Course detail
Modern Electronic Circuit Design
FEKT-DPA-RE1Acad. year: 2025/2026
Students become familiar with advanced methods for computer modeling of electronic circuits (steady-state calculation, approximate symbolic analysis, circuits with transmission-lines, signal integrity analysis in discrete and integrated applications, modeling of systems with fractional-order elements, methods of parameter variability analysis in electronic systems); analog integrated circuit design (basic elements of CMOS technology, design of basic cells, analysis of special problems - ESD protection, latch-up, EMC of integrated circuits); circuit optimization (formulation of objective function, local and global methods, multicriterial problems).
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Entry knowledge
Rules for evaluation and completion of the course
Evaluation of activities is specified by a regulation, which is issued by the lecturer responsible for the course annually.
Aims
The graduate is able to (1) design basic blocks of electronic circuits; (2) formulate models and use advanced methods for simulation; (3) utilize conventional and non-conventional optimization methods for systems of general nature.
Study aids
Prerequisites and corequisites
Basic literature
DEB, K. Multi-objective optimization. In Search methodologies. Boston: Springer, 2014, pp. 403-449. ISBN: 978-1-461-46939-1. (EN)
NAJM, F.N. Circuit Simulation. Hoboken, NJ: Wiley-IEEE Press; 2010. ISBN: 978-0-4705-3871-5. (EN)
STUMPF, M. Time-domain Electromagnetic Reciprocity in Antenna Modeling. Hoboken, NJ: John Wiley & Sons, 2019. ISBN: 978-1-119-61237-7. (EN)
Recommended reading
BALANIS, C. A. Antenna theory: analysis and design. 4th ed. Hoboken, NJ: John Wiley & Sons, 2016. ISBN 978-1-118-64206-1. (EN)
RUSS, S. H. Signal Integrity: Applied Electromagnetics and Professional Practice. Springer, 2016. ISBN: 978-3-319-29758-3. (EN)
STUMPF, M. Electromagnetic reciprocity in antenna theory. Hoboken, NJ: John Wiley & Sons, 2017. ISBN 978-1-119-46640-6. (EN)
ZJAJO, A.: Stochastic Process Variation in Deep-Submicron CMOS: Circuits and Algorithms. New York: Springer, 2014. ISBN 978-94-007-7781-1. (EN)
Classification of course in study plans
- Programme DPA-EIT Doctoral 0 year of study, winter semester, compulsory-optional
- Programme DPA-EKT Doctoral 0 year of study, winter semester, compulsory
- Programme DPA-KAM Doctoral 0 year of study, winter semester, compulsory-optional
- Programme DPA-MET Doctoral 0 year of study, winter semester, compulsory-optional
- Programme DPA-SEE Doctoral 0 year of study, winter semester, compulsory-optional
- Programme DPA-TEE Doctoral 0 year of study, winter semester, compulsory-optional
- Programme DPA-TLI Doctoral 0 year of study, winter semester, compulsory-optional
- Programme DPAD-EEC Doctoral 0 year of study, winter semester, compulsory-optional
- Programme DPAD-EIT Doctoral 0 year of study, winter semester, compulsory-optional
Type of course unit
Seminar
Teacher / Lecturer
Syllabus
- Modeling of electronic devices.
- Methods for solution in DC, AC, and time domains. Simulation accuracy, convergence problems.
- Computation of steady state in time, frequency, and combined domains. Methods for approximate symbolic analysis and their utilization.
- Methods for simulation of circuits with transmission lines. Utilization for analysis of signal integrity in discrete and integrated applications.
- Modeling and simulation of systems with fractional-order elements. Application in circuits with lumped parameters (filters, oscillators, PID controllers) and distributed parameters (transmission lines).
- Methods of parameter variability analysis in electronic systems (Monte Carlo, polynomial-chaos expansion, stochastic differential equation approach).
Week 6: Basic theorems for lumped and distributed circuits
- Mathematical description of transmitting and receiving antenna system.
- Introduction to the reciprocity theorem and its applications. Reciprocity between receiving and transmitting states of antenna (construction of the Kirchhoff equivalent circuit of receiving antenna, power theorem of reciprocity, conditions of antenna matching).
Wee 7 – 10: Analog integrated circuit design
- Basic network elements. Specifics of CMOS technology, parasitic elements, manufacturing tolerance.
- Building blocks of integrated circuits. Current mirrors, amplifier stages. Analysis of operation and parasitic properties.
- Methodology of design basic blocks, analytical model and it solution. Case study of an transconductance operating amplifier.
- Simulation of special problems: ESD protection, latch-up, EMC of integrated circuits.
Week 11 – 13: Circuit optimization - 3 seminars
- Classification of optimization problems (local and global, single- and multiple-criteria, etc.). Formulation of criterial function, local optimization methods (steepest descent, Newton method).
- Global optimization methods for single-criteria functions (simplex method, genetic algorithms, particle-swarm methods, self-organizing and migrating algorithms).
- Formulation of multi-criteria optimization problems, aggregation methods for transformation to single-criteria problems, multi-criteria algorithms (NSGA-II, MOPSO, MOSOMA).