Sep 2026· Journal of Online Trust and Safety· 0 citations
Ethics and Social Impacts of AI
Abstract
Generative AI is transforming image-based sexual abuse and exposing fundamental limitations in existing trust and safety frameworks. While research has focused on the technical details of detection and platform governance, less attention has been paid to how generative AI changes the nature of harm itself. Drawing on an intersectional feminist study of interviews with 12 survivors, legal advocates, activists, technologists, and researchers in Mexico, this article introduces gendered digital creative violence to explain how generative AI weaponizes creative production to generate emotional, reputational, psychological, and structural harm. We show that deepfake abuse extends beyond synthetic content to encompass victim-blaming, institutional failure, evidentiary instability, and affective exhaustion, leaving survivors to shoulder the burden of digital safety. At the same time, feminist organizations have developed AI-enabled counter-infrastructures, most notably the survivor-support chatbot OlimpIA, demonstrating how AI can be redesigned around care, accompaniment, and collective protection. We argue that creative violence offers a transferable framework for understanding emerging forms of generative harm beyond deepfakes by shifting attention from reactive content moderation to the politics of creation itself. This perspective advances trust and safety scholarship by proposing feminist approaches to AI governance grounded in structural prevention, situated ethics, cross-sector collaboration, and survivor-centered design.
The method, ECCOLA, is presented, which aims at making the high-level AI ethics principles more practical, making it possible for developers to more easily implement them in practice.
Ville Vakkuri, Kai-Kristian Kemell, P. Abrahamsson· EUROMICRO Conference on Soft...· 64 citations· ⚡6
The goal is to not only refine the accuracy of the LLM-based tool but also to underscore its potential in streamlining the software development lifecycle through proactive code improvement and education.
Z. Rasheed, Malik Abdul Sami, Muhammad Waseem et al.· arXiv.org· 62 citations· ⚡3
A comprehensive overview of how enhanced sampling methods are reshaping the field, with a particular focus on the data-driven construction of collective variables, is provided.
Kai Zhu, Enrico Trizio, Jintu Zhang et al.· Chemical Reviews· 58 citations
The use of large language models to automatically improve the user story quality in Austrian Post Group IT agile teams is explored, with a reference model for an Autonomous LLM-based Agent System developed and implemented at the company.
Zheying Zhang, M. Rayhan, Tomas Herda et al.· International Conference on...· 48 citations· ⚡4
This paper introduces a novel multi-AI-agent system designed to fully automate SLRs, and demonstrates how it substantially reduces the time and effort traditionally required for SLRs while maintaining comprehensiveness and precision.
Abdul Malik Sami, Z. Rasheed, Kai-Kristian Kemell et al.· arXiv.org· 44 citations· ⚡2
The proposed LLM-based multi-agent system automates qualitative data analysis process, creating opportunities for researchers and practitioners, and future improvements focus on enhancing multilingual performance and integrating continuous expert feedback.
Z. Rasheed, Muhammad Waseem, Aakash Ahmad et al.· arXiv.org· 41 citations
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 16, 2026
The “HardFlow” algorithm could help generative AI models produce high-quality outputs that obey strict requirements when “pretty close” doesn’t cut it.
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