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A Bayesian Approach for Adaptively Modulated Signals Recognition in Next-Generation Communications

机译:下一代通信中自适应调制信号识别的贝叶斯方法

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By promoting spectrum efficiency and transmission reliability, link adaptation (e.g., adaptive modulation) is one of the enabling technologies for next-generation 5G communications. In this paper, we investigate the recognition of adaptively modulated signals, which remains still as an unexploited area as far as we are aware, especially in the presence of time-varying fading channels. A unified model, relying on the dynamic state-space approach, is formulated, which thoroughly characterizes the coupling relationship between two hidden states, i.e., unknown modulation schemes and fading channels. In contrast to existing schemes marginalizing directly out random fading effects, a joint estimation paradigm, which relies on the Bayesian stochastic inference and a maximum a posteriori criterion, is developed to acquire time-correlated fading states sequentially, at the same time of recognizing unknown modulation schemes. In order to alleviate the computation complexity, two simplified schemes, i.e., fading-driven and goal-oriented, are designed. It is demonstrated that, by fully exploiting the underlying dynamics of the estimated fading gain which is modeled by a discrete-states Markov chain, the recognition performance of adaptive modulations will be improved significantly. The proposed system model and a sequential estimation framework, by providing additionally the dynamic fading channels, may be of great promise to more flexible and effective link adaptations.
机译:通过提高频谱效率和传输可靠性,链路自适应(例如自适应调制)是下一代5G通信的使能技术之一。在本文中,我们研究了自适应调制信号的识别,据我们所知,自适应调制信号仍然是一个未被利用的区域,尤其是在时变衰落信道存在的情况下。制定了一个依靠动态状态空间方法的统一模型,该模型彻底刻画了两个隐藏状态之间的耦合关系,即未知的调制方案和衰落信道。与直接边缘化随机衰落效应的现有方案相比,基于贝叶斯随机推断和最大后验准则的联合估计范式被开发出来,以便在识别未知调制的同时顺序获取时间相关的衰落状态。计划。为了减轻计算复杂度,设计了两种简化方案,即,衰落驱动和面向目标。结果表明,通过充分利用由离散状态马尔可夫链建模的估计衰落增益的基础动态,自适应调制的识别性能将得到显着改善。通过另外提供动态衰落信道,所提出的系统模型和顺序估计框架可能对更灵活和有效的链路适配具有很大的希望。

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