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A Bayesian approach to estimate changes in condom use from limited human immunodeficiency virus prevalence data

机译:贝叶斯方法可从有限的人类免疫缺陷病毒患病率数据估算避孕套使用中的变化

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Evaluation of large-scale intervention programmes against human immunodeficiency virus (HIV) is becoming increasingly important, but impact estimates frequently hinge on knowledge of changes in behaviour such as the frequency of condom use over time, or other self-reported behaviour changes, for which we generally have limited or potentially biased data. We employ a Bayesian inference methodology that incorporates an HIV transmission dynamics model to estimate condom use time trends from HIV prevalence data. Estimation is implemented via particle Markov chain Monte Carlo methods, applied for the first time in this context. The preliminary choice of the formulation for the time varying parameter reflecting the proportion of condom use is critical in the context studied, because of the very limited amount of condom use and HIV data available. We consider various novel formulations to explore the trajectory of condom use over time, based on diffusion-driven trajectories and smooth sigmoid curves. Numerical simulations indicate that informative results can be obtained regarding the amplitude of the increase in condom use during an intervention, with good levels of sensitivity and specificity performance in effectively detecting changes. The application of this method to a real life problem demonstrates how it can help in evaluating HIV interventions based on a small number of prevalence estimates, and it opens the way to similar applications in different contexts.
机译:对针对人类免疫缺陷病毒(HIV)的大规模干预计划的评估变得越来越重要,但是影响评估通常取决于行为变化的知识,例如随着时间推移使用安全套的频率或其他自我报告的行为变化,为此我们通常只有有限的数据或可能存在偏差的数据。我们采用贝叶斯推断方法,该方法结合了HIV传播动力学模型,可以从HIV流行率数据估算避孕套使用时间趋势。估计是通过在此情况下首次应用的粒子马尔可夫链蒙特卡洛方法实现的。反映安全套使用比例的时变参数配方的初步选择在所研究的环境中至关重要,因为安全套使用量和可获得的HIV数据非常有限。我们基于扩散驱动的轨迹和平滑的S形曲线,考虑了各种新颖的配方来探索避孕套的使用轨迹。数值模拟表明,在干预过程中可以获得有关安全套使用增加幅度的有益信息,在有效检测变化方面具有良好的敏感性和特异性表现。该方法在现实生活中的问题的应用展示了它如何可以基于少量的患病率估计来帮助评估艾滋病干预措施,并为在不同背景下的类似应用开辟了道路。

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