Historical Earthquake Search
Search and filter the historical earthquake database by country, magnitude, year, and impact.
AnalysisExploring the Historical Earthquake Record
The historical earthquake record stretches back over 4,000 years, with the earliest documented events dating to approximately 2150 BC in China. This database draws from the NOAA National Centers for Environmental Information (NCEI) Significant Earthquake Database, which catalogs over 5,700 earthquakes that caused deaths, significant damage, or had magnitudes of 7.5 or greater. The instrumental era of seismology began only in the late 1800s, so earlier records rely on written accounts, geological evidence, and archaeological findings.
Studying historical earthquakes reveals important patterns. The global earthquake record shows that the same fault systems produce repeated large earthquakes, often with recurrence intervals of decades to centuries. The Cascadia Subduction Zone, for example, last ruptured in a M9.0 event in 1700 and produces such events roughly every 200–500 years. Historical analysis also demonstrates that earthquake fatalities are driven more by building vulnerability and population density than by magnitude alone — the 2010 Haiti earthquake (M7.0) killed over 200,000 people, while the stronger 2010 Chile earthquake (M8.8) killed 525, largely due to Chile's superior building codes.
Key Insights from Historical Data
- The deadliest earthquake on record is the 1556 Shaanxi earthquake in China (estimated M8.0–8.3), which killed approximately 830,000 people — most lived in yaodong cave dwellings carved into loess cliffs that collapsed.
- Tsunamis generated by submarine earthquakes have historically caused the majority of fatalities in great ocean-bordering earthquakes, as seen in the 2004 Indian Ocean event (M9.1, ~230,000 deaths).
- Earthquake catalogs become increasingly complete over time: pre-1900 records are dominated by very large or very deadly events, while the instrumental era captures progressively smaller earthquakes.
- Seismic gaps — fault segments that have not ruptured in an unusually long time — are areas of elevated concern, as accumulated strain must eventually be released.
Common Uses
- Researching the seismic history of a specific country or region for academic, journalistic, or policy purposes.
- Identifying patterns in earthquake recurrence to understand long-term seismic risk.
- Finding historical tsunami-generating earthquakes for coastal hazard assessment.
- Comparing casualty figures across events to study how building codes and preparedness affect outcomes.
How to Use
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Set Your Search Filters
Filter the USGS and ISC historical catalog by region (country, bounding box, or fault system), magnitude range (Mw ≥ 4.0 for complete global coverage post-1976), date range, and depth. The USGS catalog extends to 1900 for events Mw ≥ 6.0.
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Sort and Explore Results
Sort results by magnitude, date, depth, or fatalities. Click any event to access the full USGS event page with focal mechanism, ShakeMap, PAGER loss estimates, and Did You Feel It reports if available.
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Export for Analysis
Export filtered results as CSV or GeoJSON for use in mapping tools or statistical analysis. Note that catalog completeness varies by region and time period—pre-1960 catalogs are substantially incomplete below M6.5 in many regions.
About
Historical earthquake catalogs are the foundational datasets of earthquake science, encoding the accumulated seismic history of a region across centuries of observations. The USGS Earthquake Hazards Program catalog, the ISC Bulletin, and regional catalogs such as the Japan Meteorological Agency (JMA) catalog are continuously updated as new events occur and historical events are re-analyzed with modern methods. Catalog completeness—the minimum magnitude above which all earthquakes in a region are reliably recorded—is the key limitation for time-series analysis; completeness typically increases (improves) over time with denser networks and is spatially variable, being highest in Japan, California, and parts of Europe.
The shift from analog to digital seismograph networks beginning in the 1970s–80s dramatically improved both completeness and parameter accuracy. Modern moment tensor catalogs (Harvard CMT, GCMT, USGS W-phase CMT) provide standardized source mechanism solutions for all M ≥ 5.5 events since 1976, enabling global analyses of focal mechanism populations, stress field orientations, and tectonic regime classification. The IRIS SYNGINE and IRIS DMC provide open access to seismic waveform archives, enabling retrospective analysis of historical events with contemporary methods.
Open data policies have transformed earthquake science's ability to mine historical records. The USGS ComCat (Comprehensive Earthquake Catalog) provides API access to over 3 million events with searchable parameters; the ISC catalog contains 10+ million events since 1900. Machine learning approaches applied to these large catalogs are identifying previously undetected seismicity patterns, precisely relocating historical events using modern velocity models, and extracting fault geometry from waveform similarity clustering. The emerging field of earthquake forensics combines these catalog analyses with paleoseismic field observations, InSAR surface deformation records, and geodetic strain rate models to produce increasingly comprehensive seismic source models for hazard assessment.