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Kalman Filtering for Genetic Regulatory Networks with Missing Values

机译:具有遗漏值的遗传调控网络的卡尔曼滤波

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摘要

The filter problem with missing value for genetic regulation networks (GRNs) is addressed, in which the noises exist in both the state dynamics and measurement equations; furthermore, the correlation between process noise and measurement noise is also taken into consideration. In order to deal with the filter problem, a class of discrete-time GRNs with missing value, noise correlation, and time delays is established. Then a new observation model is proposed to decrease the adverse effect caused by the missing value and to decouple the correlation between process noise and measurement noise in theory. Finally, a Kalman filtering is used to estimate the states of GRNs. Meanwhile, a typical example is provided to verify the effectiveness of the proposed method, and it turns out to be the case that the concentrations of mRNA and protein could be estimated accurately.
机译:解决了遗传调节网络(GRN)缺少值的滤波器问题,其中状态动态和测量方程中都存在噪声;此外,还考虑了过程噪声与测量噪声之间的相关性。为了解决滤波器问题,建立了具有缺失值,噪声相关性和时间延迟的一类离散时间GRN。然后提出了一个新的观测模型,以减少由于缺失值引起的不利影响,并在理论上消除过程噪声与测量噪声之间的相关性。最后,使用卡尔曼滤波来估计GRN的状态。同时,提供了一个典型的例子来验证所提方法的有效性,事实证明可以准确估计mRNA和蛋白质的浓度。

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