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Segmentation of infarcted regions in Perfusion CT images by 3D deep learning

Tomasetti, Luca
Master thesis
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URI
http://hdl.handle.net/11250/2620505
Date
2019-06
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  • Studentoppgaver (TN-IDE) [281]
Abstract
This thesis explores different Convolutional Neural Network (CNN) approaches to classify and segment infarcted regions from images taken through a Computed Tomography Perfusion (CTP) from patients of the Stavanger’s hospital (SUS) affected by an ischemic stroke. Also, it evaluates the accuracy and the loss functions of the images analyzed through CNN. Furthermore, a segmentation approach, based on a U-Net model, is tested to create, from scratch, a unique image containing a summary of the section of the brain investigated with the different infarcted regions prediction. The purpose of this thesis work is to find a fast and effective method to help doctors in their decisions during these delicate and problematic situations.
Description
Master's thesis in Computer Science
Publisher
University of Stavanger, Norway
Series
Masteroppgave/UIS-TN-IDE/2019;

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