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New methods for analyzing serological data with applications to influenza surveillance

机译:分析血清学数据的新方法及其在流感监测中的应用

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Please cite this paper as: Ndifon W. (2011) New methods for analyzing serological data with applications to influenza surveillance. Influenza and Other Respiratory Viruses DOI: 10.1111/j.1750-2659.2010.00192.x.Background Two important challenges to the use of serological assays for influenza surveillance include the substantial amount of experimental effort involved and the inherent noisiness of serological data.Results I show that log-transformed serological data exist in an effectively one-dimensional space. I use this result, together with new mechanistic insights into serological assays, to develop computational methods for accurately and efficiently recovering unmeasured serological data from a sample of measured data, for systematically minimizing noise and other types of non-antigenic variation found in the data, and for quantifying and visualizing antigenic variation. The methods can also be applied to data with effective dimensionality greater than one, under certain conditions.Conclusion Careful application of the methods developed here would enable the collection of better-quality serological data on a greater number of circulating influenza viruses than is currently possible and improve the ability to identify potential epidemic and pandemic viruses before they become widespread. Although the focus here is on influenza surveillance, the described methods are more widely applicable.
机译:请引用本文为:Ndifon W.(2011)分析血清学数据的新方法及其在流感监测中的应用。流感和其他呼吸道病毒DOI:10.1111 / j.1750-2659.2010.00192.x。背景血清学检测用于流感监测的两个重要挑战包括大量的实验工作以及血清学数据固有的噪声。结果I表明对数转换的血清学数据存在于有效的一维空间中。我将这个结果与对血清学检测的新机制见解一起,开发出一种计算方法,可以从测量数据样本中准确有效地恢复未测量的血清学数据,从而系统地最小化数据中发现的噪声和其他类型的非抗原变异,用于量化和可视化抗原变异。该方法还可以在某些条件下应用于有效维数大于1的数据。结论认真应用此处开发的方法将能够收集比目前可能的数量更多的循环流感病毒质量更好的血清学数据,并且提高潜在病毒和大流行病毒在广泛传播之前的识别能力。尽管这里的重点是流感监测,但是所描述的方法更广泛地适用。

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