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2018 | OriginalPaper | Buchkapitel

A Pragmatics-Oriented High Utility Mining for Itemsets of Size Two for Boosting Business Yields

verfasst von : Gaurav Gahlot, Nagamma Patil

Erschienen in: Progress in Intelligent Computing Techniques: Theory, Practice, and Applications

Verlag: Springer Singapore

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Abstract

Retail market has paced with an enormous rate, sprawling its effect over the nations. The B2C companies have been putting lucrative offers and schemes to fetch the customers’ attractions in the awe of upbringing the business profits, but with the mindless notion of the same. Knowledge discovery in the field of data mining can be well harnessed to achieve the profit benefits. This article proposes the novel way for determining the items to be given on sale, with the logical clubs, thus extending the Apriori algorithm. The dissertation proposes the high-utility mining for itemsets of size two (HUM-IS2) Algorithm using the transactional logs of the superstores. The pruning strategies have been introduced to remove unnecessary formations of the clubs. The essence of the algorithm has been proved by experimenting with various datasets.

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Metadaten
Titel
A Pragmatics-Oriented High Utility Mining for Itemsets of Size Two for Boosting Business Yields
verfasst von
Gaurav Gahlot
Nagamma Patil
Copyright-Jahr
2018
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-10-3376-6_9

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