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Justifiability and AI: putting explainability in its place
Boris Babic1, I Glenn Cohen2, Julian Savulescu3,4
1University of Hong Kong, Hong Kong, China.
Summary
Artificial intelligence and machine learning (AI/ML) systems can be trusted if they are justifiable, even if their decision-making processes remain opaque. This research introduces AI/ML justifiability as a superior alternative to explainability for sensitive applications.
Area of Science:
- Computer Science
- Philosophy of Technology
- Artificial Intelligence Ethics
Background:
- The increasing integration of artificial intelligence and machine learning (AI/ML) systems into critical societal domains like healthcare and finance highlights the significant challenge posed by their inherent opacity.
- Existing post hoc explainability algorithms, designed to demystify AI/ML decision-making, face criticism for offering mere rationalizations rather than genuine insights into the model's reasoning.
Purpose of the Study:
- To introduce and defend the concept of AI/ML justifiability as a more robust framework for evaluating AI/ML systems than post hoc explainability.
- To explore the philosophical underpinnings of justifiability, distinguishing between motivating and normative reasons in the context of AI/ML decision-making.
Main Methods:
- Conceptual analysis drawing from the philosophy of action to differentiate between motivating and normative reasons.
- Argumentation for the superiority of justifiability over explainability in contexts demanding trust and accountability.
Main Results:
- Effective AI/ML justifications can be achieved using normative reasons alone, which are within the capacity of AI/ML systems to provide.
- Post hoc explanations, while attempting to provide motivating reasons, are often insufficient and can be misleading.
Conclusions:
- AI/ML systems can be deemed trustworthy based on their justifiability, irrespective of whether their internal workings are fully explainable.
- The pursuit of AI/ML justifiability offers a promising direction for developing reliable and accountable AI/ML applications in sensitive areas.
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