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dc.contributor.advisor Modipa, T. I.
dc.contributor.author Mutobvu, Ronewa
dc.date.accessioned 2024-09-17T09:45:54Z
dc.date.available 2024-09-17T09:45:54Z
dc.date.issued 2023
dc.identifier.uri http://hdl.handle.net/10386/4620
dc.description Thesis (M.Sc. (E-Science)) -- University of Limpopo, 2023 en_US
dc.description.abstract Kaggle crime statistics for South Africa were used to create machine learning categorization models. Although the techniques used in the experiments that came before this one differed, the dataset that was used was. The accuracy of other previous studies conducted on different datasets from this one and compared during the experiment stage were utilized to identify the three classification algorithms employed in this study. The study chose to use the random forest, K-nearest neighbor, and Naive Bayes classifier models. The Python-based algorithms were trained on a pre-processed crime dataset. Data preparation and processing, missing value analysis, exploratory analysis, and finally model construction and evaluation made up the analytical process. The best model should be chosen in accordance with the results. In both approaches, RF is outperforming the other models. According to the study's evaluation of both metrics and logloss, RF appears to be doing better. en_US
dc.description.sponsorship The National e-Science Postgraduate Teaching and Training Platform (NEPTTP) en_US
dc.format.extent 60 leaves en_US
dc.language.iso en en_US
dc.relation.requires PDF en_US
dc.subject Crime statistics en_US
dc.subject Python-based algorithms en_US
dc.subject South Africa en_US
dc.subject Machine Learning en_US
dc.subject.lcsh Criminal statistics en_US
dc.subject.lcsh Crime -- South Africa en_US
dc.subject.lcsh Crime forecasting en_US
dc.subject.lcsh Machine learning en_US
dc.subject.lcsh Computer algorithms en_US
dc.title Prediction of South African crime rate using supervised machine learning techniques en_US
dc.type Thesis en_US


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