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首页> 外文期刊>IBM Journal of Research and Development >Workforce optimization: Identification and assignment of professional workers using constraint programming
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Workforce optimization: Identification and assignment of professional workers using constraint programming

机译:劳动力优化:使用约束编程识别和分配专业工作者

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摘要

Matching highly skilled people to available positions is a high-stakes task that requires careful consideration by experienced resource managers. A wrong decision may result in significant loss of value due to under staffing, under qualification or overqualification of assigned personnel, and high turnover of poorly matched workers. While the importance of quality matching is clear, dealing with pools of hundreds of jobs and resources in a dynamic market generates a significant amount of pressure to make decisions rapidly. We present a novel solution designed to bridge the gap between the need for high-quality matches and the need for timeliness. By applying constraint programming, a subfield of artificial intelligence, we are able to deal successfully with the complex constraints encountered in the field and reach near-optimal assignments that take into account all resources and positions in the pool. The considerations include constraints on job role, skill level, geographical location, language, potential retraining, and many more. Constraints are applied at both the individual and team levels. This paper introduces the technology and then describes its use by IBM Global Services, where large numbers of service and consulting employees are considered when forming teams assigned to customer projects.
机译:使高技能人才适应可用职位是一项艰巨的任务,需要经验丰富的资源管理人员认真考虑。错误的决定可能会由于人员不足,指派人员的资格不足或资格过高以及匹配不佳的工人的高离职率而导致重大价值损失。尽管质量匹配的重要性很明显,但是在一个动态的市场中处理数百个工作和资源池会产生巨大的压力,需要迅速做出决策。我们提出了一种新颖的解决方案,旨在弥合高质量比赛需求和及时性需求之间的差距。通过应用约束编程(人工智能的一个子领域),我们能够成功处理该领域遇到的复杂约束,并获得考虑到池中所有资源和位置的接近最佳的分配。考虑因素包括工作角色,技能水平,地理位置,语言,潜在的再培训等方面的限制。约束应用于个人和团队级别。本文介绍了该技术,然后描述了IBM Global Services的技术,在组建分配给客户项目的团队时,应考虑使用大量服务和咨询员工。

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