2018
DOI: 10.1371/journal.pone.0179703
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A novel association rule mining approach using TID intermediate itemset

Abstract: Designing an efficient association rule mining (ARM) algorithm for multilevel knowledge-based transactional databases that is appropriate for real-world deployments is of paramount concern. However, dynamic decision making that needs to modify the threshold either to minimize or maximize the output knowledge certainly necessitates the extant state-of-the-art algorithms to rescan the entire database. Subsequently, the process incurs heavy computation cost and is not feasible for real-time applications. The pape… Show more

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Cited by 12 publications
(7 citation statements)
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References 25 publications
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“…For the multilayer association mining method, according to the actual situation, it can be divided into two major types. One is to use the same support level in all component layers, that is, to use a consistent minimum support threshold in each component layer, which simplifies the data collection process, but the setting of thresholds in this type is a challenging task; another is the use of successively lower levels of support in the lower levels; in this type, a variety of data collection methods can be used, such as layer-by-layer independent methods and single-item filtering methods; such setting makes this type more sensitive in the mining of multilayer data, and can reduce the generation of invalid associations [ 28 , 29 ].…”
Section: Methodsmentioning
confidence: 99%
“…For the multilayer association mining method, according to the actual situation, it can be divided into two major types. One is to use the same support level in all component layers, that is, to use a consistent minimum support threshold in each component layer, which simplifies the data collection process, but the setting of thresholds in this type is a challenging task; another is the use of successively lower levels of support in the lower levels; in this type, a variety of data collection methods can be used, such as layer-by-layer independent methods and single-item filtering methods; such setting makes this type more sensitive in the mining of multilayer data, and can reduce the generation of invalid associations [ 28 , 29 ].…”
Section: Methodsmentioning
confidence: 99%
“…There is no application for their method. Aqra et al (2018) presented an Intermediate Transaction ID Apriori (ITD Apriori) algorithm where a new itemset format structure is adopted to address the problem of threshold that necessitates rescanning the entire database. This approach creates an intermediate itemset.…”
Section: Related Workmentioning
confidence: 99%
“…Many researchers have done modifications to improve the efficiency of the Apriori algorithm and to overcome some of the limitations of the Apriori algorithm. They used some methods to improve Apriori efficiency as Intersection (Aqra et al, 2018), Hash-based itemset counting (Park et al, 1995;Vyas and Sherasiya, 2016), Partitioning (Jia et al, 2012), Sampling (Toivonen, 1996;Rajeswari, 2015), etc. The Intersection is a method used to improve memory management, efficiently, by reducing the computation cost of Apriori and removing its complexity.…”
Section: Introductionmentioning
confidence: 99%
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“…Association rule mining is the most extensively used (and promising) technique in the data mining field [14]. Since its introduction, it has created several opportunities to mine high-utility data [2].…”
Section: Related Workmentioning
confidence: 99%