Course: Optimization

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Course title Optimization
Course code KI/OPT
Organizational form of instruction Lecture + Lesson
Level of course Bachelor
Year of study not specified
Semester Summer
Number of ECTS credits 5
Language of instruction Czech, English
Status of course Compulsory
Form of instruction unspecified
Work placements unspecified
Recommended optional programme components None
Lecturer(s)
  • Kubera Petr, RNDr. Ph.D.
  • Sýkorová Květuše, Mgr.
  • Babichev Sergii, prof. DSc.
Course content
1. Classification of optimization problems. 2. Derivative and non-derivative problems. 3. One-dimensional optimization problems. 4. Multi-dimensional optimization problems. 5. Linear optimization problems. 6. Simplex method. 7. Transportation problem. 8. Minimal squares method. 9. Non linear optimization problems with restrictions. 10. Non linear optimization problems without restrictions.

Learning activities and teaching methods
unspecified
Learning outcomes
This course provides an introduction to basic optimization techniques. We emphasise linear programming, including integer programming and selected methods for solving nonlinear problems. An integral part of the course is solving practical problems using appropriate software.

Prerequisites
Teaching in English is meant only for erasmus and foreign students. In the case of a small number of students is teaching in a form of individual consultations.
KMA/P123
----- or -----
KMA/P136

Assessment methods and criteria
unspecified
The course is ended with credit and an oral exam.
Recommended literature
  • J. Rohn. Lineární algebra a optimalizace. 2004. ISBN 80-246-0932-0.
  • Jablonský J. Operační výzkum. VŠE, Praha, 1999.
  • LAGOVÁ, M. Metody operačního výzkumu I. FSE UJEP, Ústí nad Labem 1997..
  • Míka S. Matematická optimalizace. ZČU Plzeň, 1997.


Study plans that include the course
Faculty Study plan (Version) Category of Branch/Specialization Recommended year of study Recommended semester
Faculty: Faculty of Science Study plan (Version): Information Systems (A14) Category: Informatics courses 2 Recommended year of study:2, Recommended semester: Summer