
Satellite Communication Course
Master the full technical stack of satellite communication, from orbital mechanics and link budget analysis to earth station design and spectrum management. This course gives engineers and telecom professionals the rigorous, hands-on knowledge needed to design, operate, and troubleshoot real satellite networks. Whether you work in ground systems, network operations, or system engineering, you will finish with skills that apply immediately on the job.
What you will learn:
You will build a deep understanding of satellite system architecture, signal propagation, and orbital mechanics before moving into practical link budget calculations and modulation-coding design. The course covers FDMA, TDMA, CDMA, and OFDMA multiple access schemes, along with transponder loading and bandwidth optimization. You will analyze interference sources, apply mitigation techniques, and navigate spectrum coordination and ITU regulatory frameworks. Earth station design, RF equipment selection, and commissioning procedures are covered in full. Emerging topics including high-throughput satellites, LEO constellations, software-defined payloads, and 5G non-terrestrial network integration round out the curriculum.
How you study in a practical way Satellite Communication Course
How you practice Satellite Communication Course
For companies who want to train their team
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 Satellite Communication
Foundations of Satellite Communication
Lesson 1 • History and Evolution of Satellites
Traces satellite development from early experimental launches to modern broadband constellations. Provides context for understanding current system design choices.
Lesson 2 • Satellite System Architecture Overview
Introduces space segment, ground segment, and user segment components. Builds a mental model of end-to-end signal flow used throughout the course.
Lesson 3 • Signal Propagation in Space
Examines free-space path loss, atmospheric effects, and propagation delays. Prepares students to quantify link impairments in subsequent chapters.
Lesson 4 • Orbital Mechanics and Satellite Orbits
Covers Kepler's laws, orbital parameters, and orbit classifications. Connects orbital geometry to coverage, latency, and link budget planning.
Lesson 5 • Electromagnetic Spectrum and Frequency Bands
Explains frequency allocation, band designations, and regulatory coordination concepts. Establishes the spectral foundation for link design and interference analysis.
Chapter 2HideHide detailsSee detailsSatellite Link Budget Analysis
Satellite Link Budget Analysis
Lesson 1 • Link Budget Spreadsheet Design
Guides construction of a structured link budget tool covering all loss and gain terms. Students validate results against published satellite operator specifications.
Lesson 2 • Carrier-to-Noise Ratio Calculations
Derives C/N, C/No, and Eb/No from first principles using link budget components. Provides the analytical core for evaluating link performance margins.
Lesson 3 • Rain Fade Mitigation Techniques
Analyzes rain attenuation statistics and countermeasures including uplink power control and site diversity. Directly applies propagation knowledge to link budget margins.
Lesson 4 • Transmitter and Antenna Parameters
Covers EIRP, antenna gain, beamwidth, and transmit power. These parameters form the source side of every link budget calculation.
Lesson 5 • Receiver Sensitivity and Noise
Explains noise temperature, figure of merit G/T, and receiver sensitivity. Connects receiver performance to the carrier-to-noise ratio outcome.
Chapter 3HideHide detailsSee detailsModulation and Coding for Satellite Links
Modulation and Coding for Satellite Links
Lesson 1 • DVB-S2 and DVB-S2X Standards
Examines the DVB-S2 and DVB-S2X framing, modulation, and coding options used in broadcast and broadband satellites. Connects standards to real transponder configurations.
Lesson 2 • Adaptive Modulation and Coding Systems
Describes ACM loop operation, channel estimation, and switching thresholds. Demonstrates throughput gains over fixed modulation under variable propagation.
Lesson 3 • Spread Spectrum Techniques
Explains DSSS and FHSS principles, processing gain, and anti-jam applications. Relevant to military, government, and interference-resistant commercial links.
Lesson 4 • Forward Error Correction Coding
Covers convolutional, turbo, and LDPC codes with coding gain analysis. Shows how FEC reduces required Eb/No to meet availability targets.
Lesson 5 • Digital Modulation Fundamentals
Introduces BPSK, QPSK, and higher-order QAM with constellation diagrams. Establishes spectral efficiency and BER trade-offs central to satellite design.
Chapter 4HideHide detailsSee detailsMultiple Access and Transponder Loading
Multiple Access and Transponder Loading
Lesson 1 • Demand Assignment and Dynamic Allocation
Explains DAMA protocols, bandwidth-on-demand, and dynamic resource management. Prepares students to design responsive networks for bursty traffic.
Lesson 2 • Transponder Power and Bandwidth Loading
Quantifies power-bandwidth trade-offs and loading efficiency for mixed carrier scenarios. Directly applies link budget skills to multi-carrier transponder planning.
Lesson 3 • Time Division Multiple Access
Covers TDMA burst structure, frame efficiency, and synchronization requirements. Shows how TDMA enables full transponder saturation with a single carrier.
Lesson 4 • Code Division and OFDMA Access
Introduces CDMA orthogonality, soft capacity, and OFDMA subcarrier allocation. Connects these schemes to broadband satellite and return-link designs.
