An application of ANFIS for Lung Diseases Early Detection System
Autor: | Mochamad Yusuf Santoso, Am Maisarah Disrinama, Haidar Natsir Amrullah |
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Jazyk: | indonéština |
Rok vydání: | 2020 |
Předmět: |
Adaptive neuro fuzzy inference system
medicine.medical_specialty Tuberculosis Lung lcsh:Computer engineering. Computer hardware business.industry Early detection lcsh:TK7885-7895 Disease medicine.disease Pneumonia medicine.anatomical_structure medicine Cluster analysis Intensive care medicine business Lung cancer anfis early detection lung cancer pneumonia tuberculosis |
Zdroj: | Kinetik, Vol 5, Iss 1, Pp 29-36 (2020) |
ISSN: | 2503-2267 2503-2259 |
Popis: | Indonesian Basic Health Research in 2018 showed the prevalence of pneumonia, pulmonary tuberculosis (TB) and lung cancer in Indonesia 4.0% 0.4% and 0.18%, respectively. However, the number of lung specialists is small. According to the Indonesian Lung Specialist Association webpage, the number of doctors joined in the association up to 2008 were 452. This amount is very less when compared with existing lung disease cases. Thus, the handling of lung disease will be too late. The use of ANFIS for early detection of lung disease is growing. However, the systems designed are need preprocessing data to be executed and still applied for one type of disease. This paper will design a desktop application based on ANFIS expert system to detect lung disease early, i.e. for pneumonia, pulmonary TB and lung cancer. The system will work based on simple symptoms expressed by the patient. Subtractive clustering is used for clustering process. The results of the training showed that the models were able to give better performance compared to the model built using conventional clustering methods. The test results show that those three models have comparable performance compared to their counterpart. Software validation shows that the it gives 94.00% succeed for training data and up to 100% for testing data. This application is not intended to replace the role of a doctor, but to help diagnose the patient's condition earlier. |
Databáze: | OpenAIRE |
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