The proposed framework provides a reliable and explainable approach for assessing perceived road safety by integrating semantic scene understanding with contextual reasoning and establishes a reproducible foundation for future research in interpretable transportation systems, human–AI alignment analysis, and road scene...
Imad Tbaileh, Ahmed Radwan, Oroob Yaseen et al.· Frontiers in Future Transpor...· 0 citations
Artificial intelligence (AI) is no longer confined to computer science. The same families of learning algorithms now predict protein structures, price financial assets, design semiconductor layouts and personalise customer journeys. This diffusion has created a new kind of scholarship in which methods, data and problem...
Devanand Ch E. B. Khedkar, Chetan Khedkar, Dasharath Suryavanshi Sapna R. Chavan· International Journal of Adv...· 0 citations
Human review stages in AI-assisted evaluation pipelines can become throughput bottlenecks when automated upstream processes generate cases faster than reviewers can assess them—a problem acute when information availability varies across client types, a form of structural information asymmetry whose operational conseque...
Munil Yang· Journal of the Operational R...· 0 citations
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Background The use of artificial intelligence (AI) in Human Resource (HR) is often linked to HR employee performance. This view, however, does not fully explain how performance emerges within AI-integrated work environments, where outcomes depend on how HR employees actually behave. Although a few emerging research has...
This record documents a two-stage self-referential elicitation experiment using AI-generated NotebookLM Audio Overview dialogue. The experiment examines whether an analytical dialogue format continues to generate interpretive structure around deliberately low-information material after explicitly recognizing that the m...
Trent Slade· Zenodo (CERN European Organi...· 0 citations
Method note reporting the pre-registered retrospective test of AI-RISKPATH: whether a mechanical chaining engine, driven only by precondition/effect labels attached to the 208 techniques of MITRE ATLAS v2026.09, can reconstruct the 73 attack chains ATLAS documents. The case studies were split by a public randomness bea...
Franck Bardol· Zenodo (CERN European Organi...· 0 citations
(c) 2026 Pranay Mahendrakar. Licensed under CC BY 4.0. The dominant frame for large reasoning models borrows a label from dual-process psychology: a fast, intuitive System 1 and a slower, deliberate System 2, with longer chains of thought read as more of the latter and therefore, on average, more reliable. A survey of...
Pranay M. Mahendrakar· Zenodo (CERN European Organi...· 0 citations
Early and accurate cancer diagnosis combined with robust survival risk prognostication remains the paramount determinant of therapeutic success in precision oncology. While routine clinical workflows evaluate hematoxylin and eosin (H&E) stained gigapixel Whole Slide Images (WSI) for morphological staging and transcript...
Kartik Kothalkar· Zenodo (CERN European Organi...· 0 citations
(c) 2026 Pranay Mahendrakar. Licensed under CC BY 4.0. The dominant frame for large reasoning models borrows a label from dual-process psychology: a fast, intuitive System 1 and a slower, deliberate System 2, with longer chains of thought read as more of the latter and therefore, on average, more reliable. A survey of...
Pranay M. Mahendrakar· Zenodo (CERN European Organi...· 0 citations
Early and accurate cancer diagnosis combined with robust survival risk prognostication remains the paramount determinant of therapeutic success in precision oncology. While routine clinical workflows evaluate hematoxylin and eosin (H&E) stained gigapixel Whole Slide Images (WSI) for morphological staging and transcript...
Kartik Kothalkar· Zenodo (CERN European Organi...· 0 citations
Exploring how generative AI could make machine vision more accessible to businesses. The post GenEye in a Box: Making Machine Vision Something You Can Just Ask For appeared first on GPT-Lab.
MIT News · Artificial Intelligence· news.mit.eduOct 8, 2026
Training AI agents with reinforcement learning can be challenging because their tools, context, and decision-making are managed by complex frameworks. Agent Lightning connects existing agents to RL training, making it easier to improve them without rebuilding them. The post Agent Lightning v1.0: A 3,500-Line Lightweight Agentic RL Framework for Training Agents with Real Harnesses appeared first on Microsoft Research.
MIT News · Artificial Intelligence· news.mit.eduOct 6, 2026
Jennifer Neville did not want to go into computer science—but that’s exactly where she landed. Neville discusses the starts and stops that led to her professional sweet spot and her work identifying “surprising failures” making it hard for AI to handle complexity. The post What AI gets wrong and what failure teaches us appeared first on Microsoft Research.
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