
Geophysicist Course
Master the full spectrum of geophysical methods used in hydrocarbon exploration, mining, environmental assessment, and engineering projects. This course takes you from Earth's physical foundations through seismic, gravity, magnetic, electrical, and borehole techniques. You will gain the quantitative skills and industry workflows that employers demand from professional geophysicists.
What you will learn:
You will develop a rigorous understanding of seismic wave theory, survey design, and data processing, alongside gravity, magnetic, and electromagnetic methods for subsurface characterization. The course covers well log interpretation, geophysical inversion, and integrated multi-method workflows used in real exploration and engineering projects. You will also learn computational tools, including Python programming and open-source geophysical libraries, to automate and visualize your analyses. Applied chapters address hydrocarbon exploration, mineral targeting, and environmental site investigation. Professional topics including technical reporting, project management, and ethical practice prepare you to operate confidently in industry settings.
How you study in practice Geophysicist Course
How you practice Geophysicist Course
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course Content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Geophysics and Earth Structure
Foundations of Geophysics and Earth Structure
Lesson 1 • Earth's Internal Structure and Composition
Covers crust, mantle, and core composition using seismic and density evidence. Establishes the structural framework all geophysical methods reference.
Lesson 2 • Plate Tectonics and Geodynamics
Explains plate motion, boundary types, and mantle convection as drivers of geophysical processes. Provides tectonic context for interpreting anomalies.
Lesson 3 • Physical Properties of Earth Materials
Examines density, elasticity, magnetism, and electrical conductivity of rocks and minerals. Links material properties to measurable geophysical signals.
Lesson 4 • Geophysical Data Types and Coordinate Systems
Introduces field, potential, and time-series data formats alongside geographic reference systems. Prepares students to handle raw geophysical datasets correctly.
Lesson 5 • Mathematics and Physics for Geophysicists
Reviews vector calculus, differential equations, and wave mechanics essential for geophysical modeling. Ensures mathematical fluency before quantitative methods are introduced.
Chapter 2HideHide detailsSee detailsSeismic Methods and Wave Propagation
Seismic Methods and Wave Propagation
Lesson 1 • Seismic Reflection Principles
Explains reflection coefficients, normal moveout, and common midpoint geometry. Forms the core of hydrocarbon and structural seismic exploration.
Lesson 2 • Seismic Data Processing Workflow
Guides students through demultiplexing, filtering, stacking, and migration steps. Produces interpretable seismic sections from raw field records.
Lesson 3 • Seismic Refraction and Tomography
Covers head-wave travel times, delay-time methods, and tomographic inversion for velocity models. Complements reflection methods for near-surface and crustal studies.
Lesson 4 • Seismic Survey Design and Acquisition
Addresses source types, receiver arrays, fold, and noise mitigation in land and marine surveys. Connects theoretical requirements to practical field logistics.
Lesson 5 • Seismic Wave Theory
Derives P-wave, S-wave, and surface wave equations from elastic theory. Provides the physical basis for all seismic acquisition and processing techniques.
Chapter 3HideHide detailsSee detailsGravity and Magnetic Methods
Gravity and Magnetic Methods
Lesson 1 • Gravity Anomaly Interpretation
Applies forward modeling and inversion to Bouguer and free-air anomalies for density structure. Connects anomaly patterns to geological bodies and tectonic settings.
Lesson 2 • Gravitational Potential Field Theory
Derives Newton's law of gravitation, Poisson's equation, and the geoid concept. Establishes the mathematical framework for gravity anomaly computation.
Lesson 3 • Magnetic Survey Acquisition and Reduction
Covers airborne, marine, and ground magnetometer surveys, diurnal correction, and IGRF removal. Prepares students to produce clean total-field anomaly grids.
Lesson 4 • Earth's Magnetic Field and Rock Magnetism
Explains the geomagnetic field, its components, and the magnetic properties of minerals. Provides the physical basis for magnetic survey interpretation.
Lesson 5 • Magnetic Anomaly Modeling and Filtering
Applies reduction to pole, upward continuation, and Euler deconvolution to magnetic grids. Enables depth estimation and structural boundary detection.
Chapter 4HideHide detailsSee detailsElectrical and Electromagnetic Methods
Electrical and Electromagnetic Methods
Lesson 1 • Frequency-Domain Electromagnetic Methods
Addresses inductive EM theory, skin depth, and frequency-domain ground and airborne systems. Enables rapid conductivity mapping over large areas.
Lesson 2 • Electrical Resistivity Fundamentals
Derives current flow equations, apparent resistivity, and electrode array geometry. Grounds students in the physics before field application.
Lesson 3 • Induced Polarization Method
Explains chargeability, time-domain and frequency-domain IP, and Cole-Cole relaxation models. Extends resistivity surveys to detect disseminated sulfides and clay.
Lesson 4 • Vertical Electrical Sounding and Profiling
Covers 1D sounding curves, layer equivalence, and 2D resistivity profiling for lateral mapping. Connects data acquisition geometry to interpretable depth sections.
