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09 July 2021 | Story Dr Nitha Ramnath | Photo Pixabay

Graduates in the University of the Free State School of Accountancy achieved exceptional results in the South African Institute of Chartered Accountants (SAICA) Initial Test of Competence (ITC).  The UFS achieved an 81% pass rate in the April ITC exam for first-time writers of the BAcc Honours and PGDip (Chartered Accountancy) programmes, compared to the national average of 70%. 

The ITC examination is the first of two qualifying professional examinations required to qualify as a chartered accountant (CA(SA)) in South Africa and is written by graduates shortly after completion of their formal university studies.  There are two sittings for this examination annually, and the April exam is the first for 2021.

“These results were attained despite the very challenging circumstances of the emergency remote teaching environment during 2020 and is testament to the quality of our CA programme and the hard work and dedication of the staff of the School of Accountancy,” said Prof Frans Prinsloo, Director: School of Accountancy. He added that, “the results confirm the ‘quality’ / ‘excellence’ of our CA programme, and reinforce similar observations made by the SAICA monitoring team following their 2020 full visit (which included a detailed evaluation of our CA programme)”. 

Transformation of chartered accountancy profession

Seventy percent of UFS graduates passed the April 2021 ITC examination, including 38 African and 3 Coloured graduates, while 10 out of 13 of the Thuthuka Bursary Programme graduates of 2020 passed. More than 60% of UFS graduates who passed the examination are black (i.e., African, Coloured, and Indian), with a pass rate of 73% compared to the national average of 52%, which include first-time and repeat candidates. The results are testimony of the interventions put in place to contribute to the transformation of the chartered accountancy profession. 

Student-centred teaching approach
      
The School of Accountancy follows a ‘student-centred’ teaching and learning approach. During the COVID-19 pandemic, teaching was predominantly remote and was adapted to include ongoing, clear communication about the academic programme, comprehensive teaching materials containing additional explanations, learning notes, comments, cross-references to theory, and step-by-step learning guides per topic to enable students to navigate their learning. 

Other interventions have also been put in place to support students financially via the school’s INTRABAS unit, mentorship and peer support initiatives, detailed tracking of student participation and performance, follow-up with students, and regular ‘check-ins’ with the student body to consider the student voice and ensure the relevance of the teaching offering. 

The UFS is looking forward to the journey of our candidates and their contributions to the world of work. 

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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