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A Method for Forecasting the Demand for Pharmaceutical Products in a Distributed Pharmacy Network Based on an Integrated Approach Using Fuzzy Logic and Neural Networks

机译:一种基于模糊逻辑和神经网络的综合方法预测分布式药房网络中药品需求的方法

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This article discusses the use of fuzzy logic and a neural network to predict the demand for pharmaceutical products in a distributed network, in conditions of insufficient information, a large assortment and the influence of risk factors. A comprehensive approach to solving forecasting problems is proposed using: the theory of fuzzy logic - when forecasting emerging and unmet needs and a neural network - if there is a lot of retrospective information about the actual sale of drugs and drugs. Using this approach to solve the problems of forecasting demand allows you to get statistics and experience. The general algorithm, mathematical interpretation and examples of forecasting the demand for pharmaceutical products in the face of uncertainty of information are given, and the general structure of the system for forecasting the demand for drugs is described.
机译:本文讨论了模糊逻辑和神经网络的使用,以预测分布式网络中对药品的需求,在信息不足,各种各样的分类和风险因素的影响方面。 提出了一种解决预测问题的综合方法:模糊逻辑理论 - 预测新兴和未满足的需求和神经网络 - 如果有很多关于药物和药物销售的回顾信息。 使用这种方法来解决预测需求的问题允许您获得统计和经验。 给出了一般算法,数学解释和预测药物产品需求的例子,在面对信息的不确定度下,描述了用于预测药物需求的系统的一般结构。

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