
Television Systems Course
Master every layer of modern television technology, from analog signal fundamentals to 4K UHD, satellite distribution, and cloud-based production. This course gives broadcast engineers and AV professionals the technical depth to design, operate, and troubleshoot complete TV systems with confidence.
What you will learn:
You will gain a thorough understanding of analog and digital television standards, including NTSC, PAL, DVB-T2, and ATSC 3.0. The course covers video compression using MPEG-2, MPEG-4 AVC, and HEVC, along with transport stream structure and signal analysis. You will study cable, satellite, and IP-based distribution architectures and learn how to measure and verify signal quality using professional test equipment. Studio infrastructure topics include routing switchers, synchronization, and SMPTE ST 2110 IP workflows. Advanced subjects such as HDR, wide color gamut, immersive audio, and AI-driven production tools are also covered.
How you study in practice Television Systems Course
How you practise Television Systems 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 Television Systems
Foundations of Television Systems
Lesson 1 • Overview of a Complete TV System
Maps the end-to-end signal chain from camera capture to viewer display. Prepares students to study each subsystem in depth in subsequent chapters.
Lesson 2 • History and Evolution of Television
Traces mechanical and electronic TV development through analog, digital, and HDTV eras. Provides context for understanding why modern standards exist.
Lesson 3 • Audio in Television Systems
Introduces mono, stereo, and multichannel audio as carried within TV signals. Links audio quality and synchronization to overall viewer experience.
Lesson 4 • The Electromagnetic Spectrum and RF Basics
Explains frequency bands, wavelength, and propagation relevant to TV transmission. Connects spectrum allocation to channel planning and interference management.
Lesson 5 • Analog Video Signal Fundamentals
Covers composite, component, and sync signal structures used in analog TV. Establishes baseline signal knowledge required for digital comparison later.
Chapter 2HideHide detailsSee detailsAnalog Television Standards and Transmission
Analog Television Standards and Transmission
Lesson 1 • Scanning Standards and Frame Rates
Defines interlaced and progressive scanning, lines per frame, and field rates. Establishes the raster structure that underpins all subsequent video formats.
Lesson 2 • Analog Transmitter Architecture
Describes exciter, power amplifier, and combining stages in an analog TV transmitter. Connects transmitter design to coverage area and regulatory power limits.
Lesson 3 • Amplitude and Frequency Modulation for TV
Covers AM vestigial sideband for video and FM for audio carriers in analog broadcasting. Links modulation choices to bandwidth efficiency and noise performance.
Lesson 4 • Color Encoding Systems
Compares NTSC, PAL, and SECAM color encoding approaches and their trade-offs. Explains subcarrier frequency, phase, and color burst for each system.
Lesson 5 • Antenna Systems for Analog Broadcasting
Explains antenna gain, radiation patterns, and polarization for TV broadcast antennas. Prepares students to evaluate coverage and siting decisions.
Chapter 3HideHide detailsSee detailsDigital Television Fundamentals
Digital Television Fundamentals
Lesson 1 • MPEG Standards for Television
Details MPEG-2 and MPEG-4 AVC profiles used in broadcast and cable TV systems. Explains profile, level, and bitrate selection for different service tiers.
Lesson 2 • MPEG-2 Transport Stream Structure
Explains packetization, program-specific information tables, and multiplexing in the transport stream. Provides the packet-level knowledge needed for signal analysis.
Lesson 3 • Sampling and Quantization of Video
Covers Nyquist sampling theory applied to video, bit depth, and quantization error. Establishes the digital signal foundation needed for compression study.
Lesson 4 • Digital Audio Coding for TV
Covers AC-3, AAC, and HE-AAC audio coding used in digital TV services. Links codec selection to channel capacity and surround sound capability.
Lesson 5 • Video Compression Principles
Introduces spatial and temporal redundancy reduction techniques used in video codecs. Connects compression efficiency to bandwidth and storage requirements.
Chapter 4HideHide detailsSee detailsDigital Terrestrial Television Systems
Digital Terrestrial Television Systems
Lesson 1 • DVB-T and DVB-T2 Standards
Compares DVB-T and DVB-T2 modulation, coding, and capacity improvements. Highlights T2 features such as LDPC coding and multiple PLPs.
Lesson 2 • ATSC Standards for Terrestrial DTV
Covers ATSC 1.0 8-VSB modulation and the ATSC 3.0 next-generation standard. Compares ATSC and DVB approaches to channel coding and service delivery.
Lesson 3 • Single-Frequency Network Planning
Explains how SFN transmitters synchronize to extend coverage without additional spectrum. Covers echo delay budgets and network timing requirements.
Lesson 4 • OFDM Modulation Principles
Explains multicarrier OFDM, subcarrier spacing, and guard interval operation. Connects OFDM robustness to multipath environments typical in terrestrial broadcasting.
Lesson 5 • DTT Coverage Prediction and Measurement
Applies propagation models and field measurement techniques to verify DTT coverage. Links prediction accuracy to transmitter siting and antenna height decisions.
