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Reduction of simultaneous-switching noise in large crossbar networks

机译:减少大型纵横制网络中的同时切换噪声

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Delta-I noise (simultaneous switching noise) poses a severe limitation on the size of the individual crosspoint chips that can be used to synthesize a large crossbar network. An architectural solution for reduction of the Delta-I noise in a crossbar network by using a one-sided crosspoint switching circuits is presented. Because of the existence of multiple switching paths between any pair of terminals to be connected, these circuits provide the potential for minimizing the Delta-I noise by placing the active line drivers uniformly among the switching chips. It is shown that when the sequence of connections and disconnections is arbitrary, and with a minimal nonblocking configuration of one-sided switching chips, no algorithm exists for allocation of paths in the network that can prevent the active line drivers from getting concentrated in a few chips. However, it is possible to reduce the maximum number of active line drivers in a chip by using extra columns of chips. Tight upper bounds are achieved for the number of additional columns required for a one-sided nonblocking crossbar network when a Delta-I constraint is imposed.
机译:Delta-I噪声(同时开关噪声)严重限制了可用于合成大型纵横制网络的单个交叉点芯片的大小。提出了一种通过使用单侧交叉点切换电路来降低交叉开关网络中Delta-I噪声的体系结构解决方案。由于要连接的任何一对端子之间都存在多个开关路径,因此这些电路通过将有源线路驱动器均匀地放置在开关芯片之间,从而提供了将Delta-I噪声降至最低的潜力。结果表明,当连接和断开的顺序是任意的,并且单侧交换芯片的最小无阻塞配置时,网络中不存在用于分配路径的算法,该算法可以防止有源线路驱动器集中在少数情况下。筹码。但是,可以通过使用额外的芯片列来减少芯片中活动线路驱动器的最大数量。当施加Delta-I约束时,单侧无阻塞交叉开关网络所需的附加列数将达到较严格的上限。

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