Title
RSFQbased BatcherBanyan Switch and Support Tools: Design and Partial Implementation,Used
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This paper describes the results of the analysis and implementation of ultrafast lowpower superconductor digital switching cores based on Rapid SingleFlux Quantum (RSFQ) technology. In particular, RSFQ circuits for implementation of crossbar, Batcher banyan and TDM shared bus switching cores are considered, and possible parameters of these circuits are estimated. The results show that the proposed RSFQ digital switches with overall throughput of 2.88 Tbps per chip operating at the exchange frequencies of 30 GHz and dissipating very little power could effectively compete with their semiconductor and photonic counterparts. Based upon the results of the analysis, the Batcherbanyan switching core was chosen for the hardware implementation. Several low level architectures of the socalled ? element, or 2x2 crosspoint switch, and also address decoders for a sorting and for an expanding network nodes, were developed and mapped onto RSFQ elementary cells. We consider the support tools and concepts used for the simulation, modeling, and testing of the switching network, namely, physicallevel and gatelevel simulators of complex RSFQ circuits.
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