Placement and Routing for Tile-based Field-coupled Nanocomputing Circuits Is NP -complete (Research Note)

Author:

Walter Marcel1,Wille Robert2,Große Daniel1,Torres Frank Sill3,Drechsler Rolf1

Affiliation:

1. University of Bremen, Bremen, Germany

2. Johannes Kepler University Linz, Linz, Austria

3. DFKI GmbH, Bremen, Germany

Abstract

Field-coupled Nanocomputing  (FCN) technologies provide an alternative to conventional CMOS-based computation technologies and are characterized by intriguingly low-energy dissipation. Accordingly, their design received significant attention in the recent past. FCN circuit implementations like Quantum-dot Cellular Automata  (QCA) or Nanomagnet Logic  (NML) have already been built in labs and basic operations such as inverters, Majority, AND, OR, and so on, are already available. The design problem basically boils down to the question of how to place basic operations and route their connections so that the desired function results while, at the same time, further constraints (related to timing, clocking, path lengths, etc.) are satisfied. While several solutions for this problem have been proposed, interestingly no clear understanding about the complexity of the underlying task exists thus far. In this research note, we consider this problem and eventually prove that placement and routing for tile-based FCN circuits is NP -complete. By this, we provide a theoretical foundation for the further development of corresponding design methods.

Publisher

Association for Computing Machinery (ACM)

Subject

Electrical and Electronic Engineering,Hardware and Architecture,Software

Cited by 14 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Post-Layout Optimization for Field-coupled Nanotechnologies;Proceedings of the 18th ACM International Symposium on Nanoscale Architectures;2023-12-18

2. Scalable Physical Design for Silicon Dangling Bond Logic: How a 45° Turn Prevents the Reinvention of the Wheel;2023 IEEE 23rd International Conference on Nanotechnology (NANO);2023-07-02

3. Versatile Signal Distribution Networks for Scalable Placement and Routing of Field-coupled Nanocomputing Technologies;2023 IEEE Computer Society Annual Symposium on VLSI (ISVLSI);2023-06-20

4. Exploiting the Third Dimension: Stackable Quantum-dot Cellular Automata;Proceedings of the 17th ACM International Symposium on Nanoscale Architectures;2022-12-07

5. Field-Coupled Nanocomputing Placement and Routing With Genetic and A* Algorithms;IEEE Transactions on Circuits and Systems I: Regular Papers;2022-11

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