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在语义空间中导航:使用不同的计算语言模型揭示精神病学意义的结构。

Navigating the semantic space: Unraveling the structure of meaning in psychosis using different computational language models.

机构信息

Department of Translation & Language Sciences, Universitat Pompeu Fabra, Carrer Roc Boronat, 138, Barcelona, 08018, Spain.

Department of Translation & Language Sciences, Universitat Pompeu Fabra, Carrer Roc Boronat, 138, Barcelona, 08018, Spain.

出版信息

Psychiatry Res. 2024 Mar;333:115752. doi: 10.1016/j.psychres.2024.115752. Epub 2024 Jan 23.

DOI:10.1016/j.psychres.2024.115752
PMID:38280291
Abstract

Speech in psychosis has long been ascribed as involving 'loosening of associations'. We pursued the aim to elucidate its underlying cognitive mechanisms by analysing picture descriptions from 94 subjects (29 healthy controls, 18 participants at clinical high risk, 29 with first-episode psychosis, and 18 with chronic schizophrenia), using five language models with different computational architectures: FastText, which represents meaning non-contextually/statically; BERT, which represents contextual meaning sensitive to grammar and context; Infersent and SBERT, which provide sentential representations; and CLIP, which evaluates speech relative to a visual stimulus. These models were used to quantify semantic distances crossed between successive tokens/sentences, and semantic perplexity indicating unexpectedness in continuations. Results showed that, among patients, semantic similarity increased when measured with FastText, Infersent, and SBERT, while it decreased with CLIP and BERT. Higher perplexity was observed in first-episode psychosis. Static semantic measures were associated with clinically measured impoverishment of thought and referential semantic measures with disorganization. These patterns indicate a shrinking conceptual semantic space as represented by static language models, which co-occurs with a widening in the referential semantic space as represented by contextual models. This duality underlines the need to separate these two forms of meaning for understanding mechanisms involved in semantic change in psychosis.

摘要

精神分裂症患者的言语长期以来被认为涉及“联想的松弛”。我们通过分析 94 名受试者(29 名健康对照者、18 名临床高风险者、29 名首发精神病患者和 18 名慢性精神分裂症患者)的图片描述,旨在阐明其潜在的认知机制。我们使用了具有不同计算架构的 5 种语言模型:FastText,它以非上下文/静态方式表示含义;BERT,它表示语法和上下文敏感的上下文含义;Infersent 和 SBERT,它们提供句子表示;以及 CLIP,它相对于视觉刺激评估言语。这些模型用于量化连续标记/句子之间跨越的语义距离,以及表示延续时意外性的语义困惑度。结果表明,在患者中,当使用 FastText、Infersent 和 SBERT 进行测量时,语义相似性增加,而当使用 CLIP 和 BERT 进行测量时,语义相似性降低。首发精神病患者的困惑度更高。静态语义测量与临床测量的思维贫乏有关,而参照语义测量与紊乱有关。这些模式表明,静态语言模型所代表的概念语义空间缩小,而语境模型所代表的参照语义空间扩大。这种二元性强调了需要为理解精神分裂症中语义变化所涉及的机制,分别分离这两种形式的意义。

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