Lesson 5 • Time-Domain EM and Magnetotellurics
Covers transient EM decay curves and magnetotelluric impedance tensors for deep resistivity profiling. Addresses crustal and basin-scale conductivity structures.
Chapter 5HideHide detailsSee detailsGeophysical Data Processing and Inversion
Geophysical Data Processing and Inversion
Lesson 1 • Linear and Nonlinear Inversion Methods
Applies least-squares, regularization, and gradient-based optimization to geophysical inverse problems. Enables quantitative subsurface property estimation.
Lesson 2 • Uncertainty Quantification and Model Appraisal
Evaluates model resolution, trade-offs, and uncertainty using covariance analysis and Monte Carlo methods. Ensures responsible communication of inversion results.
Lesson 3 • Noise Identification and Suppression
Identifies coherent and random noise types and applies f-k filtering, stacking, and median filters. Improves signal-to-noise ratio before interpretation.
Lesson 4 • Forward Modeling Concepts
Constructs synthetic responses for gravity, magnetic, seismic, and EM models to test hypotheses. Establishes the link between earth models and predicted observations.
Lesson 5 • Signal Processing Fundamentals
Covers sampling theory, Fourier transforms, filtering, and convolution for geophysical signals. Provides the mathematical toolkit for all processing workflows.
Chapter 6HideHide detailsSee detailsWell Logging and Borehole Geophysics
Well Logging and Borehole Geophysics
Lesson 1 • Principles of Wireline Logging
Introduces the borehole environment, tool conveyance, and log quality control. Establishes the operational context for all subsequent log interpretation.
Lesson 2 • Imaging and Structural Logs
Examines formation microimager and acoustic televiewer data for fracture and bedding orientation. Adds structural context to petrophysical log suites.
Lesson 3 • Porosity and Lithology Logs
Covers neutron, density, and sonic logs for porosity estimation and lithology discrimination. Provides the foundation for reservoir characterization workflows.
Lesson 4 • Resistivity and Saturation Estimation
Applies induction, laterolog, and microresistivity tools with Archie's equation to estimate water saturation. Links resistivity logs to hydrocarbon identification.
Lesson 5 • Log Integration and Petrophysical Modeling
Combines multiple logs into petrophysical models for net pay and reservoir quality assessment. Bridges borehole data to seismic and geological interpretations.
Chapter 7HideHide detailsSee detailsIntegrated Subsurface Interpretation
Integrated Subsurface Interpretation
Lesson 1 • Rock Physics and Seismic Attributes
Links elastic properties to lithology and fluid content using rock physics templates and seismic attributes. Enables direct hydrocarbon and lithology prediction.
Lesson 2 • 3D Geological Model Construction
Builds volumetric geological models from interpreted horizons, faults, and property grids. Delivers models suitable for resource estimation and simulation.
Lesson 3 • Multi-Method Data Integration
Combines gravity, magnetic, EM, seismic, and well data using joint interpretation workflows. Reduces ambiguity and improves confidence in subsurface models.
Lesson 4 • Seismic Stratigraphic Interpretation
Identifies seismic facies, sequence boundaries, and depositional systems on 2D and 3D volumes. Translates seismic geometry into stratigraphic and sedimentological meaning.
Lesson 5 • Structural Interpretation and Mapping
Maps faults, folds, and unconformities on seismic sections and converts time to depth. Produces structural maps that guide drilling and resource assessment.
Chapter 8HideHide detailsSee detailsApplied Geophysics in Industry Contexts
Applied Geophysics in Industry Contexts
Lesson 1 • Hydrocarbon Exploration Workflows
Guides basin analysis, lead generation, and prospect risking using integrated geophysical data. Connects technical interpretation to exploration decision-making.
Lesson 2 • Environmental and Engineering Geophysics
Uses GPR, MASW, ERT, and microgravity for site characterization, contamination mapping, and foundation assessment. Addresses near-surface targets at engineering scales.
Lesson 3 • Mining and Mineral Exploration Geophysics
Applies gravity, magnetic, EM, and IP methods to target ore deposits and map alteration zones. Addresses the specific geological targets and survey designs used in mining.
Lesson 4 • Technical Reporting and Presentation
Structures geophysical reports, maps, and presentations for technical and non-technical audiences. Ensures findings are communicated clearly and defensibly.
Lesson 5 • Geophysical Project Management
Covers survey scoping, contractor selection, quality control, and budget management for geophysical programs. Develops the operational skills needed to lead field projects.
Your valid completion certificate
This course is for you:
Geology graduate: seeking to add geophysical methods to their technical toolkit.
Mining exploration professional: wanting to interpret geophysical contractor data independently.
Physics graduate: looking to apply quantitative skills to subsurface earth problems.
Environmental consultant: needing to scope and evaluate near-surface geophysical surveys.
Petroleum engineer: aiming to collaborate more effectively with geophysics interpretation teams.
Career changer: transitioning from academia or another science field into applied geophysics.
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