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Hidden Markov model parameters estimation with independent multiple observations and inequality constraints

机译:具有独立多次观测和不等式约束的隐马尔可夫模型参数估计

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摘要

In this study, the authors focus on hidden Markov model (HMM) parameters estimation with independent multiple observations and non-linear inequality constraints. The parameters estimation process is divided into four steps: initialisation, parameters pre-estimation, parameters re-estimation and termination. The pre-estimation results are used to approximate non-linear inequality constraints to linear inequality constraints. In parameters re-estimation step, the active-set optimisation is combined with the expectation maximisation (EM) algorithm in M-step and the active set-based EM algorithm is proposed to re-estimate HMM parameters when inequality constraints are not satisfied in pre-estimation. An auxiliary function is devised for reconstructing the optimisation objective function and the convergence of the proposed algorithm is also demonstrated. Simulation results indicate that the proposed algorithm provides better performance by modifying the random error of observation data appropriately and it is powerful for industry process fault diagnosis.
机译:在这项研究中,作者专注于具有独立多次观测和非线性不等式约束的隐马尔可夫模型(HMM)参数估计。参数估计过程分为四个步骤:初始化,参数预估计,参数重新估计和终止。预先估计结果用于将非线性不等式约束近似为线性不等式约束。在参数重新估计步骤中,将活动集优化与期望值最大化(EM)算法结合在M步中,并提出了基于活动集的EM算法,以在不等式约束不满足条件下重新估计HMM参数。 -估计。设计了辅助函数来重构优化目标函数,并证明了算法的收敛性。仿真结果表明,该算法通过适当修改观测数据的随机误差,可以提供较好的性能,对工业过程故障的诊断具有重要的意义。

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