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Patient condition-based medicine inventory management in healthcare systems

机译:病人要药库存管理在医疗保健系统

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摘要

Existing inventory models for medicines in the healthcare domain presume demand as a random variable independent of any environmental factors. Conversely, various randomly varying factors, such as changing patient condition, uncertain reaction of the patient to treatment, uncertain length of stay and transition from one type of hospital care unit to another at different stages of treatment, may have a significant impact on the demand of medicines. In dealing with such a problem, a Markov Decision Process model is developed for determining the optimal inventory control policy for medicines under stochastic and non-stationary demand scenario. The required data are collected from a multispecialty hospital situated in urban India. Solving the problem by a stochastic dynamic programming approach, the results as obtained demonstrate that the proposed inventory model using the knowledge of patient condition-based medication demand characteristics has a significantly lower total inventory-related cost than those based on historical daily demand without consideration of patient condition characteristics. This modelling may help optimize and support the functioning of any hospital system more effectively.
机译:现有库存模型的药物医疗领域认为需求是随机的变量独立于任何环境的因素。因素,如改变病人的条件,不确定的反应病人的治疗,不确定的长度保持和过渡另一个类型的医院病房不同阶段的治疗,可能有一个对药品的需求产生重大影响。处理这样的问题,一个马尔可夫的决定开发过程模型来决定的最优库存控制策略的药物在随机和非平稳需求场景。multispecialty医院位于印度城市。解决问题的随机动态编程的方法,获得的结果证明提出的库存模型使用病人的知识状态有一个药物的需求特征显著降低总库存相关成本比基于历史的日常需求不考虑病人的状况特征。和支持任何医院的功能系统更有效。

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