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Soft–Input Soft–Output Single Tree-Search Sphere Decoding

机译:软输入软输出单树搜索球解码

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Soft–input soft–output (SISO) detection algorithms form the basis for iterative decoding. The computational complexity of SISO detection often poses significant challenges for practical receiver implementations, in particular in the context of multiple–input multiple–output (MIMO) wireless communication systems. In this paper, we present a low-complexity SISO sphere-decoding algorithm, based on the single tree-search paradigm proposed originally for soft–output MIMO detection in Studer (“Soft-output sphere decoding: Algorithms and VLSI implementation,” IEEE J. Sel. Areas Commun., vol. 26, no. 2, pp. 290–300, Feb. 2008). The new algorithm incorporates clipping of the extrinsic log-likelihood ratios (LLRs) into the tree-search, which results in significant complexity savings and allows to cover a large performance/complexity tradeoff region by adjusting a single parameter. Furthermore, we propose a new method for correcting approximate LLRs—resulting from sub-optimal detectors—which (often significantly) improves detection performance at low additional computational complexity.
机译:软输入软输出(SISO)检测算法构成了迭代解码的基础。 SISO检测的计算复杂性通常对实际的接收器实施构成重大挑战,尤其是在多输入多输出(MIMO)无线通信系统的情况下。在本文中,我们提出了一种低复杂度的SISO球解码算法,该算法基于最初为Studer中的软输出MIMO检测而提出的单树搜索范例(“软输出球解码:算法和VLSI实现”,IEEE J (Sel。Areas Commun。,第26卷,第2期,第290-300页,2008年2月)。新算法将外部对数似然比(LLR)的裁剪合并到树形搜索中,从而显着节省了复杂性,并可以通过调整单个参数来覆盖较大的性能/复杂性折衷区域。此外,我们提出了一种用于校正近似LLR(由次优检测器产生)的新方法,该方法(通常显着)可在较低的附加计算复杂度下提高检测性能。

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