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Dynamic Multiple Fault Diagnosis Based on HMM and QPSO

机译:基于HMM和QPSO的动态多故障诊断

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摘要

By analyzing the problems existed about dynamic multiple fault diagnosis (DMFD),a Hidden Markov Model (HMM) and a formal definition of DMFD are introduced to overcome the invalidation of static multiple fault diagnosis model in some situations. The optimal solution of the objective function is a traditional set covering problem,which belongs to NP completeness problems. This paper decomposes original DMFD problem into several separable subproblems,and solves each of them with binary particle swarm optimization algorithm. The optimal speed is higher than existing methods,and the overall computational complexity and time are reduced,thus the optimal results are also better.
机译:通过分析动态多故障诊断(DMFD)存在的问题,引入隐马尔可夫模型(HMM)和DMFD的形式定义,克服了静态多故障诊断模型在某些情况下的无效性。目标函数的最优解是传统的集合覆盖问题,属于NP完备性问题。本文将原始的DMFD问题分解为几个可分离的子问题,并用二进制粒子群算法对其进行求解。最优速度高于现有方法,降低了整体计算复杂度和时间,因此最优结果也更好。

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