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05 September 2022 | Story Andrè Damons | Photo Andrè Damons
Prof Abdon Atangana
Prof Abdon Atangana, Professor of Applied Mathematics in the Institute for Groundwater Studies (IGS) and a highly cited mathematician for the years 2019-2021, says existing mathematical models are used to first fit collected data and then predict future events. It is for this reason he introduced a new concept that can be used to test whether the spread will have one or several waves.

With a new outbreak of the Ebola Virus Disease (EVD) reported this year in Democratic Republic of the Congo (DRC) – the 14th EVD outbreak in the country – researchers at the University of the Free State (UFS) introduced a new concept that can be used to test whether the spread will have one or several waves. They believe the focus should be to identify the source or the hosts of this virus for it to be a complete eradication. 

According to the Centers for Disease Control and Prevention (CDC), the Ministry of Health in the Democratic Republic of the Congo (DRC) declared an outbreak of Ebola in Mbandaka health zone, Equateur Province on April 23, 2022. EVD, formerly known as Ebola haemorrhagic fever, is a severe, often fatal illness affecting humans and other primates. The virus is transmitted to people from wild animals (such as fruit bats, porcupines and non-human primates) and then spreads in the human population through direct contact with the blood, secretions, organs or other bodily fluids of infected people, and with surfaces and materials (e.g. bedding, clothing) contaminated with these fluids, according to the World Health Organisation (WHO).
 
Prof Abdon Atangana, Professor of Applied Mathematics in the Institute for Groundwater Studies (IGS), says existing mathematical models are used to first fit collected data and then predict future events. Predictions help lawmakers to take decisions that will help protect their citizens and their environments. The outbreaks of COVID-19 and other infectious diseases have exposed the weakness of these models as they failed to predict the number of waves and in several instances; they failed to predict accurately day-to-day new infections, daily deaths and recoveries.

Solving the challenges of the current models

In the case of COVID-19 in South Africa, it is predicted that the country had far more infections than what was recorded, which is due to challenges faced by the medical facilities, poverty, inequality, and other factors. With Ebola in the DRC, data recorded are not far from reality due to the nature of the virus and its symptoms. However, the predictions show although some measures have been put in place in DRC and other places where the Ebola virus spread, they will still face some challenges in the future, as the virus will continue to spread but may have less impact. 

“To solve the challenges with the current models, we suggested a new methodology. We suggested that each class should be divided into two subclasses (Detected and undetected) and we also suggested that rates of infection, recovery, death and vaccination classes should be a function of time not constant as suggested previously. These rates are obtained from what we called daily indicator functions. For example, an infection rate should be obtained from recorded data with the addition of an uncertain function that represents non-recorded data (Here more work is still to be done to get a better approximation).

“I introduced a new concept called strength number that can be used to test whether the spread will have one or several waves. The strength number is an accelerative force that helps to provide speed changes, thus if this number is less than zero we have deceleration, meaning there will be a decline in the number of infections. If the number is positive, we have acceleration, meaning we will have an increase in numbers. If the number is zero, the current situation will remain the same,” according to Prof Atangana. 

To provide better prediction, he continues, reliable data are first fitted with the suggested mathematical model. This helps them to know if their mathematical model is replicating the dynamic process of the spread. The next step is to predict future events, to do this, we create three sub-daily indicator functions (minimum, actual, and maximum). These will lead to three systems, the first system represents the worst-case scenario, the second is the actual scenario, and the last is a best-case scenario.

Virus will continue to spread but with less impact

Using this method, Prof Atangana, a highly cited mathematician for the years 2019-2021, says he and Dr Seda Igret Araz, postdoctoral student, were able to predict that, although some measures have been put in place in DRC and other places where the Ebola virus spreads, they will still face some challenges in the future as the virus will continue to spread but may have less impact. 

To properly achieve the conversion from observed facts into mathematical formulations and to address these limitations, he had to ask fundamental questions such as what is the rate of infection, what is the strength of the infection, what are the crossover patterns presented by the spread, how can day-to-day new infected numbers be predicted and what differential operator should be used to model a dynamic process followed by the spread?

This approach was tested for several infectious diseases where we present the case of Ebola in Congo and Covid-19 in South Africa.  

News Archive

UFS closes pedestrian entrances to improve safety on campus
2010-08-05

The University of the Free State (UFS) will remove pedestrian gates on its Main Campus in an extra effort to improve safety on this campus.

It was decided to implement this plan because the campus covers a huge area and people who are not part of the campus community hang around on the campus, sometimes causing damages. This idea is also strongly supported by students, in particular with regard to the removal of the pedestrian thoroughfares close to the hostels.

The following pedestrian gates will not be removed:

- The pedestrian thoroughfares on both sides of the DF Malherbe Gate (next to the Faculty of Health Sciences). Both the main gate and the pedestrian thoroughfares at the DF Malherbe Gate remain open 24 hours a day.
- The pedestrian thoroughfares at the Badenhorst Street Gate (close to Roosmaryn Residence). The Badenhorst Gate is not open 24 hours a day, but the pedestrian thoroughfare will remain open 24 hours a day.

The following pedestrian thoroughfares will be removed with effect from 1 September 2010:

- The pedestrian thoroughfare to the east of Pellies Park
- The pedestrian thoroughfare to the west of Pellies Park (directly behind JMB Hertzog Residence)
- The turnstile between the Kovsie Church and the Wynand Mouton Gate
- The pedestrian thoroughfare behind the tennis courts
- The pedestrian thoroughfares behind the rugby fields

A request was also directed at the Kovsie Church to close down the pedestrian thoroughfare between the Kovsie Church and the UFS. This gate will then be opened during church activities.

From 1 September 2010, the personnel of Security Services will regularly patrol the fences. Trespassers that flatten the fencing to enter the campus will be prosecuted.

Students, personnel and visitors are encouraged to make use of the main entrance gates of the UFS. These include the Main Gate (in Nelson Mandela Drive), the Wynand Mouton Gate (in DF Malherbe Drive), the DF Malherbe Gate (in Wynand Mouton Drive), the Badenhorst Street Gate (close to Roosmaryn Residence) and the Furstenburg Gate (in Furstenburg Road).

Media Release:
Mangaliso Radebe
Assistant Director: Media Liaison
Tel: 051 401 2828
Cell: 078 460 3320
E-mail: radebemt@ufs.ac.za
5 August 2010

 

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