标题: | 基于多级树状结构之球状解码器实现 Implementation of K-Best sphere decoder based on multistage tree structure |
作者: | 黄致惟 董兰荣 电控工程研究所 |
关键字: | 多重输入输出;最大概似;球状解码器;MIMO;Maximum-Likelihood;Sphere-decode |
公开日期: | 2007 |
摘要: | 在多重输入输出(MIMO)的通讯系统中,最大概似(ML)侦测具有相当突出的性能表现。但是最大概似侦测的主要缺点在于计算复杂度随着天线数量与调变阶数的递增而指数增加。因此我们考虑以树状搜寻为基础的 K-Best 演算法。K-Best 演算法的效能接近最大概似侦测,但计算复杂度却比最大概似侦测低。本篇论文提出了多级 K-Best 演算法应用在多重输入输出系统。在所提出的方法中,主要是将高阶星状点分解成许多低阶星状点,并且应用有顺序性地侦测低阶星状点的技巧来降低最大概似解错失的机率。实验结果发现多级 K-Best 演算法相较于传统 K-Best 演算法不仅拥有较低的计算复杂度同时也能够达到几乎相同的效能。同时在本篇论文的最后也以目前数位积体电路技术来实现多级 K-Best 侦测器的架构。 In multiple-input multiple-output (MIMO) communication systems Maximum- Likelihood detection is the preferred detection method which achieves the optimal performance. However, the main drawback of Maximum-Likelihood detection is that it suffers from exponential computational complexity against the number of antennas and signal modulation methods. Thus we consider K-Best algorithm based on the breadth-first tree search. The K-Best algorithm provides near-ML performance while its computational complexity is reduced compared to the Maximum-Likelihood detection. This thesis proposes the multistage K-Best algorithm in MIMO systems. In the proposed method, we decompose higher order constellation into several lower order constellations and apply ordering of lower order constellation to reduce the probability of missing the Maximum-Likelihood solution. It can be seen that the multistage K-Best algorithm and conventional K-Best algorithm achieve almost identical PER performance at the same K value. However, the multistage K-Best algorithm is shown to achieve such performance with a significantly lower computational complexity compared to the conventional K-Best algorithm. At the same time the VLSI architecture for the implementation of the multistage K-Best algorithm based on 0.18-μm technology is presented. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT009412579 http://hdl.handle.net/11536/80712 |
显示于类别: | Thesis |
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