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贝叶斯气溶胶释放探测器:一种用于检测和表征由炭疽芽孢杆菌大气释放引起的疫情的算法。

The Bayesian aerosol release detector: an algorithm for detecting and characterizing outbreaks caused by an atmospheric release of Bacillus anthracis.

作者信息

Hogan William R, Cooper Gregory F, Wallstrom Garrick L, Wagner Michael M, Depinay Jean-Marc

机构信息

The RODS Laboratory, Department of Biomedical Informatics, University of Pittsburgh, Pittsburgh, PA 15260, USA. mailto:

出版信息

Stat Med. 2007 Dec 20;26(29):5225-52. doi: 10.1002/sim.3093.

Abstract

Early detection and characterization of outdoor aerosol releases of Bacillus anthracis is an important problem. As health departments and other government agencies address this problem with newer methods of surveillance such as environmental surveillance through the BioWatch program and enhanced medical surveillance, they increasingly have newer types of surveillance data available. However, existing methods for the statistical analysis of surveillance data do not account for recent meteorological conditions, as human analysts did in the case of the Sverdlovsk anthrax outbreak of 1979 to determine whether the locations of victims were consistent with meteorological conditions in the week preceding their onset of illness. This paper describes the Bayesian aerosol release detector (BARD), an algorithm that analyzes both medical surveillance data and meteorological data for early detection and characterization of outdoor releases of B. anthracis. It estimates a posterior distribution over the location, quantity, and date and time conditioned on a release having occurred. We report a proof-of-concept evaluation of BARD, which demonstrates that the approach shows promise and warrants further development and evaluation.

摘要

早期检测和鉴定炭疽芽孢杆菌在室外的气溶胶释放是一个重要问题。随着卫生部门和其他政府机构通过诸如生物监测计划中的环境监测以及强化医疗监测等更新的监测方法来解决这一问题,他们越来越多地获得了新型监测数据。然而,现有监测数据的统计分析方法并未考虑近期的气象条件,就像1979年斯维尔德洛夫斯克炭疽疫情期间人类分析人员那样,通过确定受害者的位置是否与发病前一周的气象条件相符来进行分析。本文描述了贝叶斯气溶胶释放探测器(BARD),这是一种分析医疗监测数据和气象数据以早期检测和鉴定炭疽芽孢杆菌室外释放情况的算法。它根据已发生的释放情况估计位置、数量以及日期和时间的后验分布。我们报告了对BARD的概念验证评估,结果表明该方法具有前景,值得进一步开发和评估。

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