
Telecommunications Systems Course
Master the full stack of telecommunications systems, from physical signal transmission to network security and cloud integration. This course gives engineers and IT professionals the technical depth to design, operate, and secure modern telecom networks. Develop job-ready expertise across wireless, optical, VoIP, and network management domains.
What you will learn:
You will gain a thorough understanding of telecom fundamentals, including signal types, transmission media, and network architecture. The course covers data link and network layer protocols, VoIP systems, and mobile technologies from 3G through 5G. You will explore optical transport, WAN design, and network security practices specific to telecom environments. Network management frameworks, automation tools, and performance monitoring are also addressed in detail. Supplementary content covers SDN, NFV, IoT connectivity, cloud computing, and data analytics for network operations.
How you study in practice Telecommunications Systems Course
How you practise Telecommunications Systems 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 specific needs of your company.
Course content
8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Telecommunications Systems
Foundations of Telecommunications Systems
Lesson 1 • Regulatory and Standards Frameworks
Explains how international bodies and spectrum regulators shape telecom design. Students can identify compliance requirements relevant to system planning.
Lesson 2 • Core Concepts of Signal Transmission
Introduces analog and digital signals, bandwidth, and noise. Connects signal theory to practical transmission quality and system design decisions.
Lesson 3 • Telecom Network Architecture Overview
Maps the layers of a telecom network from access to core. Provides a structural framework used throughout the course for analysing system components.
Lesson 4 • History and Evolution of Telecom
Traces telecom from analog telegraph to modern digital networks. Establishes context for understanding why current architectures exist and how standards evolved.
Chapter 2HideHide detailsSee detailsTransmission Media and Physical Layer
Transmission Media and Physical Layer
Lesson 1 • Fibre Optic Transmission Systems
Explains light propagation, fibre types, and optical components. Demonstrates why fibre is the backbone of high-capacity, long-distance networks.
Lesson 2 • Copper-Based Transmission Technologies
Covers twisted-pair and coaxial cable properties, limitations, and use cases. Links physical characteristics to achievable data rates and deployment scenarios.
Lesson 3 • Multiplexing and Channel Capacity
Teaches TDM, FDM, and OFDM techniques for sharing transmission media. Students apply Shannon's theorem to estimate maximum channel throughput.
Lesson 4 • Physical Layer Performance Metrics
Defines bit error rate, latency, jitter, and throughput as measurable KPIs. Establishes the measurement vocabulary used in all subsequent chapters.
Lesson 5 • Wireless Transmission Fundamentals
Introduces radio wave propagation, antenna types, and path loss models. Connects wireless physics to practical link budget calculations.
Chapter 3HideHide detailsSee detailsData Link and Network Layer Protocols
Data Link and Network Layer Protocols
Lesson 1 • Quality of Service at the Network Layer
Explains traffic classification, queuing, and policing for service differentiation. Connects QoS mechanisms to telecom service-level agreement fulfilment.
Lesson 2 • Data Link Layer Fundamentals
Covers framing, MAC addressing, and error detection at Layer 2. Provides the foundation for understanding switching and LAN technologies.
Lesson 3 • Ethernet and Switching Technologies
Examines Ethernet standards, VLAN segmentation, and switch operation. Students can design segmented LAN topologies for telecom environments.
Lesson 4 • IP Addressing and Subnetting
Teaches IPv4 and IPv6 addressing, CIDR notation, and subnet design. Directly enables students to plan address spaces for telecom networks.
Lesson 5 • Routing Protocols and Path Selection
Introduces static routing, OSPF, and BGP for inter-domain connectivity. Students analyse routing tables and select protocols for given network scenarios.
Chapter 4HideHide detailsSee detailsTelephony and Voice over IP Systems
Telephony and Voice over IP Systems
Lesson 1 • Public Switched Telephone Network Architecture
Describes PSTN hierarchy, signalling systems, and switching centres. Provides the legacy baseline against which VoIP improvements are measured.
Lesson 2 • VoIP Quality Measurement and Troubleshooting
Introduces MOS scoring, jitter buffers, and packet loss concealment. Students diagnose voice quality degradation using standard measurement tools.
Lesson 3 • VoIP Protocols and Signalling
Examines SIP, H.323, and RTP for call setup and media transport. Students trace call flows and identify protocol roles in a VoIP session.
Lesson 4 • Unified Communications Integration
Explores how voice, video, and messaging converge on a single platform. Connects VoIP fundamentals to enterprise unified communications deployment.
Lesson 5 • Voice Digitization and Codecs
Covers PCM sampling, quantisation, and codec selection for voice quality. Students calculate bandwidth requirements for various codec configurations.
