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Network Multiplexing Course
More than 2 million students worldwide

Network Multiplexing Course

Master every major multiplexing technology — from FDM and TDM to WDM, CDMA, and MPLS — in one comprehensive course. You will build the technical depth to design, analyse, and troubleshoot multiplexed networks at every layer. This course takes you from signal fundamentals all the way to software-defined and virtualised architectures.

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What you will learn:

You will gain a thorough understanding of how networks share transmission capacity using frequency, time, code, wavelength, and packet-based techniques. The course covers FDM, OFDM, TDM, CDMA, WDM, DWDM, ATM, and MPLS with enough technical detail to apply each in real network scenarios. You will learn how to design QoS policies, plan optical transport links, and integrate multiplexing layers in carrier-grade architectures. Advanced topics include SDN-controlled multiplexing, OTN framing, network function virtualisation, and resilience design. Security, automation, data centre interconnects, and wireless air-interface multiplexing round out the curriculum. By the end, you will be equipped to make informed design decisions across every layer of a modern multiplexed network.

How you study in practice Network Multiplexing Course

How you practise Network Multiplexing Course

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Course content

8 Chapters • 35 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Network Multiplexing

  • Lesson 1 • Taxonomy of Multiplexing Techniques

    Maps the major multiplexing families—frequency, time, code, and space—onto a unified framework. Students can categorise any technique by its domain of separation.

  • Lesson 2 • Why Multiplexing Exists

    Examines bandwidth scarcity and the economic need to share transmission media. Establishes the problem multiplexing solves before introducing any technique.

  • Lesson 3 • Multiplexers and Demultiplexers

    Introduces mux/demux hardware roles, signal combining logic, and synchronisation requirements. Connects abstract channel models to physical device behaviour.

  • Lesson 4 • Signal and Channel Fundamentals

    Covers analog and digital signal properties, noise, and channel capacity. Provides the physical-layer vocabulary needed for all subsequent multiplexing techniques.

Chapter 2See details

Frequency Division Multiplexing

  • Lesson 1 • FDM System Design and Analysis

    Applies spectrum allocation and modulation knowledge to end-to-end FDM link design. Students calculate channel capacity, guard bands, and interference margins.

  • Lesson 2 • Modulation Techniques for FDM

    Covers AM, FM, and SSB modulation as tools for placing signals onto subcarriers. Links modulation choice to bandwidth efficiency and interference tolerance.

  • Lesson 3 • FDM Principles and Spectrum Allocation

    Explains how subcarriers divide a shared medium and how spectrum is partitioned among users. Grounds FDM design in the signal fundamentals from Chapter 1.

  • Lesson 4 • Orthogonal Frequency Division Multiplexing

    Introduces OFDM subcarrier orthogonality, cyclic prefix, and pilot tones. Demonstrates how OFDM overcomes multipath fading compared to conventional FDM.

Chapter 3See details

Time Division Multiplexing

  • Lesson 1 • Statistical and Asynchronous TDM

    Contrasts statistical multiplexing with fixed TDM, covering queuing, burst tolerance, and efficiency gains. Prepares students for packet-based multiplexing in later chapters.

  • Lesson 2 • Synchronous TDM Standards

    Covers T-carrier, E-carrier, and SDH/SONET hierarchies as real-world synchronous TDM implementations. Students map bit rates across hierarchy levels.

  • Lesson 3 • TDM Synchronisation and Timing

    Addresses clock recovery, jitter, wander, and timing hierarchy in TDM networks. Equips students to diagnose and correct synchronisation faults.

  • Lesson 4 • TDM Principles and Frame Structure

    Defines time slots, frames, and superframes as the structural units of TDM. Builds directly on the channel taxonomy introduced in Chapter 1.

Chapter 4See details

Code Division Multiplexing

  • Lesson 1 • Orthogonal Code Families

    Covers Walsh-Hadamard, Gold, and Kasami codes and their cross-correlation properties. Students select appropriate codes for given capacity and interference scenarios.

  • Lesson 2 • Interference and Near-Far Problem

    Analyses the near-far effect, multi-user interference, and successive interference cancellation. Students apply mitigation strategies to maintain target signal quality.

  • Lesson 3 • Spread-Spectrum Fundamentals

    Introduces direct-sequence and frequency-hopping spread spectrum as the basis for code-domain separation. Connects spreading gain to interference rejection.

  • Lesson 4 • CDMA System Architecture

    Examines forward and reverse link design, power control, and soft handoff in CDMA systems. Ties code selection to practical network capacity planning.

