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Course, academic year 2023/2024
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Knowledge Mining in Databases - NDBI022
Title: Dobývání znalostí z databází
Guaranteed by: Department of Software Engineering (32-KSI)
Faculty: Faculty of Mathematics and Physics
Actual: from 2010
Semester: winter
E-Credits: 6
Hours per week, examination: winter s.:2/2, C+Ex [HT]
Capacity: unlimited
Min. number of students: unlimited
4EU+: no
Virtual mobility / capacity: no
State of the course: cancelled
Language: Czech
Teaching methods: full-time
Teaching methods: full-time
Additional information: http://www.ksi.mff.cuni.cz/~vojtas/vyuka/DBI022_DobZnalDatabaze_s_Rauchem/NDBI022DobyvaniZnalostiZDatabazi.html
Guarantor: prof. RNDr. Jan Rauch, CSc.
prof. RNDr. Peter Vojtáš, DrSc.
Class: Informatika Mgr. - volitelný
Classification: Informatics > Database Systems
Pre-requisite : NDBI025
Annotation -
Last update: T_KSI (28.04.2008)
Advanced ways of dealing with knowledge including knowledge acquisition, formalization, integration, presentation of knowledge to users as well as automated knowledge application in various areas. The goal of the course is to acquaint students with new approaches to DM that use methods of knowledge engineering. The emphasis will be on student's concrete projects.
Literature -
Last update: T_KSI (28.04.2008)

Hájek P., Havránek T.: Mechanizing hypothesis formation (mathematical foundations for a general theory), Springer-Verlag Berlin-Heidelberg-New York, 1978

RAUCH, Jan. Logic of Association Rules. Applied Intelligence, 2005, č. 22, s. 9-28. .

RAUCH, Jan, ŠIMŮNEK, Milan. An Alternative Approach to Mining Association Rules. In: LIN, Tsau Young et.al.(eds.). Foundations of Data Mining and Knowledge Discovery. Berlin : Springer, 2005, s. 211-231.

S. Džeroski, N. Lavrač. Relational data mining, Springer 2001

T. Horváth, P. Vojtáš, Induction of Fuzzy and Annotated Logic Programs, in Revised Selected Papers from ILP 2006, S. Muggleton, R. Otero, and A. Tamaddoni-Nezhad (Eds.), LNAI 4455, pp. 260-274, 2007

Syllabus -
Last update: T_KSI (28.04.2008)

Motivation examples, data, relations to formal models

Academic software systems LISp-Miner, Ferda and WEKA and their applications

GUHA method - principle, important GUHA procedures, problems of implementation

Relation of GUHA method to classical methods (association rules. Apriori algorithm, decision tress)

Multi-relational data mining

Inductive logic programming

Ordinal classification

Data mining and Semantic Web

Automatic reporting data mining results

Observational calculi and their application in data mining

Application of knowledge engineering methods in data mining

Overview of current trends

 
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