论文标题

可重新配置的特定应用的光子集成电路,用于求解部分微分方程

Reconfigurable Application-Specific Photonic Integrated Circuit for solving Partial Differential Equations

论文作者

Shen, Chen, Peserico, Nicola, Meng, Jiawei, Ma, Xiaoxuan, Nouri, Behrouz Movahhed, Popescu, Cosmin-Constantin, Hu, Juejun, El-Ghazawi, Tarek, Dalir, Hamed, Sorger, Volker J.

论文摘要

几个世纪以来,对于所有学科的科学家和工程师来说,求解数学方程式更快,更有效。尽管电子数字电路在近几十年来彻底改变了方程式求解,但显然,随着时间的推移,蛮力方法的绩效提高迅速饱和。取而代之的是,由于有利的复杂性缩放,正在追捕那些利用宇宙自然倾向的范例,以最大程度地减少系统自由能,例如退火机或Ising机器。在这里,我们介绍了一个可编程的模拟求解器,该求解器利用了Maxwells方程与光子电路之间的数学形式对等。它具有纳米光束的网状网络,以找到偏微分方程的解决方案。例如,我们设计,制造和展示了一种新型的应用特异性光子集成电路,该电路由电优化的可重新配置节点组成,并且相对于商业求解器,实验验证了90%的精度。最后,我们通过在重新进入行星大气中模拟飞船上的热扩散测试了这种光子整合的芯片性能。本文介绍的可编程光圈为解决复杂问题提供了轻松的途径,因此将在许多科学和工程领域中具有深远的潜在应用。

Solving mathematical equations faster and more efficiently has been a Holy Grail for centuries for scientists and engineers across all disciplines. While electronic digital circuits have revolutionized equation solving in recent decades, it has become apparent that performance gains from brute-force approaches of compute-solvers are quickly saturating over time. Instead, paradigms that leverage the universes natural tendency to minimize a systems free energy, such as annealers or Ising Machines, are being sought after due to favorable complexity scaling. Here we introduce a programmable analog solver leveraging the mathematical formal equivalence between Maxwells equations and photonic circuitry. It features a mesh network of nanophotonic beams to find solutions to partial differential equations. As an example, we designed, fabricated, and demonstrated a novel application-specific photonic integrated circuit comprised of electro-optically reconfigurable nodes, and experimentally validated 90% accuracy with respect to a commercial solver. Finally, we tested this photonic integrated chip performance by simulating thermal diffusion on a spacecrafts heat shield during re-entry to a planets atmosphere. The programmable light-circuitry presented herein offers a facile route for solving complex problems and thus will have profound potential applications across many scientific and engineering fields.

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