首页> 外文会议>31st AIAA international communications satellite systems conference >Design of a hybrid ground/space architecture based on individual on-board feed power optimization for the forward link of a multi-beam broadband satellite system
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Design of a hybrid ground/space architecture based on individual on-board feed power optimization for the forward link of a multi-beam broadband satellite system

机译:基于单独机载馈电功率优化的多波束宽带卫星系统前向链路混合地面/空间架构设计

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The multi-beam broadband satellite systems have been deployed to provide broadband services to their under-served geo-graphical area. In one hand, with assuming full frequency reuse among beams the resulting interference requires either a pre- or post-cancellation process. On other hand, by increasing the number of beams, the ground and space units must employ an extensive communication effort on the feeder link (i.e. the link between gateway and satellite) to exchange all of the feed signals, yet maintaining a low processing responsibility to the payload. Since the feeder link spectral resources are scarce, it is desirable to use an on-board beam generation process which leads to a significant feeder link bandwidth reduction. In this context, a hybrid space/ground processing (i.e. both the gateway and the satellite digitally process the transmitted/received data) shall be employed. This work presents a design of the corresponding on-board beam generation process and precoding in the forward link (i.e. from gateway to users in coverage area) of satellite system. In order to effective limit inter-beam interference, this work also predicts a zero forcing precoding technique taking into account the per feed power constraint for practical issues. To this end, we formulate the precoding problem with considering individual on-board feed in order to efficient and more realistic use of payload power resources. This is done by considering the zero forcing and its relation to the theory of generalized inverse in the linear algebra.
机译:已部署了多波束宽带卫星系统,以为其服务不足的地理区域提供宽带服务。一方面,假设波束之间具有完全的频率重用,则产生的干扰需要取消之前或之后的过程。另一方面,通过增加波束的数量,地面和空间单位必须在馈线链路(即网关和卫星之间的链路)上花费大量的通信精力来交换所有馈线信号,但要保持较低的处理责任。有效载荷。由于馈线链路频谱资源稀缺,因此希望使用车载波束生成过程,这会导致馈线链路带宽显着降低。在这种情况下,应采用混合空间/地面处理(即网关和卫星都以数​​字方式处理发送/接收的数据)。这项工作介绍了卫星系统前向链路(即从网关到覆盖区域的用户)中相应的机载波束生成过程和预编码的设计。为了有效地限制波束间干扰,这项工作还考虑了实际问题中的每个馈电功率约束,预测了一种零强制预编码技术。为此,我们考虑单独的机载馈送来制定预编码问题,以便有效,更实际地利用有效载荷功率资源。这是通过考虑零强迫及其与线性代数中广义逆理论的关系来完成的。

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