Impact of Diverse Document-evaluation Measure-based Searching Methods in Big Data Search Accuracy 


Vol. 44,  No. 5, pp. 553-558, May  2017


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  Abstract

With the rapid growth of Big Data, research on extracting meaningful information is being pursued by both academia and industry. Especially, data characteristics derived from analysis, and researcher intention are key factors for search algorithms to obtain accurate output. Therefore, reflecting both data characteristics and researcher intention properly is the final goal of data analysis research. The data analyzed properly can help users to increase loyalty to the service provided by company, and to utilize information more effectively and efficiently. In this paper, we explore various methods of document-evaluation, so that we can improve the accuracy of searching article one of the most frequently searches used in real life. We also analyze the experiment result, and suggest the proper manners to use various methods.


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  Cite this article

[IEEE Style]

J. y. Kim, D. Han, J. Kim, "Impact of Diverse Document-evaluation Measure-based Searching Methods in Big Data Search Accuracy," Journal of KIISE, JOK, vol. 44, no. 5, pp. 553-558, 2017. DOI: .


[ACM Style]

Ji young Kim, DaHyeon Han, and Jongkwon Kim. 2017. Impact of Diverse Document-evaluation Measure-based Searching Methods in Big Data Search Accuracy. Journal of KIISE, JOK, 44, 5, (2017), 553-558. DOI: .


[KCI Style]

김지영, 한다현, 김종권, "빅데이터 검색 정확도에 미치는 다양한 측정 방법 기반 검색 기법의 효과," 한국정보과학회 논문지, 제44권, 제5호, 553~558쪽, 2017. DOI: .


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