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Markov chains

Code: 160517
ECTS: 5.0
Lecturers in charge: doc. dr. sc. Rudi Mrazović
doc. dr. sc. Hrvoje Planinić
Lecturers: Ela Đimoti , mag. math. - Exercises
Daniela Ivanković , mag. math. - Exercises
Load:

1. komponenta

Lecture typeTotal
Lectures 30
Exercises 30
* Load is given in academic hour (1 academic hour = 45 minutes)
Description:
COURSE AIMS AND OBJECTIVES: The goal of the course is to learn fundamental results of the theory of homogeneous Markov chains with discrete time, and apply these results in mathematical modelling of random phenomena.

COURSE DESCRIPTION AND SYLLABUS:
1. Introduction to Markov chains.
2. Definition and basic properties. Transition matrix. Classes.
3. Hitting times. Probability absorptions.
4. Strong Markov property.
5. Recurrency and transiency. Analysis of random walks.
6. Invariant and stationary distribution. Limiting distribution.
7. Convergence towards equilibrium.
8. Ergodic theorem.
9. Time reversal.
10. Introduction to Markov chains in continuous time.
11. Application of Markov chains. Electric networks.
12. Application of Markov chains in biology.
13. Decision Markov processes.
14. MCMC (Markov chain Monte Carlo).
Literature:
1. semester
Izborni predmet 1, 2 - Regular study - Theoretical Mathematics

2. semester Not active
Izborni predmet 1, 2 - Regular study - Theoretical Mathematics
Consultations schedule:

Content

Link to the course web page: https://web.math.pmf.unizg.hr/nastava/mala/

Link to the notices web page: https://www.pmf.unizg.hr/math/predmet/marlan_a


News

Idući tjedan, u četvrtak 11.11., vježbe će se održati u skraćenom i malo ranijem terminu: od 10:05 (točno) do 11:15. Nadalje, umjesto u četvrtak 18.11. (državni praznik), vježbe će se održati u utorak 16.11. od 8:15-10 u prostoriji A102

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Hrvoje Planinić

Author: Hrvoje Planinić