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Big data fueled process management of supply risks: Sensing, prediction, evaluation and mitigation

机译:大数据推动了供应风险的流程管理:传感,预测,评估和缓解

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Supplier risks jeopardize on-time or complete delivery of supply in a supply chain. Traditionally, a company can merely do an ex-post evaluation of a supplier's performance, and handles emergencies in a reactive rather than a proactive way. We propose an agile process management framework to monitor and manage supply risks. The innovation is two fold - Firstly, a business process is established to make sure that the right data, the right insights, and the right decision-makers are in place at the right time. Secondly, we install a big data analytics component, a simulation component and an optimization component into the business process. The big data analytics component senses and predicts supply disruptions with internally (operational) and external (environmental) data. The simulation component supports risk evaluation to convert predicted risk severity to key performance indices (KPIs) such as cost and stockout percentage. The optimization component assists the risk-hedging decision-making.
机译:供应商风险危及供应链中按时或完全交付供应的风险。传统上,公司只能对供应商的绩效进行事后评估,并以被动而不是主动的方式处理紧急情况。我们提出了一个敏捷的过程管理框架来监视和管理供应风险。创新有两个方面-首先,建立业务流程以确保在正确的时间正确的数据,正确的见解和正确的决策者。其次,我们在业务流程中安装了大数据分析组件,模拟组件和优化组件。大数据分析组件可感知并预测内部(运营)和外部(环境)数据的供应中断。模拟组件支持风险评估,以将预测的风险严重程度转换为关键绩效指标(KPI),例如成本和缺货百分比。优化组件有助于风险对冲决策。

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