Medical images indexation and annotation
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University of Tlemcen
Abstract
Computer aided detection and diagnosis CADe/CADx systems, are an essential tools used by physicians
to assist them in their daily clinical diagnosis. In cancers diseases, these systems have an important role
to perform the early detection and diagnosis, this allows to provide early treatment before it will be too
late. In this thesis, we present several methods to be uses in a computer aided diagnosis system in order
to generate structured reports of liver lesions including cancer using Computed Tomography (CT)
images. In addition, we propose different methods for computer aided detection of breast cancer, by
treating breast density classification using mammography and breast lesion classification using
histopathology images. At this context we present three distingue contributions, the first one is related to
the annotation of liver CT images by using a medical ontology, in which we propose three methods. The
second contribution is about breast density classification according to the standard Breast Imaging
Reporting and Data System (BI-RADS). In addition to that, we propose an improved version of
Synthetic Minority Over-Sampling Technique Algorithm (SMOTE) used to equilibrate the dataset. The
last contribution is about breast lesions classification in the histopathology images. Precisely, we
propose a method to distinct benignant and malignant lesions, as well to classify the normal cases,
benign cases, in situ and invasive cancer cases.