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Multi-domain, Advisory Computing System in Continuous Manufacturing Processes

机译:连续制造过程中的多域,咨询计算系统

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Many decisions that must be made during the production process mean that limited human perception is not able to meet the growing requirements of keeping the parameters and constantly striving to increase the efficiency of current production lines. The main challenge is also the continuous increase of awareness about the process and the possibility of its modernization. This forces the expansion of the production with new elements, which are not directly related to the production line itself. And this in turn forces the expansion of knowledge, for example, cooperation with new elements. The theoretical knowledge that each employee must have from every issue going to be very general without going deeper into details. Simultaneous control of all mutual elements with the same coincidence becomes impossible. Traditional methods of failure analysis and finding reasons for its occurrence are inefficient and ineffective. This paper is attempting to create a system topology for all subsystems. A comprehensive production management system, its efficiency and failure predictive system will be discussed. The system should integrate and correlate many different databases, which are conducted according to different standards. This causes a necessity of choosing a method for seeking solutions for problems in such a large stored database. "Big data" which is popular today, is using neural networks which not always is the best choice. Especially when we don't have enough knowledge about technology and connections inside the process. Maximum use of expert knowledge, experience of employees, data acquisition and usage of unfiltered data will be presented in this paper.
机译:在生产过程中必须制造的许多决定意味着有限的人类感知无法满足保持参数的日益增长的要求,并不断努力提高当前生产线的效率。主要挑战也是对过程的不断提高以及其现代化的可能性。这迫使生产具有新的元素的生产,这些元素与生产线本身并不直接相关。这反过来迫使知识的扩展,例如与新元素的合作。每个员工必须从每个问题都必须具有非常普遍的理论知识,而不会深入了解细节。同时控制具有相同巧合的所有相互元素变得不可能。传统的失效方法分析和发现其发生原因效率低下,无效。本文试图为所有子系统创建系统拓扑。将讨论全面的生产管理系统,其效率和故障预测系统。该系统应集成和关联许多不同的数据库,这些数据库根据不同的标准进行。这导致需要选择用于在这种大存储的数据库中寻找问题的方法的必要性。今天很受欢迎的“大数据”正在使用并不总是最好的选择。特别是当我们没有足够的技术和过程内的连接知识时。本文介绍了最大限度地利用专家知识,员工经验,数据收购和使用情况的使用。

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