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一种用于医院分类和计算混合支付率的多变量方法。

A multivariate approach for classifying hospitals and computing blended payment rates.

作者信息

Vertrees J C, Manton K G

出版信息

Med Care. 1986 Apr;24(4):283-300. doi: 10.1097/00005650-198604000-00001.

Abstract

Prospective payment for inpatient hospital care is based on the ideal that hospitals that produce similar outputs, as measured by the types of cases the hospital treats, should be paid similar prices. However, similar output is a multidimensional concept. Thus operationalization of this ideal will ultimately require a more complex framework for determining hospital payment rates than currently employed at either the federal or state level. This article illustrates a multidimensional approach to achieve this objective. This technique, called Grade of Membership, is used to generate a unique type of hospital group and to characterize individual hospitals in terms of their degree of similarity to these groups. In addition, a new concept of grouping is described, a variable set based on hospitals' internal cost structure is developed and used, and ordinary least squares regression is employed to compute prices for these groups. With the use of simulation analysis, these groups are compared with more conventional groups.

摘要

住院医院护理的前瞻性支付基于这样一种理念

按照医院所治疗病例的类型来衡量,产出相似的医院应获得相似的支付价格。然而,相似产出是一个多维度的概念。因此,要将这一理念付诸实践,最终需要一个比联邦或州层面目前所采用的更为复杂的框架来确定医院支付费率。本文阐述了一种实现这一目标的多维度方法。这种技术称为隶属度等级,用于生成一种独特类型的医院群组,并根据各医院与这些群组的相似程度来描述单个医院的特征。此外,还描述了一种新的分组概念,开发并使用了基于医院内部成本结构的变量集,并采用普通最小二乘法回归来计算这些群组的价格。通过模拟分析,将这些群组与更传统的群组进行了比较。

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