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FDM: Fuzzy-Optimized Data Management Technique for Improving Big Data Analytics

  • Gunasekaran Manogaran
  • , P. Mohamed Shakeel
  • , S. Baskar
  • , Ching Hsien Hsu
  • , Seifedine Nimer Kadry
  • , Revathi Sundarasekar
  • , Priyan Malarvizhi Kumar
  • , Bala Anand Muthu
  • University of California at Davis
  • Universiti Teknikal Malaysia Melaka
  • Karpagam Academy of Higher Education
  • Asia University Taiwan
  • Beirut Arab University
  • Anna University
  • Middlesex University
  • V.R.S. College of Engineering and Technology

Research output: Contribution to journalArticlepeer-review

80 Scopus citations

Abstract

Big data analytics and processing require complex architectures and sophisticated techniques for extracting useful information from the accumulated information. Visualizing the extracted data for real-time solutions is demanding in accordance with the semantics and the classification employed by the processing models. This article introduces fuzzy-optimized data management (FDM) technique for classifying and improving coalition of accumulated information based semantics and constraints. The dependency of the information is classified on the basis of the relationships modeled between the data based on the attributes. This technique segregates the considered attributes based on similarity index boundaries to process complex data in a controlled time. The performance of the proposed FDM is analyzed using a real-time weather forecast dataset consisting of sensor data (observed) and image data (captured). With this dataset, the functions of FDM such as input semantics analytics and classification based on similarity are performed. The metrics classification and processing time and similarity index are analyzed for the varying data sizes, classification instances, and dataset records. The proposed FDM is found to achieve 36.28% less processing time for varying classification instances, and 12.57% high similarity index.

Original languageEnglish
Article number9166621
Pages (from-to)177-185
Number of pages9
JournalIEEE Transactions on Fuzzy Systems
Volume29
Issue number1
DOIs
StatePublished - Jan 2021
Externally publishedYes

Keywords

  • Attribute analysis
  • big data
  • data classification
  • fuzzy systems
  • input semantics

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