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Classification and Segmentation of Mitotic Cells using Ant Colony Algorithm and TNM Classifier

Publication Type : Conference Proceedings

Publisher : IEEE

Source : 2022 International Conference on Augmented Intelligence and Sustainable Systems (ICAISS)

Url : https://doi.org/10.1109/icaiss55157.2022.10010914

Campus : Nagercoil

School : School of Computing

Year : 2022

Abstract : Breast cancer develops from breast tissue and leads to abnormally growing cells in the chest. Doctors usually look for tumors on a mammogram, and some mammograms contain abnormal macrocalcifications and microcalcifications when the image quality is very poor. The presence of these abnormal amounts of calcium deposits in the breast is a sign of early breast cancer and should never be ignored. The image quality should be of the highest quality for an accurate interpretation of this mammographic deposit. Proposed research work is ongoing, exploring other screening methods and the stages of breast cancer. Improved Adaptive Fuzzy C-Means (IAFCM), Ant Colony Algorithm (ACA), and TNM (The size of the breast tumour (T), adjacent lymph nodes and Metastasized methods are used which builds the proposed medical image processing systems into an efficient way. Modified Poisson Inverse Gradient, Metastasized classifier (MPIG) has been used for classification. More than 500 image modalities are involved in all of the approaches. Clinical practitioners who make decisions based on photographs are predicted to benefit from the findings of this study.

Cite this Research Publication : R.G. Vidhya, T.S. Sasikala, Ayoobkhan Mohamed Uvaze Ahamed, Subair Ali Liayakath Ali Khan, Kamlesh Singh, M. Saratha, Classification and Segmentation of Mitotic Cells using Ant Colony Algorithm and TNM Classifier, 2022 International Conference on Augmented Intelligence and Sustainable Systems (ICAISS), IEEE, 2022, https://doi.org/10.1109/icaiss55157.2022.10010914

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