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首页> 外文期刊>Value in health: the journal of the International Society for Pharmacoeconomics and Outcomes Research >Combining individual-level discrete choice experiment estimates and costs to inform health care management decisions about customized care: The case of follow-up strategies after breast cancer treatment
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Combining individual-level discrete choice experiment estimates and costs to inform health care management decisions about customized care: The case of follow-up strategies after breast cancer treatment

机译:结合个人水平的离散选择实验估计值和费用,以向医疗管理决策提供有关个性化护理的决策:乳腺癌治疗后的后续策略

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摘要

Objective: Customized care can be beneficial for patients when preferences for health care programs are heterogeneous. Yet, there is little guidance on how individual-specific preferences and cost data can be combined to inform health care decisions about customized care. Therefore, we propose a discrete choice experiment-based approach that illustrates how to analyze the cost-effectiveness of customized (and noncustomized) care programs to provide information for hospital managers. Methods: We exploit the fact that choice models make it possible to determine whether preference heterogeneity exists and to obtain individual-specific parameter estimates. We present an approach of how to combine these individual-specific parameter estimates from a random parameter model (mixed logit model) with cost data to analyze the cost-effectiveness of customized care and demonstrate our method in the case of follow-up after breast cancer treatment. Results: We found that there is significant preference heterogeneity for all except two attributes of breast cancer treatment follow-up and that the fully customized care program leads to higher utility and lower costs than the current standardized program. Compared with the single alternative program, the fully customized care program has increased benefits and higher costs. Thus, it is necessary for health care decision makers to judge whether the use of resources for customized care is cost-effective. Conclusions: Decision makers should consider using the results obtained from our methodological approach when they consider implementing customized health care programs, because it may help to find ways to save costs and increase patient satisfaction.
机译:目的:当对医疗保健计划的偏好异类时,定制护理可能对患者有益。但是,关于如何结合个人特定的偏好和费用数据来为定制护理提供医疗保健决策方面的指导很少。因此,我们提出了一种基于离散选择实验的方法,该方法说明了如何分析定制(和非定制)护理计划的成本效益,以便为医院经理提供信息。方法:我们利用选择模型可以确定偏好异质性是否存在以及获得特定于个人的参数估计这一事实。我们提供了一种方法,该方法如何将随机参数模型(混合logit模型)中的这些特定于个体的参数估计值与成本数据结合起来,以分析个性化护理的成本效益,并在乳腺癌术后随访的情况下展示我们的方法治疗。结果:我们发现,除乳腺癌治疗随访的两个属性外,所有其他方面均存在明显的偏好异质性,与当前的标准化计划相比,完全定制的护理计划可带来更高的效用和更低的成本。与单一替代方案相比,完全定制的护理方案具有更高的收益和更高的成本。因此,医疗保健决策者必须判断将资源用于定制护理是否具有成本效益。结论:决策者在考虑实施定制的医疗保健计划时应考虑使用从我们的方法学方法中获得的结果,因为这可能有助于找到节省成本和提高患者满意度的方法。

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