Sep 2026· European Conference on Electrical Engineering and Computer Science· Vol 14327, pp. 143271L - 143271L-12· 0 citations· 22 references
Engineering
Abstract
A two-tier cascaded assessment framework based on multi-dimensional feature extraction and Dempster-Shafer (D-S) decision fusion is proposed to address the physical blind spots inherent in single-parameter monitoring and the boundary ambiguity caused by high-noise environments during the insulation deterioration of 10 kV cable joints. At the feature level, a hybrid neural network incorporating the physical prior of a two-node Lumped Parameter Thermal Network (LPTN) is constructed. Partial Discharge (PD) signals are mapped into two-dimensional topological matrices utilizing Discrete Wavelet Transform (DWT) and Phase-Resolved Partial Discharge (PRPD) techniques, while temperaturecurrent sequences are synchronized via a sliding window mechanism. Subsequently, a dual-branch architecture comprising a modified single-channel ResNet-18 and a 1D-CNN-LSTM is utilized to achieve the dimensionality reduction and spatio-temporal alignment of microsecond-level PD spatial topologies and hour-level electro-thermal inertia characteristics. At the decision level, to resolve the conflict among multi-source sensing information, an improved D-S evidence theory based on a dynamic conflict coefficient K and a penalty factor β is introduced. This mechanism penalizes and distributes high-conflict beliefs equiprobably into independent state subspaces, thereby eliminating falsepositive misjudgments triggered by single-sensor node anomalies. Experimental validation based on 24,000 heterogeneous data pairs demonstrates that the proposed method achieves an overall assessment accuracy of 96.8% under strong perturbation conditions. The results indicate excellent diagnostic robustness and the potential for localized deployment in edge computing gateways.
This publication proposes a definition and a classification of agile software development approaches and analyses ten software development methods that can be characterized as being "agile" against the defined criterion.
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 perception of the impact of agile methods is predominantly positive, and several challenge areas were discovered, but based on this study, agile methods are here to stay.
M. Laanti, O. Salo, P. Abrahamsson· Information and Software Tec...· 260 citations· ⚡20
AI is making software generation faster, but speed does not remove the need for expertise. As more work is delegated to AI, tacit knowledge may become one of the most important human advantages in software engineering. The post Beyond Prompt Engineering: The Role of Tacit Knowledge in Software Engineering appeared first on GPT-Lab.
MIT News · Artificial Intelligence· news.mit.eduSep 9, 2026
A weeklong summer workshop brought higher education faculty to campus to explore how AI and machine learning materials can be adapted for their classrooms.
MIT News · Artificial Intelligence· news.mit.eduSep 2, 2026
What if pathology foundation models could do more with less? GigaPath-Flash and GigaTIME-Flash cut computational demands while maintaining strong performance, opening the door to larger studies and broader exploration. The post GigaPath-Flash and GigaTIME-Flash: Toward population-scale discovery with efficient pathology foundation models appeared first on Microsoft Research.
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