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首页> 外文期刊>Statistics in medicine >Statistical issues and challenges associated with rapid detection of bio-terrorist attacks.
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Statistical issues and challenges associated with rapid detection of bio-terrorist attacks.

机译:与快速发现生物恐怖袭击有关的统计问题和挑战。

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摘要

The traditional focus for detecting outbreaks of an epidemic or bio-terrorist attack has been on the collection and analysis of medical and public health data. Although such data are the most direct indicators of symptoms, they tend to be collected, delivered, and analysed days, weeks, and even months after the outbreak. By the time this information reaches decision makers it is often too late to treat the infected population or to react in some other way. In this paper, we explore different sources of data, traditional and non-traditional, that can be used for detecting a bio-terrorist attack in a timely manner. We set our discussion in the context of state-of-the-art syndromic surveillance systems and we focus on statistical issues and challenges associated with non-traditional data sources and the timely integration of multiple data sources for detection purposes.
机译:检测流行病或生物恐怖袭击暴发的传统重点一直是医疗和公共卫生数据的收集和分析。尽管此类数据是症状的最直接指标,但往往会在爆发后的几天,几周甚至几个月内收集,传递和分析这些数据。当这些信息到达决策者时,治疗受感染的人群或以其他方式做出反应通常为时已晚。在本文中,我们探索了传统和非传统的不同数据源,这些数据源可用于及时检测生物恐怖袭击。我们将在最先进的综合监视系统的背景下进行讨论,我们将重点放在与非传统数据源相关的统计问题和挑战以及出于检测目的而及时集成多个数据源的问题。

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