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SSGM框架(Stability and Safety-Governed Memory)
3. SSGM框架(Stability and Safety-Governed Memory)
arXiv:2603.11768 安全与风险 观点 OA · 绿色 被引 21 · S2

通过形式化分析与架构分解,展示 SSGM 如何缓解拓扑引发的知识泄漏(敏感上下文被固化到长期存储),以及有助于防止语义漂移(知识在迭代摘要中退化)。Through formal analysis and architectural decomposition, it is shown how SSGM can mitigate topology-induced knowledge leakage where sensitive contexts are solidified into long-term storage, and help prevent semantic drift where knowledge degrades through iterative summarization.

Toward Trustworthy AI Development: Mechanisms for Supporting Verifiable Claims
迈向可信的 AI 开发:支持可验证声明的机制
arXiv:2004.07213 安全与风险 观点 OA · 绿色 被引 507 · S2

本报告建议不同利益相关方可采取多种措施,提升关于 AI 系统及其相关开发流程声明的可验证性,重点是为 AI 系统的安全性、安保、公平性与隐私保护提供证据。This report suggests various steps that different stakeholders can take to improve the verifiability of claims made about AI systems and their associated development processes, with a focus on providing evidence about the safety, security, fairness, and privacy protection of AI systems.

Consciousness in Artificial Intelligence: Insights from the Science of Consciousness
人工智能中的意识:来自意识科学的洞察
arXiv:2308.08708 安全与风险 观点 OA · 绿色 被引 274 · S2

该报告主张并例证了一种严谨且基于经验的方法来研究 AI 意识:依据获得最佳支持的神经科学意识理论,详细评估现有 AI 系统。This report argues for, and exemplifies, a rigorous and empirically grounded approach to AI consciousness: assessing existing AI systems in detail, in light of best-supported neuroscientific theories of consciousness.