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Enhanced DEA Model with Undesirable Output and Interval Data for Rice Growing Farmers Performance Assessment

机译:增强DEA模型具有不良输出和稻米生长农民性能评估的间隔数据

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Agricultural production process typically produces two types of outputs which are economic desirable as well as environmentally undesirable outputs (such as greenhouse gas emission, nitrate leaching, effects to human and organisms and water pollution). In efficiency analysis, this undesirable outputs cannot be ignored and need to be included in order to obtain the actual estimation of firms efficiency. Additionally, climatic factors as well as data uncertainty can significantly affect the efficiency analysis. There are a number of approaches that has been proposed in DEA literature to account for undesirable outputs. Many researchers has pointed that directional distance function (DDF) approach is the best as it allows for simultaneous increase in desirable outputs and reduction of undesirable outputs. Additionally, it has been found that interval data approach is the most suitable to account for data uncertainty as it is much simpler to model and need less information regarding its distribution and membership function. In this paper, an enhanced DEA model based on DDF approach that considers undesirable outputs as well as climatic factors and interval data is proposed. This model will be used to determine the efficiency of rice farmers who produces undesirable outputs and operates under uncertainty. It is hoped that the proposed model will provide a better estimate of rice farmers' efficiency.
机译:农业生产过程通常生产两种类型的输出,这些输出是经济的理想和环境不良产出(如温室气体排放,硝酸盐浸出,对人类和生物和水污染的影响)。在效率分析中,不需要忽略这种不良输出,并且需要包括在规定公司效率的实际估算中。此外,气候因素以及数据不确定性会显着影响效率分析。 DEA文献中提出了许多方法,以解释不良产出。许多研究人员指出,定向距离功能(DDF)方法是最好的,因为它允许同时增加所需的输出和减少不期望的输出。此外,已经发现,间隔数据方法是最适合于用于数据不确定性的最适合,因为它更简单到模型,并且需要有关其分发和隶属函数的信息。本文提出了一种基于DDF方法的增强DEA模型,提出了不希望的输出以及气候因子和间隔数据。该模型将用于确定产生不良输出并在不确定性下运作的稻米农民的效率。希望拟议的模型将提供更好地估计水稻农民的效率。

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