Chapter 5HideHide detailsSee detailsMobile and Wireless Network Technologies
Mobile and Wireless Network Technologies
Lesson 1 • Cellular Network Architecture
Describes cells, base stations, and core network elements across generations. Establishes the structural model for understanding 4G and 5G deployments.
Lesson 2 • Radio Frequency Planning and Optimization
Teaches coverage prediction, interference analysis, and capacity planning methods. Students produce a basic RF plan for a defined service area.
Lesson 3 • 5G New Radio Architecture
Introduces 5G NR spectrum bands, massive MIMO, and network slicing. Students assess 5G use cases including eMBB, URLLC, and mMTC.
Lesson 4 • Wi-Fi and Short-Range Wireless Standards
Examines IEEE 802.11 generations, Bluetooth, and Zigbee for enterprise and IoT use. Students select appropriate short-range technology for given deployment needs.
Lesson 5 • 3G and 4G LTE Technologies
Covers WCDMA, HSPA, and LTE air interface design and performance. Students compare spectral efficiency and capacity across these generations.
Chapter 6HideHide detailsSee detailsOptical Transport and Wide Area Networks
Optical Transport and Wide Area Networks
Lesson 1 • MPLS and Traffic Engineering
Introduces label switching, LSP establishment, and RSVP-TE for traffic engineering. Students configure MPLS paths to meet bandwidth and latency SLAs.
Lesson 2 • Carrier Ethernet and Metro Networks
Covers MEF service types, E-Line, E-LAN, and E-Tree for metro delivery. Connects Ethernet services to WAN transport for enterprise and wholesale markets.
Lesson 3 • Synchronous Digital Hierarchy and SONET
Explains SDH and SONET frame structures, multiplexing hierarchy, and protection. Provides the legacy transport baseline for understanding modern OTN.
Lesson 4 • Optical Transport Network Standards
Covers OTN wrapper structure, FEC, and optical channel data units. Students map client signals into OTN containers for transport planning.
Lesson 5 • Dense Wavelength Division Multiplexing
Examines DWDM channel plans, amplification, and dispersion compensation. Students calculate system reach and capacity for long-haul fibre links.
Chapter 7HideHide detailsSee detailsNetwork Security in Telecom Environments
Network Security in Telecom Environments
Lesson 1 • Telecom Threat Landscape
Catalogues threats specific to telecom: SS7 exploits, toll fraud, and DDoS. Motivates security architecture decisions made throughout the chapter.
Lesson 2 • Security Monitoring and Incident Response
Introduces SIEM, log analysis, and incident response workflows for telecom. Students build a response playbook for a simulated network security event.
Lesson 3 • Firewall, IDS, and Access Control
Examines stateful firewalls, intrusion detection systems, and role-based access. Students design a perimeter defence for a telecom network segment.
Lesson 4 • VPN and Secure Remote Access
Teaches IPsec, SSL VPN, and MPLS VPN architectures for secure connectivity. Students select and configure VPN solutions for telecom operations staff.
Lesson 5 • Cryptography and Secure Protocols
Covers symmetric and asymmetric encryption, PKI, and TLS for telecom. Students apply cryptographic tools to secure signalling and management planes.
Chapter 8HideHide detailsSee detailsNetwork Management and Service Operations
Network Management and Service Operations
Lesson 1 • Performance Management and SLA Reporting
Defines KPIs, threshold setting, and SLA reporting for telecom services. Students produce a performance dashboard aligned to service-level commitments.
Lesson 2 • Fault Management and Troubleshooting
Teaches alarm correlation, root cause analysis, and structured troubleshooting. Students resolve simulated network faults using a systematic diagnostic process.
Lesson 3 • Network Management Frameworks
Covers FCAPS, ITIL, and TMF frameworks for structured network operations. Connects management disciplines to real-world NOC and OSS/BSS environments.
Lesson 4 • SNMP and Network Monitoring Protocols
Explains SNMP versions, MIB structure, and NetFlow for traffic visibility. Students configure monitoring agents and interpret collected performance data.
Lesson 5 • Network Automation and DevOps Practices
Introduces scripting, APIs, and CI/CD pipelines for network configuration management. Students automate a repetitive provisioning task using a scripting tool.
Your valid completion certificate
This course is for you:
Network technician: ready to move into engineering-level telecom responsibilities.
IT generalist: wants structured expertise in carrier-grade network technologies.
Recent engineering graduate: building practical telecom skills for the job market.
System integrator: needs deeper protocol knowledge to support telecom clients.
Career changer: transitioning from adjacent tech fields into telecommunications roles.
NOC analyst: aiming to understand the infrastructure they monitor every day.
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