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Exploiting generalized de-Bruijn/Kautz topologies for flexible iterative channel code decoder architectures

机译:利用通用的de-Bruijn / Kautz拓扑结构实现灵活的迭代信道代码解码器体系结构

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摘要

Modern iterative channel code decoder architectures have tight constrains on the throughput but require flexibility to support different modes and standards. Unfortunately, flexibility often comes at the expense of increasing the number of clock cycles required to complete the decoding of a data-frame, thus reducing the sustained throughput. The Network- on-Chip (NoC) paradigm is an interesting option to achieve flexibility, but several design choices, including the topology and the routing algorithm, can affect the decoder throughput. In this work logarithmic diameter topologies, in particular generalized de-Bruijn and Kautz topologies, are addressed as possible solutions to achieve both flexible and high throughput architectures for iterative channel code decoding. In particular, this work shows that the optimal shortest-path routing algorithm for these topologies, that is still available in the open literature, can be efficiently implemented resorting to a very simple circuit. Experimental results show that the proposed architecture features a reduction of about 14% and 10% for area and power consumption respectively, with respect to a previous shortest-path routing-table-based design
机译:现代的迭代信道代码解码器体系结构对吞吐量具有严格的约束,但是需要灵活性来支持不同的模式和标准。不幸的是,灵活性常常以增加完成数据帧的解码所需的时钟周期数为代价,从而降低了持续的吞吐量。片上网络(NoC)范例是实现灵活性的一种有趣选择,但是包括拓扑和路由算法在内的几种设计选择可能会影响解码器的吞吐量。在这项工作中,对数直径拓扑,特别是广义的de-Bruijn和Kautz拓扑,被作为可能的解决方案来解决,以实现灵活和高吞吐量的体系结构,以进行迭代信道代码解码。特别地,这项工作表明,在开放文献中仍然可以找到针对这些拓扑的最优最短路径路由算法,而这可以通过非常简单的电路来有效地实现。实验结果表明,相对于以前的基于最短路径路由表的设计,该架构的面积和功耗分别降低了约14%和10%

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