KLASIFIKASI JENIS TUMOR OTAK BERDASARKAN CITRA GLIOMA MENGGUNAKAN METODE SUPPORT VECTOR MACHINE

Authors

  • Adam Jordie Sinulingga Universitas Methodist Indonesia
  • Darwis Robinson Manalu Universitas Methodist Indonesia
  • Samuel Manurung Universitas Methodist Indonesia

DOI:

https://doi.org/10.46880/mtk.v9i2.1887

Keywords:

Brain Tumor, Visual Image, SVM, GLCM

Abstract

This study uses the Support Vector Machine method, where this method aims to obtain a classification model that has high accuracy or small error in classifying an image. The development of the medical world today is closely related and cannot be separated from the development of information technology that continues to grow. To be able to distinguish Magnetic Resonance Image (MRI) images detected by brain tumors, it is necessary to carry out a classification process using the Support Vector Machine (SVM) method. So we need an application for classifying brain tumors to facilitate medical work in determining the type of brain tumor disease. Image processing will use 2 types of brain tumors, namely Glioma and Meningioma

References

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Dzulfikar, M. A. (2014, Oktober). Analisis Distribusi Intensitas RGB Citra Digital untuk Klasifikasi Kualitas Biji Jagung menggunakan Jaringan Syaraf Tiruan. JURNAL FISIKA DAN APLIKASINYA, VOLUME 10, NOMOR 3.

Rizal, R. A., Gulo, S., & Sihombing, O. D. (2019, Agustus). Analisis Gray Level Co-occurence Matrix (GLCM) Dalam Mengenali Citra Expresi Wajah. Jurnal Mantik, Vol.3, No.2, 31-38.

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Published

10-09-2023

How to Cite

[1]
A. J. Sinulingga, D. R. Manalu, and S. . Manurung, “KLASIFIKASI JENIS TUMOR OTAK BERDASARKAN CITRA GLIOMA MENGGUNAKAN METODE SUPPORT VECTOR MACHINE”, METHODIKA, vol. 9, no. 2, pp. 23–25, Sep. 2023.

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