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Determination of Manufacturing Unit Root-Cause Analysis Based on Conditional Monitoring Parameters Using In-Memory Paradigm and Data-Hub Rule Based Optimization Platform

机译:基于条件监控参数的内存中范式和基于数据集线规则的优化平台确定制造单位的根本原因

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Different manufacturing plants have their disparate process of conditional monitoring for their processing units with diverse set of sensors which amounts to petabytes of data. This leads to conglomeration of problems limited not only to data management but also lack in ability to present the overall point of view of the critical observations at a real time scenario. Some of these observations impact the business revenue/cost process and due to lack of aggregation efforts, the overview is not available to the decision makers. With the intention of highlighting the critical performance factors and applied techniques we present the overall view point of a platform which will address such issues and assist decision makers with certain data points to make choices leading to profitability and sustainability of their business outlook. The platform will serve as a single point of aggregation for diversified but correlated data points and various custom data logic applied as per the business rules providing a correlation between data. This correlation will help reach an outcome where the user can trace the source of data point of the concerned manufacturing units where technical parameters can be optimized. This data flow and processing will result in root cause identification using the data hub platform and real time analytics can be made available using in-memory column store database approach.
机译:不同的制造工厂使用不同的传感器集对它们的处理单元进行不同的条件监视过程,这些传感器集的数据量达到PB。这导致问题的集合不仅限于数据管理,而且还缺乏在实时情况下呈现关键观察的整体观点的能力。其中一些观察会影响业务收入/成本过程,并且由于缺乏汇总工作,因此决策者无法使用该概述。为了突出关键的性能因素和应用技术,我们介绍了平台的总体观点,该观点将解决此类问题并协助决策者获取某些数据点,从而做出有助于其业务前景盈利和可持续发展的选择。该平台将作为单个聚合点,用于分散但相关的数据点以及根据业务规则应用的各种自定义数据逻辑,以提供数据之间的相关性。这种相关性将有助于达成一个结果,使用户可以跟踪有关制造单元的数据点的来源,在该点上可以优化技术参数。此数据流和处理将使用数据中心平台识别根本原因,并可以使用内存列存储数据库方法提供实时分析。

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