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Quantitative evaluation of adaptive satellite power control using Japanese rain radar data

机译:利用日本雨雷达数据对自适应卫星功率控制进行定量评估

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In order to realize future large-capacity, high-speed and highly advanced multimedia satellite communication and broadcasting systems, utilization of Ka-, Q-, V- and even W-bands radio wave is indispensable. In such radio link, performance degradation due to rain-induced attenuation and noise increase, gaseous attenuation, rain- or ice-induced depolarization and interference from other systems is expected. Above all, rain attenuation is the most significant factor for link performance. This is the reason that attenuation mitigation becomes very important. To cope with such large attenuation events, powerful attenuation mitigation technologies should be developed. Attenuation mitigation methods are roughly classified into the following three categories as shown in Table 1; Static methods such as margin increase in transmitter and receiver system. These are not suitable in the system in which large attenuation is expected. Adaptive methods such as adaptive EIRP allocation toward the area suffered from large attenuation. They are effective in large attenuation case within a limit of total resource capability such as satellite total power. Diversity methods such as site- and time-diversity. They prepare several redundant links which have low attenuation correlation and adopt the best performance link selectively.
机译:为了实现未来的大容量,高速和高度先进的多媒体卫星通信和广播系统,必须使用Ka,Q,V甚至W波段无线电波。在这样的无线电链路中,由于雨引起的衰减和噪声增加,气体衰减,雨或冰引起的去极化以及来自其他系统的干扰,导致性能下降。最重要的是,降雨衰减是影响链路性能的最重要因素。这就是减轻衰减变得非常重要的原因。为了应对如此大的衰减事件,应开发强大的衰减缓解技术。衰减缓解方法大致分为以下三类,如表1所示。静态方法,例如在发送器和接收器系统中增加余量。这些不适用于需要大衰减的系统。诸如针对该区域的自适应EIRP分配之类的自适应方法遭受了较大的衰减。它们在诸如卫星总功率之类的总资源能力限制内的大衰减情况下有效。站点和时间多样性等多样性方法。他们准备了几个衰减相关性较低的冗余链路,并有选择地采用了性能最佳的链路。

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