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Utilization of K-Nearest Neighbor-Based Algorithm for Healthcare Correlated Data Systems

첫 페이지 보기
  • 발행기관
    경성대학교 산업개발연구소 바로가기
  • 간행물
    산업혁신연구 KCI 등재 바로가기
  • 통권
    제40권 제3호 (2024.09)바로가기
  • 페이지
    pp.1-6
  • 저자
    Murtaza Hussain Shaikh, Kim Yae-Ji
  • 언어
    영어(ENG)
  • URL
    https://www.earticle.net/Article/A454951

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원문정보

초록

영어
Due to the simplicity of the k-nearest neighbor classification algorithm, it has been widely used in many fields. Until now, when the sample size is enormous and the feature attributes are outsized, the productivity of the k-nearest neighbor algorithm classification has also significantly increased. This work demonstrates that a k-nearest neighbor-based data mining technique has been utilized for data index to gather data and analyze an outpatient facility's clinical data set. Therefore, the investigational results show that the suggested algorithm can effectively improve the classification effectiveness of the KNN algorithm in processing a large set of data. Data extraction and fetching techniques can classify possible user/customer behavior using the k-nearest neighbor algorithm based on the user or consumer's impression, entailing prospects, responders, active entities, and different entities. Data mining methods have been utilized to uncover undisclosed patterns and relations. Undoubtedly, the information in a novel manner is reasonable to the healthcare stakeholders and to anticipate future patterns and practices in health-related practices. Many examinations and work have focused on various data mining strategies and approaches. The advanced growth of data science, information, and communication technology has directed the progress of medical-based details toward new artificial intelligence-based processes and data sciences.

목차

Ⅰ. INTRODUCTION
Ⅱ. Classification and Association of DataMining Requirements in CorrelatedSystems
Ⅲ. Tendency of Analysis and Regression inHealthcare-Correlated Systems
Ⅳ. K- Nearest Neighbor Method Diagnosis andPredictions in Correlated Systems
V. k-Nearest Neighbor Analysis in DataScheming
Ⅵ. Conclusion
References

키워드

algorithm classification data mining healthcare knowledge technique

저자

  • Murtaza Hussain Shaikh [ Assistant Professor, Kyungsung University ]
  • Kim Yae-Ji [ Assistant Professor, Dongeui University ] Corresponding author

참고문헌

자료제공 : 네이버학술정보

간행물 정보

발행기관

  • 발행기관명
    경성대학교 산업개발연구소 [INDUSTRIAL DEVELOPMENT INSTITUTE KYUNGSUNG UNIVERSITY]
  • 설립연도
    1985
  • 분야
    사회과학>지역개발
  • 소개
    연구소는 경영및 경제 전반에 관한 이론과 실무의 연구개발을 통하여 산학협동을 기하고 이를 토대로 국민경제의 발전에 기여함을 목적으로 한다

간행물

  • 간행물명
    산업혁신연구 [The Journal of Industrial Innovation]
  • 간기
    계간
  • pISSN
    2005-2936
  • eISSN
    2800-0080
  • 수록기간
    1985~2026
  • 등재여부
    KCI 등재
  • 십진분류
    KDC 325 DDC 658

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