使用自然语言处理识别可能患有路易体痴呆的人。

IF 4.1 Q2 GERIATRICS & GERONTOLOGY
Mohamed Heybe, Lucy Gibson, Annabel C Price, Rudolf N Cardinal, John T O'Brien, Robert Stewart, Christoph Mueller
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引用次数: 0

摘要

自然语言处理(NLP)可以扩大临床记录数据在痴呆研究中的应用。我们使用NLP算法来检测路易体痴呆(DLB)的核心特征,并将这些特征应用于阿尔茨海默病(AD)或路易体痴呆患者的大型数据库。在14329例确诊患者中,4.3%诊断为DLB, 95.7%为AD痴呆。尽管18.7%的AD痴呆患者具有两个或两个以上的DLB核心特征,但DLB患者的所有核心特征都明显比AD痴呆患者常见。总之,NLP应用程序可以在常规收集的数据中识别DLB的核心特征。近五分之一的AD痴呆患者有两个或两个以上的DLB核心特征,有可能被诊断为可能的DLB。NLP可能有助于识别可能符合DLB标准但尚未确诊的患者。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identifying people with potentially undiagnosed dementia with Lewy bodies using natural language processing.

Natural language processing (NLP) can expand the utility of clinical records data in dementia research. We deployed NLP algorithms to detect core features of dementia with Lewy bodies (DLB) and applied those to a large database of patients diagnosed with dementia in Alzheimer's disease (AD) or DLB. Of 14,329 patients identified, 4.3% had a diagnosis of DLB and 95.7% of dementia in AD. All core features were significantly commoner in DLB than in dementia in AD, although 18.7% of patients with dementia in AD had two or more DLB core features. In conclusion, NLP applications can identify core features of DLB in routinely collected data. Nearly one in five patients with dementia in AD have two or more DLB core features and potentially qualify for a diagnosis of probable DLB. NLP may be helpful to identify patients who may fulfil criteria for DLB but have not yet been diagnosed.

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CiteScore
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