Chapter 5See details

Wavelength Division Multiplexing

  • Lesson 1 • WDM Impairments and Mitigation

    Addresses chromatic dispersion, polarisation mode dispersion, and nonlinear effects in WDM systems. Students apply compensation techniques to meet bit-error-rate targets.

  • Lesson 2 • Optical Amplification and Noise

    Examines EDFA, Raman, and SOA amplifiers, noise figure, and optical signal-to-noise ratio budgeting. Connects amplifier choice to span length and channel count.

  • Lesson 3 • WDM Components and Subsystems

    Covers lasers, photodetectors, multiplexers, demultiplexers, and optical add-drop multiplexers. Students match component specifications to system performance requirements.

  • Lesson 4 • Optical Fibre and WDM Basics

    Reviews single-mode fibre properties, optical windows, and the ITU channel grid. Establishes the physical medium context for all WDM design decisions.

  • Lesson 5 • WDM Network Planning

    Integrates component, amplification, and impairment knowledge into end-to-end WDM link planning. Students produce a capacity plan for a multi-span DWDM route.

Chapter 6See details

Packet and Label-Based Multiplexing

  • Lesson 1 • ATM Cell Switching and VCs

    Covers ATM cell structure, virtual path and virtual channel identifiers, and connection setup. Illustrates fixed-size cell multiplexing as a bridge between TDM and packets.

  • Lesson 2 • MPLS Label Switching Fundamentals

    Introduces label stack operations, forwarding equivalence classes, and label distribution protocols. Students trace packet forwarding through a label-switched path.

  • Lesson 3 • Traffic Engineering with MPLS

    Applies MPLS to explicit routing, bandwidth reservation, and fast reroute. Students design TE tunnels that optimise link utilisation across a network topology.

  • Lesson 4 • Packet Switching and Statistical Multiplexing

    Revisits statistical TDM in the context of variable-length packets and store-and-forward switching. Bridges TDM concepts from Chapter 3 to packet-based multiplexing.

Chapter 7See details

Quality of Service in Multiplexed Networks

  • Lesson 1 • Traffic Shaping and Policing

    Contrasts token bucket shaping with leaky bucket policing and their effects on burst traffic. Students apply shaping and policing to enforce service-level agreements.

  • Lesson 2 • Queuing and Scheduling Algorithms

    Examines FIFO, PQ, WFQ, CBWFQ, and LLQ scheduling disciplines and their latency profiles. Students select and size queues for mixed-traffic multiplexed interfaces.

  • Lesson 3 • Congestion Avoidance and End-to-End QoS

    Covers WRED, ECN, and DiffServ domain interconnection for end-to-end service guarantees. Students validate QoS policies using traffic simulation and measurement tools.

  • Lesson 4 • Classification and Marking

    Covers DSCP, CoS, and MPLS EXP field marking at network ingress points. Students configure classification policies that persist across multiplexed domains.

  • Lesson 5 • QoS Requirements and Traffic Classes

    Defines delay, jitter, loss, and throughput requirements for voice, video, and data traffic. Establishes the service differentiation goals that QoS mechanisms must meet.

Chapter 8See details

Advanced Multiplexing Architectures

  • Lesson 1 • Software-Defined Networking for Multiplexing

    Introduces SDN control plane separation and OpenFlow-based forwarding for dynamic multiplexing control. Students program flow tables to implement multiplexing policies.

  • Lesson 2 • Optical Transport Network Architecture

    Covers OTN framing, ODU multiplexing hierarchy, and forward error correction. Students configure OTN tributary mapping for mixed-rate client signals.

  • Lesson 3 • Resilience and Fault Recovery

    Covers protection switching, mesh restoration, and multi-layer failure correlation in advanced architectures. Students design recovery schemes meeting strict availability targets.

  • Lesson 4 • Network Function Virtualisation and Mux

    Examines virtual network functions replacing hardware mux/demux and the orchestration layer managing them. Students design a virtualised multiplexing service chain.

  • Lesson 5 • Multi-Layer Multiplexing Integration

    Analyses how optical, electrical, and packet layers interact in carrier networks. Students map traffic flows across WDM, SDH, and MPLS layers simultaneously.

Certification

Your valid completion certificate

This course is for you:

  • Network engineers ready to deepen their multiplexing layer expertise.

  • Telecom technicians transitioning into carrier-grade optical network roles.

  • IT professionals expanding their skill set toward transport network design.

  • Computer science graduates entering their first infrastructure engineering position.

  • Systems integrators who need to connect wireless, optical, and packet layers.

  • Career changers from electronics backgrounds moving into data networking roles.

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