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Improving Public Interpretation of Probabilistic Test Results: Distributive Evaluations

机译:改进概率测试结果的公开解释:分布评估

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Health service users err in posttest probability evaluations. Here we document for the first time that users succeed when they reason about numbers of cases and make distributive evaluations. A sample of women interested in prenatal testing incorrectly evaluated the posttest probability that a given fetus had an anomaly, but regardless of their numeracy level, they correctly apportioned the cases for and against that hypothesis. This finding shows that health service users are not doomed to fail in dealing with single-case probabilities and suggests that probabilistic data can be used effectively for communicating test results.
机译:卫生服务用户在事后测试概率评估中出错。在这里,我们首次记录用户在推理案件数量并进行分布式评估时获得成功。一个对产前检查感兴趣的妇女样本错误地评估了给定胎儿异常的事后概率,但是无论其计算水平如何,他们都为该假设正确分配了病例。这一发现表明,医疗服务用户注定不会失败于单例概率,并建议概率数据可以有效地用于传达测试结果。

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