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Statistical detection of systematic election irregularities

机译:统计检测系统选举违规行为

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摘要

Democratic societies are built around the principle of free and fair elections, and that each citizen's vote should count equally. National elections can be regarded as large-scale social experiments, where people are grouped into usually large numbers of electoral districts and vote according to their preferences. The large number of samples implies statistical consequences for the polling results, which can be used to identify election irregularities. Using a suitable data representation, we find that vote distributions of elections with alleged fraud show a kurtosis substantially exceeding the kurtosis of normal elections, depending on the level of data aggregation. As an example, we show that reported irregularities in recent Russian elections are, indeed, well-explained by systematic ballot stuffing. We develop a parametric model quantifying the extent to which fraudulent mechanisms are present. We formulate a parametric test detecting these statistical properties in election results. Remarkably, this technique produces robust outcomes with respect to the resolution of the data and therefore, allows for cross-country comparisons.
机译:民主社会是建立在自由公正选举原则的基础上的,每个公民的投票都应平等地享有。全国大选可以看作是大规模的社会实验,人们通常被分为许多选举区,并根据自己的喜好投票。大量样本意味着对投票结果的统计结果,可用于识别选举违规行为。使用适当的数据表示,我们发现有欺诈指控的选举的投票分布显示出峰度大大超过正常选举的峰度,具体取决于数据汇总的水平。例如,我们表明,通过系统的投票填塞确实可以很好地解释俄罗斯最近选举中所报道的违规行为。我们开发了一个参数模型来量化欺诈机制存在的程度。我们制定了一个参数测试,以检测选举结果中的这些统计属性。值得注意的是,该技术在数据分辨率方面产生了可靠的结果,因此可以进行跨国比较。

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