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06 April 2021 | Story Dr Nitha Ramnath | Photo Supplied
Dr Johan Coetzee, Senior Lecturer and researcher in the Department of Economics and Finance and the UFS Business School

Dr Johan Coetzee from the Faculty of Economic and Management Sciences at the University of the Free State (UFS) is championing a collaboration with the Salzburg University of Applied Sciences (SUAS) in Austria, resulting in the receipt of a considerable grant from the European Union. 

In 2020, the decision was made to apply for Erasmus+ funding from the European Commission; after a successful grant, a formal inter-institutional agreement was signed in March 2021. The agreement is the culmination of a relationship between the Department of Economics and Finance at the UFS and the Department of Controlling and Finance at SUAS since 2008. More specifically, the relationship is built on the collaboration between the UFS’s Dr Coetzee and Prof Christine Mitter from the SUAS, who was recently appointed as a Research Fellow in Finance in the department. 

“I am extremely proud of the formalisation of the relationship between the two universities. In late 2019, a delegation led by the Dean of Economic and Management Sciences, Prof Hendri Kroukamp, together with Prof Philippe Burger and myself visited Salzburg to formalise and iron out the expectations regarding future collaboration,” says Dr Coetzee. 

“The Erasmus+ grant pays testament to not only on-boarding expertise from a foreign university with a strong niche in being practically relevant to the Austrian society, but also to affirming the relationship with like-minded scholars to provide students with a culturally rewarding university experience. This agreement brings together two departments with a history of working well together, and now it is a formal manifestation of years of mutually beneficial teaching and research efforts,” says Dr Coetzee.

“On the back of this agreement,” concludes Dr Coetzee, “our departments are also currently finalising a proposal to offer a consecutive degree exchange programme where prospective postgraduate students will obtain two master’s degrees in the broader field of finance and spend time on both campuses. We look forward to this becoming a reality in the not-too-distant future.”

In addition to their teaching and research collaboration, several additional academics from the Department of Economics and Finance are also involved in the teaching collaboration. Research projects have also been concluded in the past, with future projects in the pipeline.

News Archive

Mathematical methods used to detect and classify breast cancer masses
2016-08-10

Description: Breast lesions Tags: Breast lesions

Examples of Acho’s breast mass
segmentation identification

Breast cancer is the leading cause of female mortality in developing countries. According to the World Health Organization (WHO), the low survival rates in developing countries are mainly due to the lack of early detection and adequate diagnosis programs.

Seeing the picture more clearly

Susan Acho from the University of the Free State’s Department of Medical Physics, breast cancer research focuses on using mathematical methods to delineate and classify breast masses. Advancements in medical research have led to remarkable progress in breast cancer detection, however, according to Acho, the methods of diagnosis currently available commercially, lack a detailed finesse in accurately identifying the boundaries of breast mass lesions.

Inspiration drawn from pioneer

Drawing inspiration from the Mammography Computer Aided Diagnosis Development and Implementation (CAADI) project, which was the brainchild Prof William Rae, Head of the department of Medical Physics, Acho’s MMedSc thesis titled ‘Segmentation and Quantitative Characterisation of Breast Masses Imaged using Digital Mammography’ investigates classical segmentation algorithms, texture features and classification of breast masses in mammography. It is a rare research topic in South Africa.

 Characterisation of breast masses, involves delineating and analysing the breast mass region on a mammogram in order to determine its shape, margin and texture composition. Computer-aided diagnosis (CAD) program detects the outline of the mass lesion, and uses this information together with its texture features to determine the clinical traits of the mass. CAD programs mark suspicious areas for second look or areas on a mammogram that the radiologist might have overlooked. It can act as an independent double reader of a mammogram in institutions where there is a shortage of trained mammogram readers. 

Light at the end of the tunnel

Breast cancer is one of the most common malignancies among females in South Africa. “The challenge is being able to apply these mathematical methods in the medical field to help find solutions to specific medical problems, and that’s what I hope my research will do,” she says.

By using mathematics, physics and digital imaging to understand breast masses on mammograms, her research bridges the gap between these fields to provide algorithms which are applicable in medical image interpretation.

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