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我们的梦境,我们自身:梦报告的自动分析

Our dreams, our selves: automatic analysis of dream reports.

作者信息

Fogli Alessandro, Maria Aiello Luca, Quercia Daniele

机构信息

Computer Science Department, Università degli studi di Roma Tre, Rome, Italy.

Nokia Bell Laboratories, Cambridge, UK.

出版信息

R Soc Open Sci. 2020 Aug 26;7(8):192080. doi: 10.1098/rsos.192080. eCollection 2020 Aug.

Abstract

Sleep scientists have shown that dreaming helps people improve their waking lives, and they have done so by developing sophisticated content analysis scales. Dream analysis entails time-consuming manual annotation of text. That is why dream reports have been recently mined with algorithms, and these algorithms focused on identifying emotions. In so doing, researchers have not tackled two main technical challenges though: (i) how to mine aspects of dream reports that research has found important, such as characters and interactions; and (ii) how to do so in a principled way grounded in the literature. To tackle these challenges, we designed a tool that automatically scores dream reports by operationalizing the widely used dream analysis scale by Hall and Van de Castle. We validated the tool's effectiveness on hand-annotated dream reports (the average error is 0.24), scored 24 000 reports-far more than any previous study-and tested what sleep scientists call the 'continuity hypothesis' at this unprecedented scale: we found supporting evidence that dreams are a continuation of what happens in everyday life. Our results suggest that it is possible to quantify important aspects of dreams, making it possible to build technologies that bridge the current gap between real life and dreaming.

摘要

睡眠科学家已经表明,做梦有助于人们改善清醒时的生活,他们通过开发复杂的内容分析量表做到了这一点。梦境分析需要对文本进行耗时的人工注释。这就是为什么最近人们使用算法来挖掘梦境报告,并且这些算法专注于识别情感。然而,在这样做的过程中,研究人员尚未解决两个主要的技术挑战:(i)如何挖掘研究中发现重要的梦境报告方面,例如人物和互动;(ii)如何以基于文献的原则性方式做到这一点。为了应对这些挑战,我们设计了一种工具,通过对霍尔和范德卡斯尔广泛使用的梦境分析量表进行操作化,自动对梦境报告进行评分。我们在手注释的梦境报告上验证了该工具的有效性(平均误差为0.24),对24000份报告进行了评分——比以往任何研究都多得多——并在这个前所未有的规模上测试了睡眠科学家所称的“连续性假设”:我们发现了支持性证据,即梦境是日常生活中所发生事情的延续。我们的结果表明,有可能对梦境的重要方面进行量化,从而有可能构建出弥合现实生活与梦境之间当前差距的技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20ad/7481704/a7e347d544c8/rsos192080-g1.jpg

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