利用马尔可夫模型绘制TBI患儿的护理路径

Viktor-Jan De Deken, Koen Putman, W. Cools, K. Barbé, H. V. Deynse
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引用次数: 0

摘要

脑损伤带来了巨大的社会负担。重点不仅应放在预防上,而且应放在提高护理质量上。目前,在护理轨迹中有太多无法解释的变化。在这一领域研究较少的一类患者是儿童创伤性脑损伤。造成这种情况的原因是缺乏足够大的数字。为了克服这个问题,管理数据具有提供解决方案的潜力。利用马尔可夫链模型,我们可以识别创伤性脑损伤患者所采取的不同护理路径。为了分析数据,首先根据护理路径的相似性对其进行聚类。这样就可以识别出接受类似治疗的不同组的患者。然后,对这些路径进行重构,形成每个集群的预期护理路径,从而实现对所接受的护理的解释。本研究提供了一种利用行政数据绘制创伤性脑损伤患者因果护理路径的新技术。通过确定不同的护理途径,我们可以更好地了解护理的差异,并努力提高患者接受的护理质量。这对患有创伤性脑损伤的儿童尤其重要,因为他们可能有特殊的护理需求,需要特别关注。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mapping care pathways in children with TBI using Markov Models
Brain injuries come with a significant societal burden. Focus should be brought not only to prevention but also towards improved quality of care. Currently, there is too much unexplainable variation in care trajectories. One category of patients less studied in this domain is pediatric traumatic brain injuries. The reason for this is lack of sufficient large numbers. To overcome this problem, administrative data holds the potential to provide a solution. By using Markov chain models, we can identify the different care pathways that patients with traumatic brain injuries take. To analyze the data, first the care pathways are clustered based on their similarity. This allowed for identification of different groups of patients who received similar care. Then, the pathways were reconstructed to form an expected care pathway for each cluster, which enabled interpretation of the care received. This study provides a novel technique for the mapping of causal care pathways for patients with traumatic brain injuries using administrative data. By identifying different care pathways, we can better understand the variation in care and work towards improving the quality of care received by patients. This is particularly important for children with traumatic brain injuries, who may have unique care needs that require specific attention.
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