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A state-dependent Riccati equation-based estimator approach for HIV feedback control

机译:基于状态的Riccati方程的HIV反馈控制估计器方法

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摘要

We consider optimal dynamic multidrug therapies for human immunodeficiency virus (HIV) type 1 infection. In this context, we describe an optimal tracking problem attempting to drive the states of the system to a stationary state in which the viral load is low and the immune response is strong. We consider optimal feedback control with full-state as well as with partial-state measurements. In the case of partial-state measurement, a state estimator is constructed based on viral load and T-cell count measurements. We demonstrate by numerical simulations that by anticipation of and response to the disease progression, the dynamic multidrug strategy reduces the viral load, increases the CD4+ T-cell count and improves the immune response.
机译:我们考虑对人类免疫缺陷病毒(HIV)1型感染的最佳动态多药疗法。在这种情况下,我们描述了一个最佳跟踪问题,该问题试图将系统状态驱动到病毒载量低且免疫反应强的稳态。我们考虑具有全状态和部分状态测量的最佳反馈控制。在部分状态测量的情况下,基于病毒载量和T细胞计数测量来构建状态估计器。我们通过数值模拟证明,通过对疾病进展的预期和响应,动态多药策略可降低病毒载量,增加CD4 + T细胞计数并改善免疫反应。

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