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Modeling and Solving of Uncertain Process Abnormity Diagnosis Problem

机译:不确定过程异常诊断问题的建模与求解

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There are many uncertain factors that contribute to process faults and this make it is hard to locate the assignable causes when a process fault occurs. The fuzzy relational equation (FRE) is effective to represent the uncertain relationship between the causes and effects, but the solving difficulties greatly limit its practical utilization. In this paper, the relation between the occurrence degree of abnormal patterns and assignable causes was modeled by FRE. Considering an objective function of least distance between the occurrence degree of abnormal patterns and its assignable cause’s contribution degree determined by FRE, the FRE solution can be obtained by solving an optimization problem with a genetic algorithm (GA). Taking the previous optimization solution as the initial solution of the following run, the GA was run repeatedly. As a result, an optimal interval FRE solution was achieved. Finally, the proposed approach was validated by an application case and some simulation cases. The results show that the model and its solving method are both feasible and effective.
机译:有许多不确定因素会导致过程故障,这使得在发生过程故障时很难找到可分配的原因。模糊关系方程(FRE)可以有效地表示因果关系之间的不确定性,但求解困难极大地限制了其实际应用。在本文中,通过FRE对异常模式的发生程度与可指定原因之间的关系进行了建模。考虑由FRE确定的异常模式的发生程度与其可分配原因的贡献程度之间的最小距离的目标函数,可以通过使用遗传算法(GA)解决优化问题来获得FRE解决方案。将先前的优化解决方案作为后续运行的初始解决方案,然后重复运行GA。结果,获得了最佳间隔FRE解决方案。最后,通过一个应用案例和一些仿真案例验证了该方法的有效性。结果表明,该模型及其求解方法既可行又有效。

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