
Digital Transmission Course
Master every layer of modern digital transmission, from signal fundamentals and modulation to error control, synchronization, and advanced 5G and fiber architectures. This course gives engineers and technical professionals the rigorous, practical knowledge needed to design, analyze, and troubleshoot high-performance digital communication systems.
What you will learn:
You will build a complete understanding of digital transmission, starting with analog-to-digital conversion, sampling theory, and line coding, then advancing through passband modulation techniques, channel capacity limits, and forward error correction. You will study multiplexing schemes including TDM, FDM, OFDM, and CDMA, and learn how synchronization and clock recovery keep real systems running reliably. Advanced topics cover MIMO, adaptive modulation, equalization, and high-speed fiber optic transmission. Supplementary material addresses wireless channel modeling, network transport protocols, transmission security, and software-defined radio. By the end, you will be equipped to design, evaluate, and troubleshoot digital links from first principles to production-grade systems.
How you study in practice Digital Transmission Course
How you practise Digital Transmission Course
For companies looking to train their team
With Dedika for Business, 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 Digital Transmission
Foundations of Digital Transmission
Lesson 1 • Core Transmission Parameters
Defines bandwidth, bit rate, baud rate, and latency. Connects these metrics to real-world system performance evaluation.
Lesson 2 • Transmission Media Overview
Surveys guided and unguided media used in digital links. Provides context for media selection decisions covered in later chapters.
Lesson 3 • Standards and Regulatory Frameworks
Introduces international standards bodies and compliance concepts governing digital transmission. Prepares students to apply standards throughout the course.
Lesson 4 • Analog vs. Digital Signals
Contrasts continuous analog waveforms with discrete digital signals. Establishes why digitization improves noise immunity and system scalability.
Lesson 5 • The OSI Model and Digital Layers
Maps digital transmission functions to the physical and data-link layers of the OSI model. Frames how protocols interact with hardware.
Chapter 2HideHide detailsSee detailsSampling, Quantization, and Encoding
Sampling, Quantization, and Encoding
Lesson 1 • Differential and Predictive Encoding
Introduces DPCM and delta modulation as bandwidth-efficient alternatives to PCM. Demonstrates trade-offs between complexity and compression.
Lesson 2 • Pulse Code Modulation
Details the PCM process from sampling through binary encoding. Serves as the baseline encoding scheme for subsequent modulation chapters.
Lesson 3 • Sampling Theory and the Nyquist Criterion
Explains uniform sampling and the minimum rate required to reconstruct a signal. Directly underpins all analog-to-digital conversion techniques.
Lesson 4 • Source Coding and Compression Basics
Presents entropy coding and lossless compression to reduce redundancy before transmission. Connects source coding efficiency to channel capacity use.
Lesson 5 • Quantization Principles
Covers uniform and non-uniform quantization and the resulting quantization noise. Links bit depth to signal fidelity and dynamic range.
Chapter 3HideHide detailsSee detailsLine Coding and Baseband Transmission
Line Coding and Baseband Transmission
Lesson 1 • Line Coding Fundamentals
Defines line coding and its role in shaping the power spectrum of a digital signal. Sets criteria for evaluating any line code scheme.
Lesson 2 • Block and Multilevel Codes
Examines 4B/5B, 8B/10B, and MLT-3 codes used in high-speed LANs. Demonstrates how block codes improve synchronization and reduce spectral peaks.
Lesson 3 • Bipolar and Return-to-Zero Codes
Covers AMI, pseudoternary, and RZ formats that eliminate DC components. Connects these codes to legacy telephony and T-carrier systems.
Lesson 4 • Unipolar and Polar Codes
Analyzes NRZ-L, NRZ-I, and unipolar formats with their spectral properties. Highlights DC wander issues and synchronization limitations.
Lesson 5 • Intersymbol Interference and Pulse Shaping
Explains ISI origins and Nyquist pulse shaping to eliminate it. Provides the theoretical basis for equalization techniques introduced later.
Chapter 4HideHide detailsSee detailsDigital Modulation Techniques
Digital Modulation Techniques
Lesson 1 • Frequency Shift Keying
Analyzes binary and M-ary FSK, including orthogonality conditions and minimum shift keying. Links FSK robustness to fading channel applications.
Lesson 2 • Phase Shift Keying
Develops BPSK, QPSK, and higher-order PSK with differential encoding variants. Demonstrates phase ambiguity resolution using differential PSK.
Lesson 3 • Quadrature Amplitude Modulation
Extends PSK to combined amplitude-phase constellations for high spectral efficiency. Evaluates QAM orders against SNR requirements and error rates.
Lesson 4 • Passband Transmission Concepts
Introduces carrier modulation and the shift from baseband to passband. Establishes constellation diagrams as the primary analysis tool.
Lesson 5 • Amplitude Shift Keying
Covers OOK and M-ASK signal generation, detection, and spectral properties. Identifies noise sensitivity as the key limitation of ASK.
