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Sneak Path Free Reconfiguration of Via-switch Crossbars Based FPGA

机译:基于通道交叉开关的FPGA的无路径重构

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FPGA that utilizes via-switches, which are a kind of nonvolatile resistive RAMs, for crossbar implementation is attracting attention due to higher integration density and performance. However, programming via-switches arbitrarily in a crossbar is not trivial since a programming current must be provided through signal wires that are shared by multiple via-switches. Consequently, depending on the previous programming status in sequential programming, unintentional switch programming may occur due to signal detour, which is called sneak path problem. This problem interferes the reconfiguration of via-switch FPGA, and hence countermeasures for sneak path problem are indispensable. This paper identifies the circuit status that causes sneak path problem and proposes a sneak path avoidance method that gives sneak path free programming order of via-switches in a crossbar. We prove that sneak path free programming order necessarily exists for arbitrary on-off patterns in a crossbar as long as no loops exist, and also validate the proof and the proposed method with simulation-based evaluation. Thanks to the proposed method, any practical configurations of via-switch FPGA can be successfully programmed without sneak path problem.
机译:利用通孔开关(一种非易失性电阻RAM)进行交叉开关的FPGA由于更高的集成密度和性能而备受关注。但是,在交叉开关中任意编程通孔开关并非易事,因为必须通过多个通孔开关共享的信号线提供编程电流。因此,取决于顺序编程中先前的编程状态,由于信号de回可能会发生无意识的开关编程,这被称为潜行路径问题。这个问题干扰了通孔开关FPGA的重新配置,因此针对潜行路径问题的对策是必不可少的。本文确定了引起潜行路径问题的电路状态,并提出了一种潜行路径避免方法,该方法给出了交叉开关中通孔开关的潜行路径自由编程顺序。我们证明了只要不存在循环,交叉开关中任意开关模式就必定存在偷偷摸摸的自由编程顺序,并通过基于仿真的评估来验证证明和所提出的方法。由于所提出的方法,通孔开关FPGA的任何实际配置都可以成功编程,而不会出现潜行路径问题。

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