Software reliability is an important part of reliability assurance for complex engineering systems, and timely fault diagnosis supports safe and continuous operation. After a test failure, statement-level fault localization ranks source-code lines for early inspection. Representation-based approaches can operate without a coverage matrix by extracting line-level hidden states from a frozen large language model for code (code LLM), but their downstream readout and training objective are not necessarily aligned with source-window ranking and buggy-version-level evaluation. We propose SeqRankFL, a sequence-aware ranker for LLM-based code representations. It combines a bidirectional long short-term memory network (BiLSTM), which follows code order within a source window, with a Hybrid objective that joins binary cross-entropy (BCE) and the listwise learning-to-rank loss ListNet. On the source-window ranking task using windows of at most 128 physical lines within known buggy files from BugsInPy and Defects4J, relative to a matched LLMAO-style Transformer+BCE reference that shares the same representations, splits, and evaluation protocol, SeqRankFL raises the equally weighted Top-1 from 51.31% to 58.58%, an absolute gain of 7.27 percentage points, with consistent improvements on both datasets. Further controlled analyses show that multi-depth layer mixing and syntax scope mainly improve average ranks, whereas control-flow/data-flow graphs and failure behavior have condition-dependent effects across models, languages, and project partitions. The controlled results identify the listwise objective as the primary driver of the Top-1 improvement, with the BiLSTM readout providing an additional architecture-dependent gain under the ranking-aware objective.
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 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
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.
A path, a fence, a knot. MindTopo sets a new benchmark for testing how AI understands topological relationships and highlights new opportunities to strengthen spatial reasoning and planning. The post MindTopo reveals VLMs’ spatial reasoning abilities appeared first on Microsoft Research.
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