Národní úložiště šedé literatury Nalezeno 4 záznamů.  Hledání trvalo 0.00 vteřin. 
Knowledge Discovery from Time Series
Krutý, Peter ; Burget, Radek (oponent) ; Bartík, Vladimír (vedoucí práce)
This thesis is focused on the field of knowledge discovery from data, specifically from time series. Main objective is to research Python programming language support in this area and then design and implement an application that will allow to demonstrate and compare selected methods. Methods are demonstrated in experiments using appropriate data set. The output of the thesis is a comparison of methods for specific tasks and the application implementing selected methods.
Knowledge Discovery from Databases with Use of the R Language
Krutý, Peter ; Burgetová, Ivana (oponent) ; Bartík, Vladimír (vedoucí práce)
This thesis is focused on the field of knowledge discovery from databases. Main objective is to research possibilities of R language and its support in this area. Support is researched by experiments using appropriate data sets. More detailed attention is given to the methods of classification, clustering and association rules learning. The output of the thesis is comparison of methods application in R and defining the suitability of using language for knowledge discovery from databases.
Knowledge Discovery from Time Series
Krutý, Peter ; Burget, Radek (oponent) ; Bartík, Vladimír (vedoucí práce)
This thesis is focused on the field of knowledge discovery from data, specifically from time series. Main objective is to research Python programming language support in this area and then design and implement an application that will allow to demonstrate and compare selected methods. Methods are demonstrated in experiments using appropriate data set. The output of the thesis is a comparison of methods for specific tasks and the application implementing selected methods.
Knowledge Discovery from Databases with Use of the R Language
Krutý, Peter ; Burgetová, Ivana (oponent) ; Bartík, Vladimír (vedoucí práce)
This thesis is focused on the field of knowledge discovery from databases. Main objective is to research possibilities of R language and its support in this area. Support is researched by experiments using appropriate data sets. More detailed attention is given to the methods of classification, clustering and association rules learning. The output of the thesis is comparison of methods application in R and defining the suitability of using language for knowledge discovery from databases.

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