Lesson 5 • Frequency Division Multiple Access
Analyzes FDMA channel plans, guard bands, and intermodulation in saturated transponders. Establishes the baseline multiple access method for comparison.
Chapter 5HideHide detailsSee detailsSatellite Network Architectures
Satellite Network Architectures
Lesson 1 • Satellite Broadband and IP Integration
Covers TCP/IP performance over satellite, acceleration techniques, and QoS implementation. Bridges satellite physical layer knowledge to IP network operations.
Lesson 2 • Non-Geostationary Orbit Constellations
Analyzes LEO and MEO constellation design, inter-satellite links, and handover management. Addresses latency advantages and operational complexity of NGSO systems.
Lesson 3 • VSAT Network Design
Covers VSAT terminal specifications, hub architecture, and network management. Connects multiple access and link budget knowledge to enterprise network deployment.
Lesson 4 • Star and Mesh Topology Fundamentals
Compares hub-and-spoke star networks with full-mesh direct connectivity. Establishes topology selection criteria based on traffic patterns and latency needs.
Lesson 5 • High-Throughput Satellite Systems
Examines spot-beam frequency reuse, gateway architecture, and HTS capacity gains. Shows how HTS design multiplies throughput compared to wide-beam satellites.
Chapter 6HideHide detailsSee detailsSatellite Payload and Spacecraft Systems
Satellite Payload and Spacecraft Systems
Lesson 1 • On-Orbit Anomaly Management
Addresses common on-orbit anomalies, telemetry interpretation, and contingency procedures. Equips students to support spacecraft operations teams during anomaly resolution.
Lesson 2 • Transponder Architecture and Types
Covers bent-pipe, regenerative, and digital transparent processor transponders. Establishes how payload type affects link budget, flexibility, and on-orbit reconfigurability.
Lesson 3 • Spacecraft Bus Subsystems
Examines power, thermal, attitude control, and propulsion subsystems supporting the payload. Understanding bus constraints is essential for payload sizing and lifetime planning.
Lesson 4 • Satellite Launch and Early Orbit Operations
Covers launch vehicle selection, injection accuracy, and early orbit phase procedures. Provides operational context for understanding satellite availability and commissioning timelines.
Lesson 5 • Antenna and Beam Forming on Satellites
Describes reflector, phased array, and digital beam-forming antennas used on modern payloads. Connects beam design to coverage, frequency reuse, and HTS architecture.
Chapter 7HideHide detailsSee detailsEarth Station Design and Operations
Earth Station Design and Operations
Lesson 1 • RF Equipment and Signal Chain
Examines LNA, BUC, HPA, and waveguide components in the earth station RF chain. Connects component specifications to link budget transmit and receive parameters.
Lesson 2 • Site Selection and Environmental Factors
Addresses site survey criteria, interference environment assessment, and civil infrastructure needs. Ensures earth station performance is not degraded by site-related factors.
Lesson 3 • Earth Station Commissioning and Monitoring
Guides acceptance testing, carrier monitoring, and fault management procedures. Prepares operators to maintain service quality and respond to outages efficiently.
Lesson 4 • Baseband and Modem Equipment
Describes satellite modem functions, interface standards, and baseband processing. Ties modulation and coding knowledge to physical modem configuration.
Lesson 5 • Antenna Systems and Pointing
Covers reflector antenna types, feed systems, and precision pointing mechanisms. Antenna performance directly determines the G/T and EIRP of the earth station.
Chapter 8HideHide detailsSee detailsInterference Analysis and Spectrum Management
Interference Analysis and Spectrum Management
Lesson 1 • Interference Detection and Geolocation
Describes spectrum monitoring, carrier ID, and time-difference-of-arrival geolocation methods. Enables operators to locate and resolve interference sources rapidly.
Lesson 2 • Types and Sources of Satellite Interference
Classifies co-channel, adjacent channel, cross-polarization, and terrestrial interference sources. Builds the taxonomy needed for systematic interference diagnosis.
Lesson 3 • Interference Calculation Methods
Applies carrier-to-interference ratio analysis and protection ratio concepts to quantify interference impact. Extends link budget skills to multi-system interference scenarios.
Lesson 4 • Interference Mitigation Techniques
Covers polarization isolation, orbital separation, uplink power control, and filtering as mitigation tools. Provides practical countermeasures applicable to operational networks.
Lesson 5 • Spectrum Coordination and Regulatory Frameworks
Explains international spectrum coordination procedures, filing processes, and coordination agreements. Prepares students to navigate regulatory requirements for satellite operations.
Your valid completion certificate
This course is for you:
RF engineers wanting structured satellite-specific technical depth.
Telecom network planners expanding into satellite capacity management.
Military communications officers overseeing SATCOM infrastructure and operations.
Aerospace graduates entering their first satellite industry engineering role.
IT network administrators transitioning into satellite broadband operations teams.
Amateur radio enthusiasts pursuing professional satellite communication credentials.
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