Chapter 5HideHide detailsSee detailsChannel Capacity and Error Control
Channel Capacity and Error Control
Lesson 1 • Convolutional Codes and Viterbi Decoding
Explains convolutional encoding with trellis diagrams and Viterbi maximum-likelihood decoding. Demonstrates superior BER performance over block codes at low SNR.
Lesson 2 • Block Error Correction Codes
Introduces Hamming, Reed-Solomon, and BCH codes for forward error correction. Quantifies coding gain and its impact on required transmit power.
Lesson 3 • Turbo Codes and LDPC Codes
Presents near-Shannon-limit codes used in 4G, 5G, and satellite systems. Highlights iterative decoding as the key enabler of their performance.
Lesson 4 • Shannon's Channel Capacity Theorem
Derives the Shannon-Hartley formula and its implications for system design. Establishes the theoretical ceiling that all practical systems approach.
Lesson 5 • Error Detection Techniques
Covers parity, checksum, and CRC methods for detecting transmission errors. Connects detection overhead to protocol efficiency in data-link design.
Chapter 6HideHide detailsSee detailsMultiplexing and Multiple Access
Multiplexing and Multiple Access
Lesson 1 • Code Division Multiplexing
Uses orthogonal spreading codes to allow simultaneous same-frequency transmission. Establishes the spread-spectrum foundation for CDMA cellular systems.
Lesson 2 • Multiple Access Protocols
Compares TDMA, FDMA, CDMA, and OFDMA access schemes for shared media. Addresses contention resolution and scheduling in wireless and wired networks.
Lesson 3 • Time Division Multiplexing
Interleaves time slots from multiple sources into a single high-rate stream. Introduces T1/E1 framing structures as canonical TDM examples.
Lesson 4 • Frequency Division Multiplexing
Assigns non-overlapping frequency bands to simultaneous channels. Connects FDM to legacy telephony hierarchies and modern cable systems.
Lesson 5 • Orthogonal Frequency Division Multiplexing
Divides a wideband channel into orthogonal subcarriers to combat multipath. Explains cyclic prefix insertion and its role in eliminating ISI.
Chapter 7HideHide detailsSee detailsSynchronization and Clock Recovery
Synchronization and Clock Recovery
Lesson 1 • Phase-Locked Loop Design
Analyzes PLL components and loop dynamics for clock recovery applications. Connects PLL bandwidth to jitter tolerance and acquisition speed.
Lesson 2 • Clock Recovery Circuits
Presents decision-directed and data-aided clock recovery algorithms. Demonstrates implementation in both analog and digital receiver architectures.
Lesson 3 • Network Synchronization and Timing Distribution
Explains stratum hierarchy, Synchronous Ethernet, and precision time protocols. Addresses holdover and frequency traceability in carrier-grade networks.
Lesson 4 • Frame and Packet Synchronization
Covers unique word detection and correlation-based frame alignment methods. Links frame sync to overhead efficiency in TDM and packet systems.
Lesson 5 • Timing and Synchronization Fundamentals
Defines symbol timing, carrier phase, and frame synchronization requirements. Establishes why synchronization errors directly degrade BER performance.
Chapter 8HideHide detailsSee detailsAdvanced Digital Transmission Systems
Advanced Digital Transmission Systems
Lesson 1 • High-Speed Fiber Optic Transmission
Covers coherent optical modulation, WDM, and dispersion compensation for long-haul links. Connects optical layer design to the digital signal processing chain.
Lesson 2 • System Link Budget and Performance Analysis
Integrates transmit power, path loss, noise, and coding gain into a complete link budget. Enables end-to-end system design and margin verification.
Lesson 3 • MIMO Transmission Principles
Exploits multiple antennas for spatial multiplexing and diversity gain. Quantifies capacity scaling with antenna count using the MIMO channel matrix.
Lesson 4 • Channel Equalization Techniques
Applies linear and decision-feedback equalizers to remove ISI in dispersive channels. Builds directly on pulse shaping and modulation concepts from earlier chapters.
Lesson 5 • Adaptive Modulation and Coding
Dynamically selects modulation order and code rate based on channel feedback. Demonstrates link adaptation as used in LTE and 5G NR standards.
Your valid completion certificate
This course is for you:
RF and telecom engineers ready to deepen their transmission theory knowledge.
Network operations technicians who want to move into system design roles.
Electrical engineering students bridging the gap between coursework and industry.
IT professionals expanding their expertise into physical-layer communication systems.
Career changers from adjacent fields pursuing roles in wireless or fiber networking.
Embedded systems developers integrating digital communication stacks into hardware products.
What our students say
Your classes are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of interest without needing to switch platforms... I thank you for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can change chapters and skip content I don't need.

I like the content and the presentation style and video transcription, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos really help with learning.

Top training programs
FAQ
Who is Dedika?
Is the certificate valid in Canada?
Are the courses free?
What is the course workload?
What are the courses like?
How do the courses work?
What is the duration of the courses?
What is the cost or price of the courses?
What is an EAD or online course and how does it work?
PDF Course




















