DocumentCode :
2089638
Title :
Temporal Association Rules Mining in T-databases Using Pipeline Technique
Author :
Lal, Kanhaiya ; Mahanti, N.C.
Author_Institution :
Deptt. of Comput. Sc. & Eng., BIT, Patna, India
fYear :
2011
fDate :
24-26 Aug. 2011
Firstpage :
392
Lastpage :
400
Abstract :
Temporal data mining is rapidly evolving area of research that is at the intersection of several disciplines, including statistic, temporal pattern recognition, temporal database, optimization visualization, high performance computing & parallel computing. The presence of a temporal association rule may suggest a number of interpretations, such as; Past event (PE) → Future event (FE); The event(E) → PE and FE; events → coincidental (c) Classical association rules have no notion of order, while time implies an ordering. If we could find the associability of time with event, nothing will be hidden to us as the events are associated to each other in the form PE→PtE (present event)→FE. In this study, we examine the association rules mining in temporal database. After partitioning the database, a time interval TI=[s,e] is allocated to each partition and sequentially put the partitions in an array, in reverse order.
Keywords :
data mining; pattern recognition; pipeline processing; temporal databases; T-databases; high performance computing; optimization visualization; parallel computing; pipeline technique; reverse order; statistic pattern recognition; temporal association rules mining; temporal data mining; temporal database; temporal pattern recognition; time associability; time interval; Algorithm design and analysis; Association rules; Calendars; Clocks; Itemsets; Association rules; parallelization; pipeline; temporal databases; timestamp model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Science and Engineering (CSE), 2011 IEEE 14th International Conference on
Conference_Location :
Dalian, Liaoning
Print_ISBN :
978-1-4577-0974-6
Type :
conf
DOI :
10.1109/CSE.2011.74
Filename :
6062904
Link To Document :
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