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An application of a semi-hidden Markov model in wireless communication systems

机译:半隐马尔可夫模型在无线通信系统中的应用

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Stochastic processes are approved presentation of real systems which its development in space or time can be supposed as random. A semi-hidden Markov model as a type of stochastic processes is a modification of hidden Markov models with states that are no longer totally unobservable and are less hidden. This mathematical model is employed for modeling data sequences with long runs, memory and statistical inertia. In this article, we investigate the theory of the semi-hidden Markov model along with its parameter estimation and order estimation methods. Moreover, the proposed model is applied to model the error traces generated by the wireless channels. A new Markov-based trace analysis algorithm is suggested to divide a non-stationary network error trace into stationary parts. By means of the best semi-hidden Markov model and fitting probability distribution, we would be able to model these parts accurately. Calculating the information measure criteria and the autocorrelation function by running the modified Baum–Welch algorithm several times help us to find the optimal order of the semi-hidden Markov model.
机译:随机过程是对真实系统的认可表示,其在空间或时间上的发展可以认为是随机的。半隐式马尔可夫模型是一种随机过程,是对隐马尔可夫模型的一种修改,其状态不再完全不可观察且被隐藏的程度也较低。该数学模型用于对具有较长运行时间,内存和统计惯量的数据序列进行建模。在本文中,我们研究了半隐马尔可夫模型的理论及其参数估计和阶数估计方法。此外,所提出的模型被应用于对由无线信道产生的错误轨迹进行建模。提出了一种新的基于马尔科夫的跟踪分析算法,将非平稳网络错误跟踪分为固定部分。借助于最佳的半隐式马尔可夫模型和拟合概率分布,我们将能够对这些零件进行精确建模。通过多次运行改进的Baum-Welch算法来计算信息度量标准和自相关函数,有助于我们找到半隐式马尔可夫模型的最优阶。

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