Contemplate Study of Contemporary Techniques for HUIM

K. Logeswaran, Pragnya Suresh, S. Savitha, A. Rajiv Kannan · 2018

In this internet world, most of the transactions are done in online especially in ecommerce field which creates enormous size of transactional database that grows dynamically at each second. Really it is tough job to analyses the growing transactional database for the betterment of ecommerce business growth. Determining the Interesting pattern form incremental transactional database is evolving research area in the field of Data mining. Frequent Itemset Mining (FIM) approach is followed in earlier days to find the frequent pattern from transactional database. FIM has significant drawback of omitting the interesting factor about each items, such as quantity, price, profit and etc. This drawback is addressed in High Utility Itemset Mining (HUIM) which considers interesting factors of each item. This paper focuses on reviewing the existing state of art algorithms to create a path for the future research in the area of high utility itemset mining.

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