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Semi-adaptive beamforming for OFDM based hybrid terrestrial-satellite mobile system

机译:基于OFDm的混合地面卫星移动系统的半自适应波束形成

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摘要

Adaptive interference mitigation requires significant resources due to recursive processing. Specific to satellite systems, interference mitigation by employing adaptive beamforming at the gateway or at the satellite both have associated problems. While ground based beamforming reduces the satellite payload complexity, it results in added feeder link bandwidth requirements, higher gateway complexity and suffers from feeder link channel degradations. On the other hand, employing adaptive beamforming onboard the satellite gives more flexibility in case of variation in traffic dynamics and also for changing of beam patterns. However, these advantages come at the cost of additional complexity at the satellite. In pursuit of retaining the benefits of onboard beamforming and to reduce the complexity associated with adaptive processing, we here propose a novel semi-adaptive beamformer for a Hybrid Terrestrial-Satellite Mobile System. The proposed algorithm is a dual form of beamforming that enables adaptive and non-adaptive processing to coexist via a robust gradient based switching mechanism. We present a detailed complexity analysis of the proposed algorithm and derive bounds associated with its power requirements. In the scenarios studied, results show that the proposed algorithm consumes up to 98% less filter computing power as compared to full-adaptive case without compromising on system performance.
机译:自适应干扰缓解由于递归处理而需要大量资源。特定于卫星系统,通过在网关或卫星处采用自适应波束成形来减轻干扰都具有相关的问题。虽然基于地面的波束成形降低了卫星有效载荷的复杂性,但它导致了对馈线链路带宽的增加要求,更高的网关复杂性,并且遭受了馈线链路信道性能下降的困扰。另一方面,在交通动态变化的情况下以及在改变波束方向图的情况下,在卫星上采用自适应波束成形可提供更大的灵活性。但是,这些优点是以卫星的额外复杂性为代价的。为了保持机载波束成形的优势并减少与自适应处理相关的复杂性,我们在此提出一种用于混合地面卫星移动系统的新型半自适应波束成形器。所提出的算法是波束成形的双重形式,其使得自适应和非自适应处理能够通过基于鲁棒梯度的切换机制而共存。我们对提出的算法进行了详细的复杂性分析,并推导了与其功率要求相关的界限。在所研究的场景中,结果表明,与全自适应情况相比,所提出的算法消耗的滤波器计算能力最多降低98%,而不会影响系统性能。

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