A practitioner-focused guide that distills existing AI ethics literature into actionable Do's and Don'ts for each stage of LLM research projects.
Reasons, Values, Stakeholders: A Philosophical Framework for Explainable Artificial Intelligence
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abstract
The societal and ethical implications of the use of opaque artificial intelligence systems for consequential decisions, such as welfare allocation and criminal justice, have generated a lively debate among multiple stakeholder groups, including computer scientists, ethicists, social scientists, policy makers, and end users. However, the lack of a common language or a multi-dimensional framework to appropriately bridge the technical, epistemic, and normative aspects of this debate prevents the discussion from being as productive as it could be. Drawing on the philosophical literature on the nature and value of explanations, this paper offers a multi-faceted framework that brings more conceptual precision to the present debate by (1) identifying the types of explanations that are most pertinent to artificial intelligence predictions, (2) recognizing the relevance and importance of social and ethical values for the evaluation of these explanations, and (3) demonstrating the importance of these explanations for incorporating a diversified approach to improving the design of truthful algorithmic ecosystems. The proposed philosophical framework thus lays the groundwork for establishing a pertinent connection between the technical and ethical aspects of artificial intelligence systems.
fields
cs.CL 1years
2024 1verdicts
CONDITIONAL 1representative citing papers
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The Only Way is Ethics: A Guide to Ethical Research with Large Language Models
A practitioner-focused guide that distills existing AI ethics literature into actionable Do's and Don'ts for each stage of LLM research projects.