Automatic disease detection from medical images with data augmentation and deep learning techniques
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Abstract (EN)
In 2019, the spread of the Covid-19 disease worldwide negatively affected life. Covid-19 disease is a type of pneumonia disease. Early diagnosis of pneumonia patients with deep learning method is the main subject of this thesis study. Chest X-rays (X-Ray images) of individuals for early diagnosis were used as dataset in this thesis study. This study used coronaHack-Chest-Xray on the Kaggle data site as a dataset. The images in the dataset; It is labeled into two different classes, pneumonia and normal. VGG-16, VGG-19, MobileNet, InceptionV3, and Xception; deep learning models were used separately in this thesis. Each model was run with 4 different methods. Methods; 1- No data augmentation and cross-validation, 2- No data augmentation, cross-validation, 3-Data augmentation, no cross-validation, 4-Data augmentation, cross-validation. When all model and method matching combinations were run, the MobileNet model gave the best success metric results on the CoronaHack-ChestXray dataset, with the no data augmentation-no cross-validation method, training set 80% – test set 20%. The model with the best result, The success metrics of separating the images into 2 classes, pneumonia and normal, are summarized as follows: the accuracy metric is 99%, the precision metric is 98%, and the recall metric is 98%. Other success metric results, complexity matrix, and running success metrics of other model-method combinations were obtained in this thesis. KEYWORDS: Deep Learning, Data Augmentation, Medical Imaging, Covid-19, Pneumonia
Author
Teslime Bayık
Institution
How to Cite
Teslime Bayık (Master Thesis). Automatic disease detection from medical images with data augmentation and deep learning techniques, 2023, Bolu Abant İzzet Baysal University.
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