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Natural frequencies improve Bayesian reasoning in simple and complex inference tasks

机译:自然频率改善了简单和复杂推理任务中的贝叶斯推理。

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摘要

Representing statistical information in terms of natural frequencies rather than probabilities improves performance in Bayesian inference tasks. This beneficial effect of natural frequencies has been demonstrated in a variety of applied domains such as medicine, law, and education. Yet all the research and applications so far have been limited to situations where one dichotomous cue is used to infer which of two hypotheses is true. Real-life applications, however, often involve situations where cues (e.g., medical tests) have more than one value, where more than two hypotheses (e.g., diseases) are considered, or where more than one cue is available. In Study 1, we show that natural frequencies, compared to information stated in terms of probabilities, consistently increase the proportion of Bayesian inferences made by medical students in four conditions—three cue values, three hypotheses, two cues, or three cues—by an average of 37 percentage points. In Study 2, we show that teaching natural frequencies for simple tasks with one dichotomous cue and two hypotheses leads to a transfer of learning to complex tasks with three cue values and two cues, with a proportion of 40 and 81% correct inferences, respectively. Thus, natural frequencies facilitate Bayesian reasoning in a much broader class of situations than previously thought.
机译:用自然频率而不是概率来表示统计信息可以提高贝叶斯推理任务的性能。固有频率的这种有益效果已在医学,法律和教育等各种应用领域得到证明。然而,到目前为止,所有的研究和应用都局限于使用一种二分法线索来推断两个假设中的哪一个是正确的情况。但是,现实生活中的应用通常涉及提示(例如医学检查)具有多个值,考虑了两个以上的假设(例如疾病)或可获得多个提示的情况。在研究1中,我们表明,与以概率表示的信息相比,自然频率在一定程度上不断提高了医学生在四个条件下(三个提示值,三个假设,两个提示或三个提示)进行贝叶斯推理的比例。平均37个百分点。在研究2中,我们表明,为带有一个二分线索和两个假设的简单任务教授自然频率会导致学习转移到具有三个线索值和两个线索的复杂任务,正确推理的比例分别为40%和81%。因此,自然频率在比以前认为的要广泛得多的情况下有助于贝叶斯推理。

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