2015
DOI: 10.14257/ijmue.2015.10.11.02
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Text Mining: Extraction of Interesting Association Rule with Frequent Itemsets Mining for Korean Language from Unstructured Data

Abstract: Text mining is a specific method to extract knowledge from structured and unstructured data. This extracted knowledge from text mining process can be used for further usage and discovery. This paper presents the method for extraction information from unstructured text data and the importance of Association Rules Mining, specifically for of Korean language (text) and also, NLP (Natural Language Processing) tools are explained. Association Rules Mining (ARM) can also be used for mining association between itemse… Show more

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Cited by 2 publications
(2 citation statements)
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“…On the other hand, Opinion Mining is an analysis method to determine preferences such as positivity, negativity, and neutrality on structured and unstructured text collected from online media like social media or portal news [14]. It is applied appropriately to market size predictions, customer response, viral analysis, etc.…”
Section: Analysis Methods For Unstructured Datamentioning
confidence: 99%
“…On the other hand, Opinion Mining is an analysis method to determine preferences such as positivity, negativity, and neutrality on structured and unstructured text collected from online media like social media or portal news [14]. It is applied appropriately to market size predictions, customer response, viral analysis, etc.…”
Section: Analysis Methods For Unstructured Datamentioning
confidence: 99%
“…Applying association rule mining in thesis document was done by Erman et al (2016) for finding term combination existed frequently and grouping summary thesis document. Khan et al (2015) applied association rule mining technique on Korean text document to extract a useful pattern between hidden word and information. Kulkarni et al (2016) reviewed the use of association rule mining in text mining to discover knowledge from a set of web documents.…”
Section: Literature Reviewmentioning
confidence: 99%