GPS Geodesy
Definition
The use of Global Positioning System receivers to measure tectonic plate motion and crustal deformation with millimeter precision. Reveals how strain accumulates on faults between earthquakes.
Example
GPS stations showed the 2011 Tohoku earthquake moved Japan's coastline 2.4 meters eastward.
Related Terms
Related Guides
Understanding the Moment Magnitude Scale
The moment magnitude scale (Mw) is the modern gold standard for measuring earthquakes. Learn how it works and why it replaced the Richter scale.
The Energy of Earthquakes: TNT, Atomic Bombs, and Beyond
A magnitude 9 earthquake releases energy equal to 25,000 nuclear bombs. Explore the staggering energy scale of earthquakes with real comparisons.
The 2011 Tohoku Earthquake and Tsunami: A Complete Analysis
The 2011 M9.1 Tohoku earthquake triggered a devastating tsunami and nuclear disaster. A comprehensive analysis of one of history's worst earthquakes.
The 2015 Nepal Earthquake: The Gorkha Quake
The 2015 M7.8 Nepal earthquake devastated Kathmandu and triggered avalanches on Everest. A study in building vulnerability and international response.
The 2010 Chile Earthquake: Megathrust Lessons
The 2010 M8.8 Chile earthquake showed how strong building codes save lives. Lessons from one of the largest earthquakes ever recorded.
New Zealand's Alpine Fault: Overdue for a Major Quake
New Zealand's Alpine Fault has a 75% chance of rupturing within 50 years. Learn about this locked fault and its potential M8+ earthquake.
Subduction Zones: Earth's Most Powerful Earthquake Factories
Subduction zones produce the world's largest earthquakes including the M9.5 Chile 1960 event. Learn how they work and where they exist.
How Faults Work: Strike-Slip, Normal, and Reverse
Faults are where earthquakes happen. Learn the three main fault types and how each produces different kinds of seismic events.
GPS and Earthquakes: Measuring Ground Deformation
GPS stations track millimeter-scale crustal movements revealing how strain builds on faults between earthquakes.
InSAR: Seeing Earthquakes from Space
Satellite radar reveals ground deformation from earthquakes with centimeter precision. Learn how InSAR maps fault slip from orbit.
Frequently Asked Questions
The epicenter is the point on the Earth's surface directly above the hypocenter (focus) where the earthquake rupture begins. It is typically reported as latitude and longitude coordinates. The strongest shaking usually occurs near the epicenter, though local soil conditions and fault geometry can shift the zone of maximum damage.
A seismograph (or seismometer) is an instrument that detects and records ground motion caused by seismic waves. Modern broadband seismometers can detect movements smaller than the width of an atom. Networks of seismographs around the world enable scientists to locate earthquakes and determine their magnitude within minutes.
P-waves (primary waves) are compressional waves that travel fastest through rock, arriving first at seismic stations. S-waves (secondary waves) are shear waves that arrive later but cause more ground shaking. P-waves travel through solids, liquids, and gases; S-waves only travel through solids. The time difference between them helps determine earthquake distance.
The hypocenter (or focus) is the point within the Earth where an earthquake rupture initiates. It is described by latitude, longitude, and depth. The vertical distance between the hypocenter and the surface directly above is the earthquake's depth, which strongly influences how the earthquake is felt at the surface.
Seismology is the scientific study of earthquakes and the propagation of seismic waves through the Earth. It encompasses earthquake detection, location, and characterization; Earth's internal structure; seismic hazard assessment; and earthquake engineering. Seismologists use data from global seismograph networks to study these phenomena.