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BACKGROUND Despite the frequent progression from Parkinson’s disease(PD)to Parkinson’s disease dementia(PDD),the basis to diagnose early-onset Parkinson dementia(EOPD)in the early stage is still insufficient.AIM To explore the prediction accuracy of sociodemographic factors,Parkinson's motor symptoms,Parkinson’s non-motor symptoms,and rapid eye movement sleep disorder for diagnosing EOPD using PD multicenter registry data.METHODS This study analyzed 342 Parkinson patients(66 EOPD patients and 276 PD patients with normal cognition),younger than 65 years.An EOPD prediction model was developed using a random forest algorithm and the accuracy of the developed model was compared with the naive Bayesian model and discriminant analysis.RESULTS The overall accuracy of the random forest was 89.5%,and was higher than that of discriminant analysis(78.3%)and that of the naive Bayesian model(85.8%).In the random forest model,the Korean Mini Mental State Examination(K-MMSE)score,Korean Montreal Cognitive Assessment(K-MoCA),sum of boxes in Clinical Dementia Rating(CDR),global score of CDR,motor score of Untitled Parkinson’s Disease Rating(UPDRS),and Korean Instrumental Activities of Daily Living(KIADL)score were confirmed as the major variables with high weight for EOPD prediction.Among them,the K-MMSE score was the most important factor in the final model.CONCLUSION It was found that Parkinson-related motor symptoms(e.g.,motor score of UPDRS)and instrumental daily performance(e.g.,K-IADL score)in addition to cognitive screening indicators(e.g.,K-MMSE score and K-MoCA score)were predictors with high accuracy in EOPD prediction.
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篇名 Best early-onset Parkinson dementia predictor using ensemble learning among Parkinson's symptoms,rapid eye movement sleep disorder,and neuropsychological profile
来源期刊 世界精神病学杂志 学科 医学
关键词 Early-onset Parkinson dementia Ensemble learning method Neuropsychological test Risk factor Discriminant analysis Naive Bayesian model
年,卷(期) 2020,(11) 所属期刊栏目
研究方向 页码范围 245-259
页数 15页 分类号 R74
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Early-onset
Parkinson
dementia
Ensemble
learning
method
Neuropsychological
test
Risk
factor
Discriminant
analysis
Naive
Bayesian
model
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引文网络交叉学科
相关学者/机构
期刊影响力
世界精神病学杂志
不定期
2220-3206
北京市朝阳区东四环中路62号楼远洋国际中
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31
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