Application of Patient‐Based Real‐Time Quality Control Based on Artificial Intelligence Monitoring Platform in Continuously Quality Risk Monitoring of Down Syndrome Serum Screening

EWMA图表 质量保证 质量(理念) 控制(管理) 控制图 计算机科学 预警系统 可靠性工程 过程(计算) 数据挖掘 人工智能 工程类 运营管理 外部质量评估 哲学 认识论 操作系统 电信
作者
Xuran Yang,Qianlan Chen,Zhifeng Pan,Jingmao Cheng,Wenting Zheng,Liang Ying-liang,Hui Chen,Guanghui Chen,Wandang Wang
出处
期刊:Journal of Clinical Laboratory Analysis [Wiley]
卷期号:38 (5) 被引量:1
标识
DOI:10.1002/jcla.25019
摘要

ABSTRACT Background Patient‐based real‐time quality control (PBRTQC) has gained attention because of its potential to continuously monitor the analytical quality in situations wherein internal quality control (IQC) is less effective. Therefore, we tried to investigate the application of PBRTQC method based on an artificial intelligence monitoring (AI‐MA) platform in quality risk monitoring of Down syndrome (DS) serum screening. Methods The DS serum screening item determination data and relative IQC data from January 4 to September 7 in 2021 were collected. Then, PBRTQC exponentially weighted moving average (EWMA) and moving average (MA) procedures were built and optimized in the AI‐MA platform. The efficiency of the EWMA and MA procedures with intelligent and traditional control rules were compared. Next, the optimal EWMA procedures that contributed to the quality assurance of serum screening were run and generated early warning cases were investigated. Results Optimal EWMA and MA procedures on the AI‐MA platform were built. Comparison results showed the EWMA procedure with intelligent QC rules but not traditional quality rules contained the best efficiency. Based on the AI‐MA platform, two early warning cases were generated by using the optimal EWMA procedure, which finally found were caused by instrument failure. Moreover, the EWMA procedure could truly reflect the detection accuracy and quality in situations wherein traditional IQC products were unstable or concentrations were inappropriate. Conclusions The EWMA procedure built by the AI‐MA platform could be a good complementary control tool for the DS serum screening by truly and timely reflecting the detection quality risks.
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