A Causal Analysis of Harm
Sander Beckers, Hana Chockler, Joseph Y. Halpern
摘要
As autonomous systems rapidly become ubiquitous, there is a growing need for a legal and regulatory framework that addresses when and how such a system harms someone. There have been several attempts within the philosophy literature to define harm, but none of them has proven capable of dealing with the many examples that have been presented, leading some to suggest that the notion of harm should be abandoned and “replaced by more well-behaved notions”. As harm is generally something that is caused, most of these definitions have involved causality at some level. Yet surprisingly, none of them makes use of causal models and the definitions of actual causality that they can express. In this paper, which is an expanded version of the conference paper Beckers et al. (Adv Neural Inform Process Syst 35:2365–2376, 2022), we formally define a qualitative notion of harm that uses causal models and is based on a well-known definition of actual causality. The key features of our definition are that it is based on contrastive causation and uses a default utility to which the utility of actual outcomes is compared. We show that our definition is able to handle the examples from the literature, and illustrate its importance for reasoning about situations involving autonomous systems.
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- A Measure-Theoretic Axiomatisation of CausalityJunhyung Park, Simon Buchholz, Bernhard Schölkopf, Krikamol MuandetNeurIPS 2023 · 被引用 11 次
- Controlling Counterfactual Harm in Decision Support Systems Based on Prediction SetsEleni Straitouri, Suhas Thejaswi, Manuel Gomez RodriguezNeurIPS 2024 · 被引用 11 次
- Moral Responsibility for AI SystemsSander BeckersNeurIPS 2023 · 被引用 7 次
- Counterfactual harmJonathan G. Richens, Rory Beard, Daniel H. ThompsonNeurIPS 2022 · 被引用 5 次
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