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Offline Sentence Processing Measures for testing Readability with Users

机译:离线句子处理措施,用于对用户进行测试可读性

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While there has been much work on computational models to predict readability based on the lexical, syntactic and discourse properties of a text, there are also interesting open questions about how computer generated text should be evaluated with target populations. In this paper, we compare two offline methods for evaluating sentence quality, magnitude estimation of acceptability judgements and sentence recall. These methods differ in the extent to which they can differentiate between surface level fluency and deeper comprehension issues. We find, most importantly, that the two correlate. Magnitude estimation can be run on the web without supervision, and the results can be analysed automatically. The sentence recall methodology is more resource intensive, but allows us to tease apart the fluency and comprehension issues that arise.
机译:虽然在计算模型上有很多工作来预测基于文本的词汇,句法和话语属性的可读性,但是还有有趣的开放问题,有关如何使用目标群体评估计算机生成文本的开放问题。在本文中,我们比较了两个脱机方法,用于评估句子质量,可接受性判断的幅度估计和句子召回。这些方法在多大程度上不同,这些方法可以区分表面级流畅性和更深层次的理解问题。我们发现,最重要的是,这两个相关性。幅度估计可以在没有监控的情况下在Web上运行,并且可以自动分析结果。判决召回方法是更具资源密集的,但允许我们挑逗出现的流畅性和理解问题。

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