Overview
Machine learning is the branch of artificial intelligence concerned with algorithms that infer patterns from data and improve their predictive performance with experience, rather than following rules an engineer has written out by hand. A model is trained on examples, learns a mapping from inputs to outputs, and is then evaluated on data it has not seen. Methods are commonly grouped into supervised learning, in which labelled examples teach the model to predict a known target; unsupervised learning, which finds structure such as clusters or latent factors in unlabelled data; and reinforcement learning, in which an agent learns from feedback signals. Core algorithm families include linear and logistic regression, decision trees and tree ensembles, support vector machines, time-series models, and deep neural networks. Across the work collected here, machine learning is applied to disease prediction from clinical and epidemiological datasets, image-based detection of plant disease and weeds through transfer learning and deep networks, forecasting of pandemic case counts, and tumour grading. Recurring concerns are feature selection, model interpretability, generalisation beyond the training sample, class imbalance, and the equity and ethical questions raised when predictive systems inform decisions affecting people. These themes connect machine learning to broader debates in data science and applied analytics.
Research published in this journal
9 peer-reviewed articles, ranked by relevance. Each links to its DOI.
Dynamic Network Analysis of Functional Connectivity in Dementia: Unraveling Temporal Patterns and Therapeutic Implications
Seasonal ARIMA model for Covid-19 pandemic Prediction in the United States
Analysis of Clinical Prognostic Variables for Triple Negative Breast Cancer Histological Grading and Lymph Node Metastasis
How Africa Should Engage Ubuntu Ethics and Artificial Intelligence
Mapping and Characterizing the Green Belt of Córdoba: Land Dynamics and the Urban-Rural Transformation Process
Comparative Study of Deep Learning Techniques for Detecting Corn Plant Leaf Diseases Using Transfer Learning
Artificial Intelligence in Healthcare: Enhancing Efficiency, Ensuring Equity, and Restoring Empathy
How this research is being cited
The 9 articles above have been cited 50 times in the scholarly literature. Citation data via OpenAlex and Crossref, updated Jun 2026.
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2026 · Sustainability
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2026 · Journal of the Indian Society of Remote Sensing
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2026 · South African Journal of Philosophy
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2025 · The Journal of Climate Change and Health
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2025 · European Journal of Applied Science, Engineering and Technology
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2025 · European Journal of Applied Science, Engineering and Technology
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2025 · Deleted Journal
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2025 · Journal of the Indian Society of Remote Sensing
A sample of recent works citing this journal's research on Machine Learning, linking to each citing work.