Chapter 5HideHide detailsSee detailsCable and Satellite Television Systems
Cable and Satellite Television Systems
Lesson 1 • QAM Modulation for Cable Systems
Covers 64-QAM and 256-QAM constellation mapping, spectral efficiency, and noise margin. Connects modulation order selection to cable plant quality requirements.
Lesson 2 • Conditional Access and Content Protection
Introduces encryption, entitlement management, and smart card systems used in pay TV. Links conditional access architecture to subscriber management and piracy prevention.
Lesson 3 • Satellite Orbit Types and Link Budgets
Compares GEO, MEO, and LEO orbits for TV distribution and calculates link budget parameters. Provides the foundation for dish sizing and uplink power planning.
Lesson 4 • Cable TV Network Architecture
Describes hybrid fiber-coax topology, headend functions, and node segmentation. Establishes the physical infrastructure context for cable signal delivery.
Lesson 5 • Satellite Modulation and DVB-S2
Explains QPSK, 8PSK, and APSK modulation used in DVB-S2 and DVB-S2X. Covers adaptive coding and modulation for maximizing throughput under varying conditions.
Chapter 6HideHide detailsSee detailsIPTV and Over-the-Top Video Delivery
IPTV and Over-the-Top Video Delivery
Lesson 1 • IP Networking Fundamentals for Video
Reviews multicast, unicast, and QoS mechanisms relevant to video transport over IP. Connects network layer behavior to video quality and latency outcomes.
Lesson 2 • Adaptive Bitrate Streaming Protocols
Covers HLS, MPEG-DASH, and smooth streaming ABR mechanisms for OTT delivery. Explains segment-based delivery, manifest files, and bitrate ladder design.
Lesson 3 • Quality of Experience Measurement
Introduces QoE metrics including rebuffering ratio, startup time, and VMAF scoring. Connects objective measurements to viewer satisfaction and churn reduction.
Lesson 4 • IPTV System Architecture
Describes headend, middleware, CDN, and set-top box roles in a managed IPTV system. Establishes the end-to-end service delivery model for subsequent protocol study.
Lesson 5 • Video Encoding for OTT Platforms
Addresses per-title encoding, HDR packaging, and codec selection for OTT workflows. Links encoding decisions to storage cost, CDN bandwidth, and viewer quality.
Chapter 7HideHide detailsSee detailsTelevision Studio and Production Systems
Television Studio and Production Systems
Lesson 1 • Studio Audio Systems
Covers mixing console design, microphone types, and intercom systems for broadcast studios. Connects audio infrastructure to program quality and crew communication.
Lesson 2 • Production Switcher and Vision Mixing
Describes M/E bus architecture, keying types, and transition effects in production switchers. Links switcher operation to live program assembly and director workflow.
Lesson 3 • Broadcast Camera Technology
Covers CCD and CMOS sensor design, optical formats, and camera chain components. Establishes the image capture foundation for studio and field production.
Lesson 4 • Synchronization and Reference Signals
Explains black burst, tri-level sync, and PTP-based timing for studio synchronization. Ensures students can maintain timing integrity across all studio equipment.
Lesson 5 • Video Routing and Signal Distribution
Explains routing switcher architecture, signal levels, and distribution amplifiers. Connects routing infrastructure to flexible signal management in a facility.
Chapter 8HideHide detailsSee detailsAdvanced Television Technologies and Standards
Advanced Television Technologies and Standards
Lesson 1 • Immersive and Object-Based Audio
Covers Dolby Atmos, MPEG-H, and AC-4 object-based audio for broadcast and streaming. Explains audio object rendering and personalization for immersive experiences.
Lesson 2 • High Dynamic Range and Wide Color Gamut
Explains PQ and HLG transfer functions, BT.2020 color space, and HDR metadata. Links HDR and WCG to display capability and backward-compatible broadcast workflows.
Lesson 3 • IP-Based Studio Infrastructure
Details SMPTE ST 2110 essence transport, NMOS control, and software-defined production. Connects IP infrastructure to facility agility and remote production capability.
Lesson 4 • Emerging Display Technologies
Surveys OLED, MicroLED, and quantum dot display technologies and their TV performance metrics. Prepares students to evaluate display specifications against broadcast signal capabilities.
Lesson 5 • Ultra-High-Definition Video Formats
Covers 4K and 8K UHD resolution, frame rate options, and interface requirements. Connects UHD specifications to production, distribution, and display system design.
Your valid completion certificate
This course is for you:
Broadcast technician: ready to move beyond day-to-day maintenance into system-level expertise.
AV integrator: expanding into broadcast and television infrastructure for larger clients.
Telecommunications engineer: transitioning into video distribution and TV platform work.
Electronics hobbyist: passionate about how television signals actually work end to end.
IT network engineer: shifting focus toward managed IPTV and OTT video delivery systems.
Recent engineering graduate: building specialized broadcast knowledge to enter the media industry.
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




















