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Input/output weight restrictions, CSOI constraint and efficiency improvement

机译:输入/输出权重限制,CSOI约束和效率提高

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Purpose - The purpose of this paper is to develop data envelopment analysis (DEA) models and algorithms for efficiency improvement when the inputs and output weights are restricted and there is fixed availability of inputs in the system Design/methodology/approach - Limitation on availability of inputs is represented in the form of constant sum of inputs (CSOI) constraint The amount of excess input of an inefficient decision-making unit (DMU) is redistributed among other DMUs in such a way so that there is no reduction in their efficiency. DEA models have been developed to design the optimum strategy to reallocate the excess input Findings - The authors have developed the method for reallocating the excess input among DMUs while under CSOI constraint and parameter weight restrictions. It has been shown that in this work to improve the efficiency of an inefficient DMU one needs the cooperation of selected few DMUs. The working of the models and results have been shown through a case study on carbon dioxide emissions of 32 countries. Research limitations/implications - The limitation of the study is that only one DMU can expect to benefit from the application of these methods at any given time. Practical implications - Results of the paper are useful in situations when decision maker is exploring the possibility of transferring the excess resources from underperforming DMUs to the other DMUs to improve the performance. Originality/value - This strategy of reallocation of excess input will be very useful in situations when decision maker is exploring the possibility of transferring the excess resources from underperforming DMUs to the other DMUs to improve the performance. Unlike the existing works on efficiency improvement under CSOI, this work seeks to address the issue of efficiency improvement when the input/output parameter weights are also restricted.
机译:目的-本文的目的是开发数据包络分析(DEA)模型和算法,以在输入和输出权重受到限制且系统中输入固定可用的情况下提高效率。设计/方法/方法-限制可用性输入以恒定的输入总和(CSOI)约束的形式表示。效率低下的决策单元(DMU)的过量输入的数量会在其他DMU之间重新分配,这样就不会降低其效率。已经开发出DEA模型以设计用于重新分配过量输入的最佳策略。结果-作者开发了在CSOI约束和参数权重约束下在DMU之间重新分配过量输入的方法。已经表明,在这项工作中,为了提高效率低下的DMU的效率,需要选定的少数DMU的配合。通过对32个国家的二氧化碳排放进行案例研究,显示了模型的工作和结果。研究的局限性/含义-研究的局限性在于,在任何给定时间,只有一个DMU可以期望从这些方法的应用中受益。实际意义-当决策者正在探索将多余的资源从表现不佳的DMU转移到其他DMU以改善性能时,本文的结果很有用。原创性/价值-当决策者正在探索将多余的资源从表现不佳的DMU转移到其他DMU来改善性能的情况下,这种重新分配投入的策略将非常有用。与现有的CSOI效率改进工作不同,本工作旨在解决输入/输出参数权重也受到限制的效率改进问题。

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