Sep 2026· Zenodo (CERN European Organization for Nuclear Research)
Machine Learning and ELM
Abstract
Software Defect Prediction (SDP) enables development teams to focus limited testing and code review effort on the modules most likely to contain faults, improving software quality while controlling costs. Extreme Learning Machine (ELM) is well suited to this task because its single-hidden-layer feedforward structure is trained by analytically solving for output weights rather than by iterative backpropagation, giving very fast training. This paper proposes a hybrid model, SMOTE-OOA-ELM, that addresses both problems jointly: the Synthetic Minority Over-sampling Technique (SMOTE) is applied to the training data to correct class imbalance before model construction, and the Osprey Optimisation Algorithm (OOA), a two-phase nature-inspired metaheuristic based on osprey hunting behaviour, searches for near-optimal ELM input weights and hidden biases in place of random initialization. The paper details the architecture of the combined model, a preprocessing and optimization pipeline, and a full experimental protocol built around NASA/PROMISE benchmark datasets, stratified cross-validation, and imbalance-aware metrics (F1-score, AUC, and Matthews Correlation Coefficient (MCC)) rather than raw accuracy. The model is positioned against plain ELM, SMOTE-ELM without metaheuristic tuning, and OOA-ELM without oversampling, isolating the individual and combined contribution of each component. Illustrative performance patterns consistent with prior swarm-optimized ELM and oversampling literature are presented to demonstrate the intended evaluation format, indicating that the combined use of SMOTE and OOA yielded larger gains in minority-class detection than either technique applied alone
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P. Abrahamsson, O. Salo, Jussi Ronkainen et al.· arXiv.org· 727 citations· ⚡54
The study shows that agile practices improve both informal and formal communication, but indicates that, in larger development situations involving multiple external stakeholders, a mismatch of adequate communication mechanisms can sometimes even hinder the communication.
M. Pikkarainen, Jukka Haikara, O. Salo et al.· Empirical Software Engineeri...· 401 citations· ⚡48
The results indicate that software engineering work practices are chosen opportunistically, adapted and configured to provide value under the constrains imposed by the startup context.
Nicolò Paternoster, Carmine Giardino, M. Unterkalmsteiner et al.· Information and Software Tec...· 394 citations· ⚡54
The results show that the embedded industry has been able to apply agile methods in its development processes and that the appreciation of the agile methods and their individual practices appears to increase once adopted and applied in practice.
O. Salo, P. Abrahamsson· IET Software· 238 citations· ⚡9
Consequences of happiness and unhappiness that are beneficial and detrimental for developers' mental well-being, the software development process, and the produced artifacts are found.
D. Graziotin, Fabian Fagerholm, Xiaofeng Wang et al.· Journal of Systems and Softw...· 236 citations· ⚡13
The Mobile-D approach is briefly outlined here and the experiences gained from four case studies are discussed, which helped develop an agile development approach for mobile application development.
P. Abrahamsson, Antti Hanhineva, H. Hulkko et al.· Conference on Object-Oriente...· 225 citations· ⚡18
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