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一种生成具有统计真实性的家庭群体的迭代方法。

An iterative approach for generating statistically realistic populations of households.

机构信息

LISC, Cemagref, Clermont Ferrand, France.

出版信息

PLoS One. 2010 Jan 22;5(1):e8828. doi: 10.1371/journal.pone.0008828.

Abstract

BACKGROUND

Many different simulation frameworks, in different topics, need to treat realistic datasets to initialize and calibrate the system. A precise reproduction of initial states is extremely important to obtain reliable forecast from the model.

METHODOLOGY/PRINCIPAL FINDINGS: This paper proposes an algorithm to create an artificial population where individuals are described by their age, and are gathered in households respecting a variety of statistical constraints (distribution of household types, sizes, age of household head, difference of age between partners and among parents and children). Such a population is often the initial state of microsimulation or (agent) individual-based models. To get a realistic distribution of households is often very important, because this distribution has an impact on the demographic evolution. Usual techniques from microsimulation approach cross different sources of aggregated data for generating individuals. In our case the number of combinations of different households (types, sizes, age of participants) makes it computationally difficult to use directly such methods. Hence we developed a specific algorithm to make the problem more easily tractable.

CONCLUSIONS/SIGNIFICANCE: We generate the populations of two pilot municipalities in Auvergne region (France) to illustrate the approach. The generated populations show a good agreement with the available statistical datasets (not used for the generation) and are obtained in a reasonable computational time.

摘要

背景

许多不同主题的模拟框架需要处理真实数据集来初始化和校准系统。精确复制初始状态对于从模型中获得可靠的预测非常重要。

方法/主要发现:本文提出了一种算法,用于创建一个人工群体,其中个体由年龄描述,并按照各种统计约束(家庭类型、规模、户主年龄、配偶之间、父母与子女之间年龄差异的分布)聚集在家庭中。这样的群体通常是微观模拟或(代理)基于个体的模型的初始状态。获得现实的家庭分布通常非常重要,因为这种分布会对人口动态产生影响。微观模拟方法的常用技术会交叉使用不同的聚合数据源来生成个体。在我们的案例中,不同家庭(类型、规模、参与者年龄)的组合数量使得直接使用这种方法在计算上变得非常困难。因此,我们开发了一种特定的算法来使问题更容易处理。

结论/意义:我们生成了奥弗涅地区(法国)的两个试点城市的人口,以说明该方法。生成的人口与可用的统计数据集(未用于生成)具有很好的一致性,并且在合理的计算时间内获得。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8837/2809743/0d6766337569/pone.0008828.g001.jpg

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