Oksana Shkurat

Work place: National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”, Kyiv, Ukraine

E-mail: shkurat.ksusha@gmail.com

Website:

Research Interests: Image Processing

Biography

Oksana S. Shkurat is PhD student of the Computer Systems Software Department, the Faculty of Applied Mathematics at the National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”. She is member of “Multimedia Data Processing – Research Group” (MDP-RG) of the Computer Systems Software Department, the Faculty of Applied Mathematics at the National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”. Her research interests are technologies of medical image processing, intelligence and expert systems.

Author Articles
Vector Image Retrieval Methods Based on Fuzzy Patterns

By Yevgeniya Sulema Etienne Kerre Oksana Shkurat

DOI: https://doi.org/10.5815/ijmecs.2020.03.02, Pub. Date: 8 Jun. 2020

In this work we present two methods of vector graphic objects retrieval based on a fuzzy description of their shapes. Both methods enable the retrieval of vector images resembling to a given fuzzy pattern. The basic method offers a geometrical interpretation of a fuzziness measure as a radius of a circle with the center in each vertex of a given candidate object. It enables the representation of uncertain information about a pattern object defined by its “fuzzy” vertices. The advanced method generalizes this approach by considering an ellipse instead of a circle. The basic method can be used for the comparison of polygons and other primitives in vector images. The advanced method can be used for complex shapes retrieval. To enable saving a “fuzzy” image as a file, the modification of the SVG format with a new attribute “fuzziness” is proposed for both methods. The advanced method practical implementation is illustrated by the retrieval of medical images, namely, heart computer tomography images.

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Method of Medical Images Similarity Estimation Based on Feature Analysis

By Zhengbing Hu Ivan Dychka Yevgeniya Sulema Yuliia Valchuk Oksana Shkurat

DOI: https://doi.org/10.5815/ijisa.2018.05.02, Pub. Date: 8 May 2018

The paper presents the method of medical images similarity estimation based on feature extraction and analysis. The proposed method has been developed for and tested on rat brain histological images, however, it can be applied for other types of medical images, since the general approach is based on consideration of the shape of core components present in a given template image. The proposed method can be used in image analysis tools in a wide range of image-based medical investigations, in particular, in the brain researches.
The theoretical background of the proposed method is presented in the paper. The expert evaluation approach used for assessment of the proposed method effectiveness is explained and illustrated by examples. The method of medical images similarity estimation based on feature analysis consists of several stages: colour model conversion, image normalization, anti-noise filtering, contours search, conversion, and feature analysis. The results of the proposed method algorithmic realization are demonstrated and discussed.

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