Framework for prioritizing infrastructure user expectations using Quality Function Deployment (QFD)

Aman A. Bolar, Solomon Tesfamariam, Rehan Sadiq
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引用次数: 56

Abstract

Customer involvement in infrastructure maintenance activities is a complex process due to various decision-making parameters surrounding maintenance. Compared to manufacturing and other disciplines where QFD is widely used, expectations of the infrastructure user as a customer are truly dynamic given the changing economic conditions, technologies, environmental regulations, etc. While such dynamic or changing customer expectations can be addressed by repeated surveys and constant communication, having indicators to predict customer response would be a valuable tool and aid the QFD decision-making process. In this study, a framework that utilizes hidden Markov model (HMM) is proposed for evaluating customer expectation by using probabilities of focus areas that are of interest to the infrastructure user as hidden parameters. The focus areas are based on sustainability parameters and include economic, social, technological, maintenance efficiency, safety and environmental conditions. Probabilities that represent the probability of transition from current state (of the focus area) to next possible state were generated based on expert opinion of the authors. Using the 2005 customer survey by California Transportation, a case study is presented in order to demonstrate the application which concludes that the proposed methodology can be successfully implemented for infrastructure maintenance.

使用质量功能部署(QFD)对基础设施用户期望进行优先排序的框架
由于围绕维护的各种决策参数,客户参与基础设施维护活动是一个复杂的过程。与广泛使用QFD的制造业和其他学科相比,作为客户的基础设施用户的期望是真正动态的,因为经济条件、技术、环境法规等都在不断变化。虽然这种动态或不断变化的客户期望可以通过重复调查和持续沟通来解决,但拥有预测客户反应的指标将是一个有价值的工具,并有助于QFD决策过程。在本研究中,提出了一个利用隐马尔可夫模型(HMM)的框架,通过使用基础设施用户感兴趣的焦点领域的概率作为隐藏参数来评估客户期望。重点领域基于可持续性参数,包括经济、社会、技术、维护效率、安全和环境条件。根据作者的专家意见,生成了表示从当前状态(焦点区域)过渡到下一个可能状态的概率。利用2005年加州交通运输公司的客户调查,提出了一个案例研究,以展示应用,结论是所提出的方法可以成功地实施基础设施维护。
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