude and depth.
- Site amplification can cause distant locations on soft soil to experience stronger shaking than closer locations on bedrock.
Common Uses
- Quickly determining whether your location falls within the felt area of a reported earthquake.
- Estimating shaking intensity at a specific distance for emergency planning scenarios.
- Understanding how depth and magnitude interact to produce different shaking footprints.
How to Use
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1
Set the Epicenter Coordinates
Enter the earthquake epicenter latitude and longitude, or search by a recent event name. Epicenter coordinates are published by USGS, EMSC, and national seismological agencies within minutes of a significant event.
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2
Enter Your Location
Provide your current location as coordinates, a city name, or an address. The tool calculates the great-circle (surface) distance using the Haversine formula.
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3
Interpret Your Shaking Estimate
Review your estimated Modified Mercalli Intensity (MMI) and whether the shaking would likely be felt. The estimate uses USGS ShakeMap attenuation relations and assumes average soil conditions.
About
The relationship between distance and ground shaking follows well-defined attenuation functions central to seismic hazard analysis. As seismic waves travel outward from the hypocenter, their amplitude decreases due to geometric spreading (energy distributed over an ever-larger spherical surface) and anelastic attenuation (energy absorbed as heat by imperfectly elastic rock). These effects are codified in Ground Motion Prediction Equations (GMPEs), empirical models derived from thousands of recorded earthquakes that predict median and standard deviation of ground motion parameters—such as peak ground acceleration (PGA) or spectral acceleration—as functions of magnitude, distance, depth, and site class.
ShakeMap, developed by the USGS and now adopted by agencies worldwide, combines recorded ground motions from seismograph networks with GMPE predictions to produce near-real-time maps of shaking intensity across a region. The maps use the Modified Mercalli Intensity (MMI) scale, where MMI I–II represents not-felt or barely-felt shaking, MMI V causes objects to fall from shelves, MMI VII–VIII damages poorly constructed buildings, and MMI X–XII represents near-total structural destruction. ShakeMaps are generated within minutes of significant earthquakes and are used immediately by emergency managers for resource deployment decisions.
For coastal regions, distance from a submarine epicenter carries additional significance beyond ground shaking: earthquake-generated tsunamis. Tsunamis are most efficiently generated by thrust earthquakes on shallow-dipping (< 30°) submarine faults with vertical displacement components greater than roughly 1 meter. The 2004 Sumatra tsunami was triggered 250 km offshore Aceh; wave heights at the coast reached 30 m. Coastal residents within 100 km of a subduction zone should be familiar with the Drop-Cover-Hold guidance for shaking, followed by immediate vertical or inland evacuation upon feeling prolonged shaking lasting more than 20 seconds.