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Adaptive soft-input soft-output algorithms for iterative detection with parametric uncertainty

机译:具有参数不确定性的迭代检测的自适应软输入软输出算法

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摘要

The soft-input soft-output (SISO) module is the basic building block for established iterative detection (ID) algorithms for a system consisting of a network of finite state machines. The problem of performing ID for systems having parametric uncertainty has received relatively little attention in the open literature. Previously proposed adaptive SISO (A-SISO) algorithms are either based on an oversimplified channel model, or have a complexity that grows exponentially with the observation length N (or the smoothing lag D). In this paper, the exact expressions for the soft metrics in the presence of parametric uncertainty modeled as a Gauss-Markov process are derived in a novel way that enables the decoupling of complexity and observation length. Starting from these expressions, a family of suboptimal (practical) algorithms is motivated, based on forward/backward adaptive processing with linear complexity in N. Previously proposed A-SISO algorithms, as well as existing adaptive hard decision algorithms are interpreted as special cases within this framework. Using a representative application-joint iterative equalization-decoding for trellis-based codes over frequency-selective channels-several design options are compared and the impact of parametric uncertainty on previously established results for ID with perfect channel state information is assessed.
机译:软输入软输出(SISO)模块是用于建立由有限状态机网络组成的系统的迭代检测(ID)算法的基本构建块。对于具有参数不确定性的系统执行ID的问题在公开文献中很少受到关注。先前提出的自适应SISO(A-SISO)算法要么基于过于简化的信道模型,要么具有随着观察长度N(或平滑滞后D)而呈指数增长的复杂度。在本文中,以一种新颖的方式推导了在存在以高斯-马尔可夫过程为模型的参数不确定性的情况下软度量的精确表达式,该方法使得复杂度和观测长度能够解耦。从这些表达式开始,基于在N中具有线性复杂度的前向/后向自适应处理,激发了一系列次优(实用)算法。以前提出的A-SISO算法以及现有的自适应硬决策算法被解释为这个框架。使用典型的联合联合迭代均衡解码技术在频率选择信道上对基于网格的代码进行比较,比较了几种设计方案,并评估了参数不确定性对先前建立的具有完善信道状态信息的ID结果的影响。

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