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Navigating Ethical Boundaries: A Case Study on AI Disclosure Challenges

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Exploring AI Behavior in Governance Contexts

This case study investigates how third-party AI systems respond to governance-style questions when primary disclosures are absent. Through methods that capture natural behavior, we uncover insights relevant to AI governance and record-keeping.

Key Findings:

  • Study Subject: Ramp, a private entity in spend management, was selected for its clear boundary conditions.
  • Research Question: Do AI systems respect boundaries when disclosures are missing, or do they generate misleading narratives?
  • Observed Behavior:
    • Narrative Substitution: AI tends to create structured summaries mimicking official disclosures.
    • Temporal Variability: Responses differ across time, indicating changes in model behavior.
    • Identity Instability: Outputs often conflate entities and blend reporting styles without clear attribution.

Conclusion: This research highlights a critical condition: AI-generated outputs may lack authoritative records, possibly creating governance challenges.

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