Enhancing risk stratification for use in integrated care: a cluster analysis of high-risk patients in a retrospective cohort study
被引:15
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作者:
Vuik, Sabine I.
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机构:
Imperial Coll, Inst Global Hlth Innovat, St Marys Hosp, London, EnglandImperial Coll, Inst Global Hlth Innovat, St Marys Hosp, London, England
Vuik, Sabine I.
[1
]
Mayer, Erik
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机构:
Imperial Coll, St Marys Hosp, Dept Surg, London, EnglandImperial Coll, Inst Global Hlth Innovat, St Marys Hosp, London, England
Mayer, Erik
[2
]
Darzi, Ara
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Imperial Coll, Inst Global Hlth Innovat, St Marys Hosp, London, England
Imperial Coll, St Marys Hosp, Dept Surg, London, EnglandImperial Coll, Inst Global Hlth Innovat, St Marys Hosp, London, England
Darzi, Ara
[1
,2
]
机构:
[1] Imperial Coll, Inst Global Hlth Innovat, St Marys Hosp, London, England
[2] Imperial Coll, St Marys Hosp, Dept Surg, London, England
Objective: To show how segmentation can enhance risk stratification tools for integrated care, by providing insight into different care usage patterns within the high-risk population. Design: A retrospective cohort study. A risk score was calculated for each person using a logistic regression, which was then used to select the top 5% high-risk individuals. This population was segmented based on the usage of different care settings using a k-means cluster analysis. Data from 2008 to 2011 were used to create the risk score and segments, while 2012 data were used to understand the predictive abilities of the models. Setting and participants: Data were collected from administrative data sets covering primary and secondary care for a random sample of 300 000 English patients. Main measures: The high-risk population was segmented based on their usage of 4 different care settings: emergency acute care, elective acute care, outpatient care and GP care. Results: While the risk strata predicted care usage at a high level, within the high-risk population, usage varied significantly. 4 different groups of high-risk patients could be identified. These 4 segments had distinct usage patterns across care settings, reflecting different levels and types of care needs. The 20082011 usage patterns of the 4 segments were consistent with the 2012 patterns. Discussion: Cluster analyses revealed that the highrisk population is not homogeneous, as there exist 4 groups of patients with different needs across the care continuum. Since the patterns were predictive of future care use, they can be used to develop integrated care programmes tailored to these different groups. Conclusions: Usage-based segmentation augments risk stratification by identifying patient groups with different care needs, around which integrated care programmes can be designed.
机构:
Navamindradhiraj Univ, Fac Med, Dept Med, Div Pulm & Crit Care Med,Vajira Hosp, Bangkok, ThailandNavamindradhiraj Univ, Fac Med, Dept Med, Div Pulm & Crit Care Med,Vajira Hosp, Bangkok, Thailand
Jirawat, Napat
Kongpolprom, Napplika
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机构:
Chulalongkorn Univ, Thai Red Cross Soc, Dept Med, Div Pulm & Crit Care Med,Fac Med,King Chulalongkor, Bangkok 10330, ThailandNavamindradhiraj Univ, Fac Med, Dept Med, Div Pulm & Crit Care Med,Vajira Hosp, Bangkok, Thailand
机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Kong Yujia
Yang Junjun
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Yang Junjun
Jiang Fang
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Jiang Fang
Zhao Jun
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Zhao Jun
Ren Tong
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Ren Tong
Li Jie
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Li Jie
Wang Xiaoyu
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Wang Xiaoyu
Feng Fengzhi
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Feng Fengzhi
Wan Xirun
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机构:Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China
Wan Xirun
Xiang Yang
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Chinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R ChinaChinese Acad Med Sci, Peking Union Med Coll Hosp, Dept Obstet, 1 Shuaifuyuan, Beijing 100730, Peoples R China