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首页> 外文期刊>PLoS Computational Biology >Tracking progress towards malaria elimination in China: Individual-level estimates of transmission and its spatiotemporal variation using a diffusion network approach
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Tracking progress towards malaria elimination in China: Individual-level estimates of transmission and its spatiotemporal variation using a diffusion network approach

机译:追踪中国疟疾消除进展:使用扩散网络方法的变速器单位估计及其时空变化

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摘要

Although malaria is still responsible for a great deal of death and illness in many parts of the world, many national control programmes have made great strides in controlling malaria and now are in a position to aim for elimination. However, in order to monitor progress towards elimination and plan interventions, it is crucial to measure malaria transmission and how it varies over space and time. However, traditional metrics used to measure malaria transmission are not suitable in elimination settings. China is one example of a country approaching elimination, with aims to eliminate the disease by 2020. Using a detailed individual level dataset of the times and locations of people showing symptoms of malaria, we use approaches adapted from the study of how information spreads through social networks to estimate the likelihood of transmission occurring between cases. This information is used to estimate how many people we expect each case to go on to infect. In elimination settings, this number is an indication of how quickly elimination will be reached and how likely we are to see a resurgence in cases once elimination is achieved. Our results show a decline in this metric over time, as well as seasonal changes in transmission which are different to the patterns in when the most cases were observed.
机译:虽然疟疾在世界许多地方仍然负责大量的死亡和疾病,但许多国家控制方案在控制疟疾方面取得了很大进展,现在处于旨在消除的位置。但是,为了监测消除和计划干预的进展,对疟疾传播以及如何在空间和时间内变化至关重要。但是,用于测量疟疾传输的传统指标不适合消除设置。中国是一个国家接近消除的一个例子,目的是在2020年之前消除该疾病。使用显示疟疾症状的时代和地点的详细个人级别数据集,我们使用从研究如何通过社会传播的研究方法来使用改编的方法网络来估计在案例之间发生的传输的可能性。此信息用于估计我们预期每种情况的人有多少人继续感染。在消除设置中,该号码是达到速度迅速的指示以及一旦消除消除,我们将有多大程度地看到复兴。我们的结果显示出该公制随着时间的推移下降,以及传输的季节性变化与观察到大多数情况下的模式不同。

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