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首页> 外文期刊>Journal of Intelligent Information Systems >Analysis of medications change in Parkinson's disease progression data
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Analysis of medications change in Parkinson's disease progression data

机译:帕金森氏病进展数据中药物变化的分析

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摘要

Parkinson's disease is a neurodegenerative disorder that affects people worldwide. Careful management of patient's condition is crucial to ensure the patient's independence and quality of life. This is achieved by personalized treatment based on individual patient's symptoms and medical history. The aim of this study is to determine patient groups with similar disease progression patterns coupled with patterns of medications change that lead to the improvement or decline of patients' quality of life symptoms. To this end, this paper proposes a new methodology for clustering of short time series of patients' symptoms and prescribed medications data, and time sequence data analysis using skip-grams to monitor disease progression. The results demonstrate that motor and autonomic symptoms are the most informative for evaluating the quality of life of Parkinson's disease patients. We show that Parkinson's disease patients can be divided into clusters ordered in accordance with the severity of their symptoms. By following the evolution of symptoms for each patient separately, we were able to determine patterns of medications change which can lead to the improvement or worsening of the patients' quality of life.
机译:帕金森氏病是一种神经退行性疾病,会影响全世界的人们。认真管理患者的病情对于确保患者的独立性和生活质量至关重要。这是通过根据个体患者的症状和病史进行个性化治疗来实现的。这项研究的目的是确定具有相似疾病进展模式以及导致患者生活质量症状改善或下降的药物变化模式的患者群体。为此,本文提出了一种新的方法,用于对患者症状和处方药数据的短时间序列进行聚类,并使用跳跃图来监测疾病进展的时序数据分析。结果表明,运动和自主神经症状对于评估帕金森氏病患者的生活质量最为有用。我们显示,帕金森氏病患者可以根据症状的严重程度分为几类。通过分别跟踪每个患者的症状演变,我们能够确定可能导致患者生活质量改善或恶化的药物变化模式。

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