DocumentCode
2638029
Title
Efficient discovery of functional and approximate dependencies using partitions
Author
Huhtala, Ykä ; Kärkkäinen, Juha ; Porkka, Pasi ; Toivonen, Hannu
Author_Institution
Dept. of Comput. Sci., Helsinki Univ., Finland
fYear
1998
fDate
23-27 Feb 1998
Firstpage
392
Lastpage
401
Abstract
Discovery of functional dependencies from relations has been identified as an important database analysis technique. We present a new approach for finding functional dependencies from large databases, based on partitioning the set of rows with respect to their attribute values. The use of partitions makes the discovery of approximate functional dependencies easy and efficient, and the erroneous or exceptional rows can be identified easily. Experiments show that the new algorithm is efficient in practice. For benchmark databases the running times are improved by several orders of magnitude over previously published results. The algorithm is also applicable to much larger datasets than the previous methods
Keywords
database theory; knowledge acquisition; relational databases; search problems; software performance evaluation; very large databases; approximate dependency discovery; attribute values; benchmark databases; data mining; database analysis technique; database partitions; functional dependency discovery; large databases; relational databases; relations; rows; search; Computer science; Data analysis; Data mining; Databases; Engineering management; Knowledge management; Partitioning algorithms; Read only memory; Reverse engineering;
fLanguage
English
Publisher
ieee
Conference_Titel
Data Engineering, 1998. Proceedings., 14th International Conference on
Conference_Location
Orlando, FL
ISSN
1063-6382
Print_ISBN
0-8186-8289-2
Type
conf
DOI
10.1109/ICDE.1998.655802
Filename
655802
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