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    • Journal of AI and Data Mining
    • Volume 7, Issue 1
    • مشاهده مورد
    •   صفحهٔ اصلی
    • نشریات انگلیسی
    • Journal of AI and Data Mining
    • Volume 7, Issue 1
    • مشاهده مورد
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    A New Knowledge-Based System for Diagnosis of Breast Cancer by a combination of the Affinity Propagation and Firefly Algorithms

    (ندگان)پدیدآور
    Emami, N.Pakzad, A.
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    نوع مدرک
    Text
    Review Article
    زبان مدرک
    English
    نمایش کامل رکورد
    چکیده
    Breast cancer has become a widespread disease around the world in young women. Expert systems, developed by data mining techniques, are valuable tools in diagnosis of breast cancer and can help physicians for decision making process. This paper presents a new hybrid data mining approach to classify two groups of breast cancer patients (malignant and benign). The proposed approach, AP-AMBFA, consists of two phases. In the first phase, the Affinity Propagation (AP) clustering method is used as instances reduction technique which can find noisy instance and eliminate them. In the second phase, feature selection and classification are conducted by the Adaptive Modified Binary Firefly Algorithm (AMBFA) for selection of the most related predictor variables to target variable and Support Vectors Machine (SVM) technique as classifier. It can reduce the computational complexity and speed up the data mining process. Experimental results on Wisconsin Diagnostic Breast Cancer (WDBC) datasets show higher predictive accuracy. The obtained classification accuracy is 98.606%, a very promising result compared to the current state-of-the-art classification techniques applied to the same database. Hence this method will help physicians in more accurate diagnosis of breast cancer.
    کلید واژگان
    Breast Cancer
    Affinity Propagation
    Feature Selection
    Binary Firefly Algorithm
    Support Vectors Machine
    H.3. Artificial Intelligence

    شماره نشریه
    1
    تاریخ نشر
    2019-01-01
    1397-10-11
    ناشر
    Shahrood University of Technology
    سازمان پدید آورنده
    Department of Computer Science, Faculty of Basic Sciences, Kosar University of Bojnord, Bojnord, Iran
    Department of Industrial Engineering, Faculty of Engineering , Kosar University of Bojnord, Bojnord, Iran.

    شاپا
    2322-5211
    2322-4444
    URI
    https://dx.doi.org/10.22044/jadm.2018.6489.1763
    http://jad.shahroodut.ac.ir/article_1264.html
    https://iranjournals.nlai.ir/handle/123456789/294780

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