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An Intra-Chip Free-Space Optical Interconnect

机译:芯片内自由空间光学互连

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Continued device scaling enables microprocessors and other systems-on-chip (SoCs) to increase their performance, functionality, and hence, complexity. Simultaneously, relentless scaling, if uncompensated, degrades the performance and signal integrity of on-chip metal interconnects. These systems have therefore become increasingly communications-limited. The communications-centric nature of future high performance computing devices demands a fundamental change in intra- and inter-chip interconnect technologies. Optical interconnect is a promising long term solution. However, while significant progress in optical signaling has been made in recent years, networking issues for on-chip optical interconnect still require much investigation. Taking the underlying optical signaling systems as a drop-in replacement for conventional electrical signaling while maintaining conventional packet-switching architectures is unlikely to realize the full potential of optical interconnects. In this paper, we propose and study the design of a fully distributed interconnect architecture based on free-space optics. The architecture leverages a suite of newly-developed or emerging devices, circuits, and optics technologies. The interconnect avoids packet relay altogether, offers an ultra-low transmission latency and scalable bandwidth, and provides fresh opportunities for coherency substrate designs and optimizations.
机译:持续的设备缩放使微处理器和其他片上系统(SOC)能够提高其性能,功能,从而复杂性。同时,如果未偿付,则无情缩放,降低片上金属互连的性能和信号完整性。因此,这些系统变得越来越多的通信限制。未来高性能计算设备的以通信为中心的性质要求芯片间互连技术的基本变化。光学互连是一个有前途的长期解决方案。然而,虽然近年来已经进行了光学信令的显着进展,但是片上光学互连的网络问题仍然需要很多研究。将底层光学信令系统作为传统电信令的替代替换,同时保持传统的分组交换架构不太可能实现光学互连的全部电位。在本文中,我们提出并研究了基于自由空间光学的完全分布式互连架构的设计。该架构利用了一套新开发的或新兴设备,电路和光学技术。互连完全避免了数据包继电器,提供超低传输延迟和可扩展带宽,并为一致基板设计和优化提供了新的机遇。

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