Crab Research
AI ethics

Borrowed Safety: How Output-Centric AI Governance Depletes the Human Capacity It Assumes

Li, Alex Chengyu

Working Paper · ZenodoFirst public

Overview

This preprint develops the borrowed-safety thesis: output-centric AI controls can reduce visible hosted-platform risk while weakening the distributed human capacity needed to secure, verify, and govern future AI deployment.

Original abstract (English)

This preprint develops the borrowed-safety thesis: output-centric AI controls can reduce visible hosted-platform risk while weakening the distributed human capacity needed to secure, verify, and govern future AI deployment. It introduces containment, incidence, regeneration, and action-symmetry tests; derives a self-contained non-closure result, apprenticeship threshold, reversal time, and infrastructure floor; and argues for open, model-neutral, externally bounded practice infrastructure paired with strict action-level control in production.

Public abstract source

Social SciencesAI ethicsAI governancecybersecurityhuman capitalverificationcyber rangesdual useAI safety
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