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Performance evaluation of CIDARS on dengue fever outbreak detection, China

机译:CIDARS在中国登革热暴发检测中的性能评估

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Performance evaluation of CIDARS on dengue fever outbreak detection, China Honglong Zhanga#, Zhongjie Lia#, Shengjie Laia, Archie Clementsb, Wenbiao Hub~*, Weizhong Yanga~* a Key Laboratory of Surveillance and Early-warning on infectious Disease, Division of Infectious Diseases, Chinese Center for Disease Control and Prevention, Beijing 102206 b School of Population Health, The University of Queensland, Brisbane 4006 QLD, Australia #: These authors contributed equally 'Correspondence : Background For more effective prevention and control of dengue fever (DF), a China Infectious Disease Automated-alert and Response System (CIDARS) was used to identify possible early warning signals of DF outbreaks at country level in China. Aims This study aims to evaluate the performance of the CIDARS early warning system for DF. Methods In CIDARS a time series moving percentile method was used to detect the outbreak of DF. If the cases of reported DF are over 50 percentile of historical data, an early warning signal will be generated and sent to the local county CDC staff who are responsible for certifying and investigating the signals. In this study, descriptive analysis was used to display the spatial and temporal patterns of DF reported cases and early warning signals of DF during the study period. Sensitivity, specificity and timeliness were employed to assess the performance of DF early warning in CIDARS. Results There were 651 reported DF cases in China between 1st January 2009 and 31st December 2011. 58 signals were mostly occurred between August and December and distributed in Guangdong (35), Zhejiang (7) and Guangxi (4) provinces. 93.10% signals were responded within 24 hours. There were 9 outbreaks of DF recorded during study period with 8 (88.9%) outbreaks detected by CIDARS. The average time of outbreaks detection by CIDARS was 0.63 day. Conclusions CIDARS is a useful platform to detect the DF outbreak at early stage. More accurate algorithms could be tested to reduce the negative signals.
机译:CIDARS在登革热暴发检测中的性能评估,中国洪龙Zhang#,中杰利亚#,盛杰莱亚,Archie Clementsb,文标枢纽〜*,卫中扬加〜*传染病监测与预警重点实验室,传染科疾病,中国疾病预防控制中心,北京102206 b昆士兰大学人口健康学院,布里斯班,澳大利亚昆士兰州4006#:这些作者做出了同样的贡献“通讯:背景,旨在更有效地预防和控制登革热(DF) ,使用中国传染病自动预警和响应系统(CIDARS)来识别中国国家/地区可能发生的DF暴发的预警信号。目的本研究旨在评估DF的CIDARS预警系统的性能。方法在CIDARS中,使用时间序列移动百分位数方法检测DF的爆发。如果报告的DF案例超过历史数据的50%,则会生成预警信号,并将其发送到当地县疾病预防控制中心的工作人员,他们负责对信号进行认证和调查。在这项研究中,描述性分析用于显示研究期间DF报告病例的时空格局和DF预警信号。使用敏感性,特异性和及时性来评估DF预警在CIDARS中的表现。结果2009年1月1日至2011年12月31日,中国报告了651例DF病例。58例信号主要发生在8月至12月之间,分布在广东(35个),浙江(7个)和广西(4个)省。 24小时内回复了93.10%的信号。研究期间记录了9次DF暴发,CIDARS发现8起(88.9%)暴发。 CIDARS发现暴发的平均时间为0.63天。结论CIDARS是早期发现DF暴发的有用平台。可以测试更准确的算法来减少负信号。

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