Kleinbooi T. Selowa’s research while affiliated with Tshwane University of Technology and other places

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Publications (1)


FIGURE 1: Higher education landscape in South Africa.
FIGURE 2: Vs of Big Data based on the definition above.
FIGURE 3: Taxonomy of Big Data Analytics.
FIGURE 6: Moments of translation of actor-network theory in this study.
Using Big Data analytics tool to influence decision-making in higher education: A case of South African Technical and Vocational Education and Training colleges
  • Article
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August 2022

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480 Reads

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5 Citations

SA Journal of Information Management

Kleinbooi T. Selowa

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Appolonia I. Ilorah

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Background: Big data analytics in education is a new concept that has the potential to change the decision-making landscape in South African Colleges. Higher institutions of learning, including Technical and Vocation Education Training (TVET) colleges like all other organisations, rely on data for their decision-making. These decisions affect the way pedagogy and student management is administered. Colleges collect huge quantities of data in different formats from students, staff and stakeholders for different reasons and occasions. Objectives: The goal of this study was to investigate how Big Data analytics and their tools may improve decision making in TVET colleges in South Africa through the lens of actor-network theory (ANT). Method: A qualitative, interpretive inquiry was undertaken. A case study using focus group was conducted. The data collected through interviews were arranged into themes and a thematic approach was employed to analyse these themes using QDA Miner Lite software. Results: The results from focus group interviews revealed that TVET colleges collect an enormous amount of data. These data are extracted for different reasons, yet there are no Analytics used for decision-making. Decisions are made by the highest-paid individuals (HiPPO) in colleges. Conclusion: This dissertation recommends that the TVET colleges invest in data science skills for their staff, and Big Data infrastructure. Big Data technologies such as Mongo DB and Hadoop are recommended as the most commonly and advanced tools that can be used for Big Data analytics.

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Citations (1)


... Data also help to reduce the gap between lower and higher-performing students and better prepare the teachers for guiding the students toward reaching their academic potential [23,94,98,99]. Furthermore, data mining can be used to understand the graduate level of employability, offering opportunities and solutions for decision-makers to improve employability and propose relevant interventions [21,22,90,100]. ...

Reference:

Data-Driven Leadership in Higher Education: Advancing Sustainable Development Goals and Inclusive Transformation
Using Big Data analytics tool to influence decision-making in higher education: A case of South African Technical and Vocational Education and Training colleges

SA Journal of Information Management