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Cervical Cancer Diagnosis Using Data Mining Algorithm | OMICS International| Abstract
ISSN: 2476-2253

Journal of Cancer Diagnosis
Open Access

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  • Mini Review   
  • J Cancer Diagn,
  • DOI: 10.4172/2476-2253.1000178

Cervical Cancer Diagnosis Using Data Mining Algorithm

Johnson Gurneey*
Department of Public Health, University of Otago, Wellington, New Zealand
*Corresponding Author : Johnson Gurneey, Department of Public Health, University of Otago, Wellington, New Zealand, Email: johnson@otago.ac.nz

Received Date: May 01, 2023 / Published Date: May 30, 2023

Abstract

A class of data mining techniques can be used to accurately diagnose cervical cancer, which has significant practical implications. In particular, the beneficial information present in a sizable amount of medical data may not only subtly advance medical technology but also, in the future, aid in the detection of cervical cancer. In order to collect and analyse picture information, this study enhances the data mining algorithm and integrates image recognition and data mining technologies. Additionally, this study fully exploits the image data to segment the cervical cancer cell image, choose the feature vector in accordance with the features of the cervical cancer cell, and create the classifier using the statistical classification approach. The test results demonstrate that this system’s automatic recognition and supplementary diagnosis effects are both good. As a result, it can be confirmed in clinical settings throughout the follow-up.

Citation: Gurneey J (2023) Cervical Cancer Diagnosis Using Data Mining Algorithm. J Cancer Diagn 7: 178. Doi: 10.4172/2476-2253.1000178

Copyright: © 2023 Gurneey J. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

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