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首页> 外文期刊>Journal of intelligent & fuzzy systems: Applications in Engineering and Technology >Research on robust recruitment optimization in interval-valued fuzzy evaluation environments
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Research on robust recruitment optimization in interval-valued fuzzy evaluation environments

机译:区间值模糊评估环境中鲁棒招聘优化研究

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摘要

A precise recruitment can improve the efficiency of human resource management and enhance the core competitiveness of enterprises. However, the information asymmetry in recruitment leads enterprises to make recruitment decisions in fuzzy evaluation environments, thus reducing the accuracy of recruitment. This paper applies a robust approach to the recruitment optimization problem in an interval-valued fuzzy evaluation environment in which the actual abilities of applicants are randomly distributed within given intervals. The objective of this paper is to establish a robust recruitment scheme with the minimal maximum regret for recruitment revenue. Both exact and heuristic algorithms are proposed to solve the problem, which is proven to be NP hard. Computational experiments are conducted to evaluate the performance of the proposed algorithms. In addition, the paper reveals the key factors that affect the ability of an enterprise to implement accurate employment schemes. Corresponding suggestions on enterprise recruitment management are also proposed.
机译:精确的招聘可以提高人力资源管理的效率,提升企业的核心竞争力。然而,招聘中的信息不对称导致企业在模糊评价环境中招募招聘决策,从而降低招聘准确性。本文适用于招聘优化问题的鲁棒方法,在间隔值模糊评价环境中,申请人的实际能力随机分布在给定间隔内。本文的目的是建立强大的招聘计划,最大限度地遗憾地招聘收入。提出了精确和启发式算法来解决问题,这被证明是努力的。进行计算实验以评估所提出的算法的性能。此外,本文揭示了影响企业实施准确就业计划的能力的关键因素。还提出了对企业招聘管理的相应建议。

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