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A Unified Evaluation of Two-Candidate Ballot-Polling Election Auditing Methods

机译:对双候选投票选举审计方法的统一评估

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Counting votes is complex and error-prone. Several statistical methods have been developed to assess election accuracy by manually inspecting randomly selected physical ballots. Two 'principled' methods are risk-limiting audits (RLAs) and Bayesian audits (BAs). RLAs use fre-quentist statistical inference while BAs are based on Bayesian inference. Until recently, the two have been thought of as fundamentally different. We present results that unify and shed light upon 'ballot-polling' RLAs and BAs (which only require the ability to sample uniformly at random from all cast ballot cards) for two-candidate plurality contests, that are building blocks for auditing more complex social choice functions, including some preferential voting systems. We highlight the connections between the methods and explore their performance. First, building on a previous demonstration of the mathematical equivalence of classical and Bayesian approaches, we show that BAs, suitably calibrated, are risk-limiting. Second, we compare the efficiency of the methods across a wide range of contest sizes and margins, focusing on the distribution of sample sizes required to attain a given risk limit. Third, we outline several ways to improve performance and show how the mathematical equivalence explains the improvements.
机译:计数投票是复杂的并且容易出错。已经开发了几种统计方法来通过手动检查随机选择的物理投票来评估选举准确性。两个“原则”的方法是风险限制审计(RLA)和贝叶斯审核(BAS)。 RLA使用FRE-Quentist统计推断,而BAR基于贝叶斯推理。直到最近,两人被认为是根本不同的。我们展示了在“投票管投票”的RLA和BAS上统一和脱落的结果(只需要从所有浇小投票卡随机均匀地样本),这是两个候选多场比赛,这是构建更复杂的社交的模块选择功能,包括一些优惠投票系统。我们突出了方法之间的连接并探索其性能。首先,在先前的古典和贝叶斯方法的数学等效性上建立,我们表明BAS适当校准,是风险限制。其次,我们比较各种比赛尺寸和边缘的方法的效率,专注于获得给定风险限制所需的样本尺寸的分布。第三,我们概述了几种改进性能的方法,并展示了数学等价如何解释改进。

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