Classification of Digital Mammograms Using Nearest Neighbor Techniques

نویسندگان

  • Endah Purwanti
  • Retna Apsari
چکیده

The aim of our research is to classify digital mammograms into two classes, abnormal microcalcification and normal. Texture is one of the major mammographic characteristics. The statistical textural of Gray Level Coocurrence Matrix (GLCM) used in characterizing images are contrast, energy and entropy. K-Nearest Neighbor (K-NN) and Fuzzy K-Nearest Neighbor (FK-NN) was proposed for classifying images. The result of K-NN method shows that 77.78% accuracy , 50.00% sensitifity and 100% specifisity. The result of FK-NN method shows that 88.89% accuracy , 100% sensitifity and 80.00% specifisity. . Keywords— Fuzzy K-Nearest Neighbor, Gray Level Coocurrence Matrix, K-Nearest Neighbor, Microcalcification.

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تاریخ انتشار 2014