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Implementation av ett kunskapsbas system för rough set theory med kvantitativa mätningar


This thesis presents the implementation of a knowledge base system for rough sets [Paw92]within the logic programming framework. The combination of rough set theory with logic programming is a novel approach. The presented implementation serves as a prototype system for the ideas presented in [VDM03a, VDM03b]. The system is available at "http://www.ida.liu.se/rkbs". The presented language for describing knowledge in the rough knowledge base caters for implicit definition of rough sets by combining different regions (e.g. upper approximation, lower approximation, boundary) of other defined rough sets. The rough knowledge base system also provides methods for querying the knowledge base and methods for computing quantitative measures. We test the implemented system on a medium sized application example to illustrate the usefulness of the system and the incorporated language. We also provide performance measurements of the system.

Författare

Robin Andersson

Lärosäte och institution

Linköpings universitet/Institutionen för datavetenskap

Nivå:

"Uppsats för yrkesexamina på grundnivå". Självständigt arbete (examensarbete)om minst 15 högskolepoäng utfört för att erhålla yrkesexamen på grundnivå.

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