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首页> 外文期刊>American Journal of Epidemiology >Multiparameter Calibration of a Natural History Model of Cervical Cancer
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Multiparameter Calibration of a Natural History Model of Cervical Cancer

机译:宫颈癌自然史模型的多参数校准

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The objective of this study was to develop a comprehensive natural history model of human papillomavirus (HPV) and cervical cancer using a two-step approach to model calibration. In the first step, the authors utilized primary epidemiologic data from a longitudinal study of women in Brazil and identified a plausible range for each input parameter that produced model output within the 95% confidence intervals of the data. In the second step, they performed a simultaneous search over all input parameters to identify parameter sets that produced output consistent with data from multiple sources. A goodness-of-fit score was computed for 555,000 unique parameter sets using a likelihood-based approach, and a sample of good-fitting parameter sets was used in the model to illustrate the advantage of the calibration approach by projecting a range of benefits associated with cervical cancer prevention policies. The calibrated model had reasonable fit to the data in terms of duration and prevalence of HPV infection for high-risk types, prevalence of precancerous lesions, and incidence of cancer. The authors found that leveraging primary data from longitudinal studies provides unique opportunities for model parameterization of the unobservable nature of HPV infection and its role in the development of cervical cancer.
机译:这项研究的目的是使用两步法进行模型校正,以开发人乳头瘤病毒(HPV)和宫颈癌的综合自然史模型。第一步,作者利用来自巴西妇女的纵向研究的主要流行病学数据,确定了每个输入参数的合理范围,该范围在数据的95%置信区间内产生了模型输出。在第二步中,他们同时搜索所有输入参数,以识别产生与来自多个源的数据一致的输出的参数集。使用基于似然的方法为555,000个唯一参数集计算了拟合优度得分,并且在模型中使用了拟合优度参数样本来通过预测一系列相关的益处来说明校准方法的优势。制定宫颈癌预防政策。校准的模型在高危类型的HPV感染的持续时间和流行率,癌前病变的流行率以及癌症的发生率方面与数据合理匹配。作者发现,利用来自纵向研究的原始数据,可以为模型参数化提供独特的机会,以参数化HPV感染的不可观察性及其在宫颈癌发展中的作用。

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