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Reconstruction of constellation labeling with convolutional coded data

机译:卷积编码数据重构星座标签

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摘要

We propose here an algorithm for reconstructing an unknown constellation labeling. Our method assumes that the underlying error correcting code is a convolutional code. We define the notions of linear and affine equivalence among labelings. Those notions will help us to reduce the cost of the search. We show that the search is intractable with our method as the constellation size grows. In that case we restrict the search to Gray labelings. Our algorithm adapts very well to that constraint and allows an easy reconstruction up to a constellation of 256 points.
机译:我们在这里提出一种用于重构未知星座标记的算法。我们的方法假定基础纠错码是卷积码。我们定义标签之间线性和仿射等价的概念。这些概念将帮助我们降低搜索成本。我们证明,随着星座图大小的增长,使用我们的方法进行搜索是棘手的。在这种情况下,我们将搜索限制为灰色标签。我们的算法很好地适应了该约束,并允许轻松地重建高达256点的星座。

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