Evaluating after-sales service units by developing inverse network data envelopment analysis model

Reza Farzipoor Saen*, Seyed Shahrooz Seyedi Hosseini Nia

*المؤلف المقابل لهذا العمل

نتاج البحث: المساهمة في مجلةArticleمراجعة النظراء

8 اقتباسات (Scopus)

ملخص

Purpose: The purpose of this paper is to develop an inverse network data envelopment analysis (INDEA) model to solve resource allocation problems. Design/methodology/approach: The authors estimate inputs’ variations based on outputs so that the efficiencies of decision-making unit under evaluation (DMUo) and other decision-making units (DMUs) are constant. Findings: The new INDEA model is developed to allocate resources such that inputs are not increased while efficiency scores of all DMUs remain constant. Furthermore, the authors obtain new combinations of inputs and outputs, together with a growth in efficiency score of DMUo such that efficiency scores of other DMUs are not changed. A case study is provided. Originality/value: This paper proposes INDEA model to estimate inputs (outputs) without changing efficiency scores of DMUs.

اللغة الأصليةEnglish
الصفحات (من إلى)695-707
عدد الصفحات13
دوريةBenchmarking
مستوى الصوت27
رقم الإصدار2
المعرِّفات الرقمية للأشياء
حالة النشرPublished - مارس 21 2020

ASJC Scopus subject areas

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