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Research paper classification systems based on TF-IDF and LDA schemes
by
Gil, Joon-Min
, Kim, Sang-Woon
in
Algorithms
/ Artificial Intelligence
/ Big data
/ Classification
/ Cloud Computing for Human-centric Computing
/ Cluster analysis
/ Clustering
/ Communications Engineering
/ Computer Science
/ Computer Systems Organization and Communication Networks
/ Dirichlet problem
/ Information Systems and Communication Service
/ Information Systems Applications (incl.Internet)
/ IoT
/ Networks
/ Scientific papers
/ User Interfaces and Human Computer Interaction
/ Vector quantization
2019
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Research paper classification systems based on TF-IDF and LDA schemes
by
Gil, Joon-Min
, Kim, Sang-Woon
in
Algorithms
/ Artificial Intelligence
/ Big data
/ Classification
/ Cloud Computing for Human-centric Computing
/ Cluster analysis
/ Clustering
/ Communications Engineering
/ Computer Science
/ Computer Systems Organization and Communication Networks
/ Dirichlet problem
/ Information Systems and Communication Service
/ Information Systems Applications (incl.Internet)
/ IoT
/ Networks
/ Scientific papers
/ User Interfaces and Human Computer Interaction
/ Vector quantization
2019
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Do you wish to request the book?
Research paper classification systems based on TF-IDF and LDA schemes
by
Gil, Joon-Min
, Kim, Sang-Woon
in
Algorithms
/ Artificial Intelligence
/ Big data
/ Classification
/ Cloud Computing for Human-centric Computing
/ Cluster analysis
/ Clustering
/ Communications Engineering
/ Computer Science
/ Computer Systems Organization and Communication Networks
/ Dirichlet problem
/ Information Systems and Communication Service
/ Information Systems Applications (incl.Internet)
/ IoT
/ Networks
/ Scientific papers
/ User Interfaces and Human Computer Interaction
/ Vector quantization
2019
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Research paper classification systems based on TF-IDF and LDA schemes
Journal Article
Research paper classification systems based on TF-IDF and LDA schemes
2019
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Overview
With the increasing advance of computer and information technologies, numerous research papers have been published online as well as offline, and as new research fields have been continuingly created, users have a lot of trouble in finding and categorizing their interesting research papers. In order to overcome the limitations, this paper proposes a research paper classification system that can cluster research papers into the meaningful class in which papers are very likely to have similar subjects. The proposed system extracts representative keywords from the abstracts of each paper and topics by Latent Dirichlet allocation (LDA) scheme. Then, the K-means clustering algorithm is applied to classify the whole papers into research papers with similar subjects, based on the Term frequency-inverse document frequency (TF-IDF) values of each paper.
Publisher
Springer Berlin Heidelberg,Korea Information Processing Society, Computer Software Research Group
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