用4个大模型分析68个生理数据集,自动生成可审计的检测规则候选库。
A Multi-Analyst LLM Pipeline for Auditable Rule Discovery Across 68 Public Physiological Corpora
- 四模型并行解析数据集文档,生成候选规则标记
- 经去重与审核后保留436条独特规则形状,94条可立即构建
- 流程支持可审计、可追溯,适合硬件研发前的规则预筛选
公开生理数据集存在传感器、标签、采样率、记录设置和临床终点的异质性。它们可支持检测器设计,但不直接说明应为新无接触监测平台构建哪些检测规则。本文报告了一种受控的四分析师大语言模型(LLM)工作流,将68个符合商业使用兼容性的公共生理数据集转化为可审计的候选规则形状库,用于前瞻性验证。四个独立的商用LLM家族在受控提示下阅读数据集文档,生成695个候选规则标记(top-markers);去重后保留649条规则记录;通过阈值边界审计,识别出51处逻辑异常需限制或人工复核。跨数据集整合生成436条唯一规则形状。基于两项硬性约束(目标硬件通道可用性、不允许多夜患者个性化)进行门控标记,识别出4类检测器家族中的94个可立即构建组件。该流程不产生已验证的临床检测器,而是生成一个可审计的工程链,其中分析师分歧、阈值检查、人工审查与自动化持续集成(CI)检查共同引导文献衍生规则进入前瞻性硬件验证阶段。
原文摘要 · Abstract (English)
Open physiological corpora are heterogeneous: they use different sensors, labels, sampling rates, recording settings, and clinical endpoints. They can support detector design, but they do not directly specify which detector rules should be built for a new contactless monitoring platform. We report a controlled four-analyst large-language-model (LLM) workflow for converting 68 public physiological corpora, screened for commercial-use compatibility, into an auditable library of candidate rule shapes for prospective validation. Four independent commercial LLM families read the corpus documentation under a controlled prompt and produced 695 candidate rule markers (top-markers). Deduplication retained 649 rule records; a threshold-bounds audit then flagged 51 sanity violations for clamping or curator review. Cross-corpus consolidation produced 436 unique rule shapes. Gate-tagging against two hard invariants, native target-hardware channel availability and no multi-night per-patient personalization, identified 94 build-now detector components across four detector-family buckets. The pipeline does not produce a validated clinical detector. It produces an auditable engineering cascade in which analyst disagreement, threshold checks, curator review, and automated continuous-integration (CI) checks route literature-derived rules toward prospective hardware validation.
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