arXiv:2608.26176cs.AIcs.CL2026-08

为AI系统设计可审查的结构化知识卡片,提升决策可信度

Knowledge Cards: Structured Knowledge for AI Systems

  • 用知识卡片形式记录概念、关系与推理逻辑
  • 每张卡片由领域专家审核签名,确保可审计性
  • 适合需要高可靠性决策的能源、医药等关键领域

当前的AI系统文档(如模型卡、数据卡)无法覆盖输入与输出之间的知识层——即系统所持有的概念、关系及推理模式。这对依赖自主决策的智能体系统尤为关键。本文提出「知识卡片」(Knowledge Card),一种结构化、可审查的知识表达形式,用于记录单个限定概念(如特定故障模式、合规要求或流程判断)的实体、关系、推理链、适用条件及每项主张的来源。所有内容基于正式领域本体构建,并由领域专家签字确认。已在能源和制药领域完成初步原型开发,其模板已作为公开草案发布以推动社区共建。

原文摘要 · Abstract (English)

AI systems whose outputs inform real decisions, and increasingly consequential ones, require something that current documentation practice does not provide: a structured, inspectable representation of the knowledge they need to ground, contextualize, and reason about those decisions, ideally reviewed and signed off by a domain expert. Established documentation artefacts already capture important aspects of an AI system. Model cards describe how a system behaves, data cards describe what it was trained on, and system cards describe the risks of a deployed system. None of them addresses the layer between inputs and outputs, more precisely, the concepts a system holds, the relationships it models, and the patterns of reasoning it applies. For pattern-recognition tasks this gap is tolerable. For agentic AI, where systems act on their conclusions, it is the step that most often separates a promising proof of concept from an operational solution an organisation can rely on. This paper introduces the Knowledge Card, a structured artefact that captures validated knowledge about a single bounded concept in a form that experts can review, organisations can audit, and AI systems can reason over. For one concept, such as a specific failure mode, a compliance obligation, or a process decision, a Knowledge Card records the entities and relationships involved, the reasoning that connects them, the conditions under which that reasoning no longer holds, and the provenance of every claim, all grounded in a formal domain ontology and signed off by a domain expert. Initial prototype cards have been built in the energy and pharmaceutical domains. The schema is released as a public draft for community engagement.

知识表示AI可解释性领域本体可信AI

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