Whether delivered online or on-site, our instructor-led live Electronics training programs utilize interactive, hands-on exercises to demonstrate how to effectively apply electronic principles in developing interconnection technologies.
These Electronics courses are offered as either "online live training" or "onsite live training." Online live training, also referred to as "remote live training," is facilitated through an interactive remote desktop. For those preferring in-person instruction, onsite live training can be hosted directly at your customer premises in Prague or at NobleProg's corporate training centers in Prague.
From Prague Main Train Station (Praha hlavní nádraží)
Take tram 9 from Hlavní nádraží toward Sídliště Řepy.
Get off at Újezd.
Walk about 10 minutes toward Malostranské náměstí / Prokopská.
Continue along Prokopská to 296/8.
Alternative: Take the metro C from Hlavní nádraží → Muzeum, change to metro A → Malostranská, then walk across Malá Strana. This involves more walking.
From Prague Bus Station — Florenc
Take metro B from Florenc toward Zličín.
Get off at Můstek.
Change to metro A toward Nemocnice Motol.
Get off at Malostranská.
Walk approximately 10–15 minutes to Prokopská 296/8.
This instructor-led live training in Prague (online or onsite) targets intermediate-level automotive engineers and technicians looking to gain hands-on experience in testing, simulating, and diagnosing ECUs using Vector tools like CANoe and CANape.
Upon completing this training, participants will be able to:
Grasp the role and functionality of ECUs within automotive systems.
Configure and set up Vector tools including CANoe and CANape.
Simulate and test ECU communication across CAN and LIN networks.
Analyze data and conduct diagnostics on ECUs.
Develop test cases and automate testing processes.
Calibrate and optimize ECUs through practical methods.
This instructor-led, live training in Prague (online or onsite) is designed for intermediate-level automotive engineers and embedded systems developers seeking to grasp the theoretical foundations of ECUs, with a particular emphasis on Vector-based tools and methodologies employed in automotive design and development.
Upon completion of this training, participants will be able to:
Comprehend the architecture and operational functions of ECUs in contemporary vehicles.
Analyze the communication protocols integral to ECU development.
Investigate Vector-based tools and their theoretical applications.
Implement model-based development principles in ECU design.
This instructor-led live training in Prague (online or onsite) is targeted at engineers and scientists who wish to learn and apply DSP implementations to efficiently handle different signal types and gain better control over multi-channel electronic systems.
By the end of this training, participants will be able to:
Set up and configure the necessary software platform and tools for Digital Signal Processing.
Understand the concepts and principles that are foundational to DSP and its applications.
Familiarize themselves with DSP components and employ them in electronics systems.
Generate algorithms and operational functions using the results from DSP.
Utilize the basic features of DSP software platforms and design signal filters.
Synthesize DSP simulations and implement various types of filters for DSP.
This instructor-led, live training, available online or onsite, targets beginner to intermediate PCB designers and electronics engineers aiming to develop a complete and controlled PCB design workflow using Altium Designer.
Participants work on a single connected project, progressing from project setup and component libraries through schematic capture, PCB layout, and verification, up to manufacturing outputs and controlled production release.
By the end of this training, participants will be able to:
Create and manage structured Altium Designer PCB projects.
Build and validate schematic designs and component libraries.
Configure PCB rules, routing, DRC, and manufacturing constraints.
Generate and verify fabrication, assembly, and mechanical outputs.
Apply practical high-speed design constraints.
Manage engineering changes and controlled re-releases.
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