An Evidence Model for Agentic Processes: Evidence Claims, Trust Assumptions, and Policy Assessment

📅 2026-09-08
📈 Citations: 0
✨ Influential: 0
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🤖 AI Summary
本文提出了一种针对代理过程的证据声明模型,以解决日志和锚点在语义上的误导问题,通过定义多种证据声明来提高AI系统的可信度。
📝 Abstract
Agentic AI systems increasingly exchange messages, invoke tools, request approvals, hold structured decision sessions, and modify shared artifacts. Logs and anchors can make selected records tamper-evident, but they can also mislead if their evidentiary meaning is implicit: a hash does not establish semantic truth, a signature does not establish authorization, and an external anchor does not establish capture completeness. This paper proposes an evidence claim model for agentic processes. It distinguishes artifact integrity, temporal existence, provenance, approval evidence, declared ordering, capture claim, relevance claim, deliberation traceability, monitoring claim, anchoring authorization claim, policy assessment claim, risk treatment claim, mitigation implementation claim, and management response claim. Semantic validity is treated as a recurring limitation. The model maps these claims to mechanisms, assumptions, limitations, and threats, and situates them in an agent organization with functional CEO agent, executive, operational, evidence, and audit roles, plus a plan-do-check-act-inspired management response loop. The contribution is conceptual: it does not validate a particular implementation, prevent all failures, or automate legal compliance. It provides a vocabulary for stating which claims an agentic black box can support, which claims it cannot establish, and which controls are required around it.
Problem

Research questions and friction points this paper is trying to address.

Agentic AI Systems
Evidence Claims
Semantic Validity
Tamper-evident Records
Authorization
Innovation

Methods, ideas, or system contributions that make the work stand out.

Evidence Claim Model
Agentic Processes
Semantic Validity
Agent Organization
Management Response Loop
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A
Arslan Brömme
Independent Researcher