Title :
Embedding of quantum-dot cellular automata circuits onto a quantum annealing processor
Author :
Retallick, Jacob ; Babcock, Michael ; Aroca-Ouellette, Miguel ; McNamara, Shane ; Wilton, Steve ; Roy, Aidan ; Johnson, Mark ; Walus, Konrad
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of British Columbia, Vancouver, BC, Canada
Abstract :
Simulations of quantum-dot cellular automata (QCA) on classical computers are highly limited due to the exponential growth in resources required for the numerical simulation of quantum mechanics involving networks of finite state nodes. Recent advancements in computing based on networks of flux-qubits, and in particular the platform technology developed by D-Wave Systems Inc., have made it possible to explore QCA networks that are intractable on classical machines. However, the embedding of such networks onto the available processor architecture is a key challenge in setting up such simulations. In this work, two approaches to embedding QCA circuits are characterized: a dense placement algorithm that uses a routing method based on negotiated congestion; and a heuristic method implemented in D-Wave´s SAPI package. Both embedding methods are characterized using a set of basic QCA benchmark circuits of various sizes and complexities. When including diagonal interactions only in the case of an inverter, both methods were able to embed a 4-bit 2-1 multiplexer circuit containing 192 non-driver QCA cells onto the 512 qubit D-Wave Vesuvius chip architecture. Including diagonal interactions for all cells, both methods successfully embedded a serial adder circuit containing 126 non-driver cells.
Keywords :
adders; cellular automata; multiplying circuits; numerical analysis; quantum computing; quantum dots; quantum optics; 2-1 multiplexer circuit; D-Wave Systems Inc; D-Wave Vesuvius chip architecture; QCA benchmark circuits; QCA simulation; dense placement algorithm; diagonal interactions; embedding methods; finite state nodes; flux-qubits; heuristic method; inverter; negotiated congestion; nondriver QCA cells; numerical simulation; processor architecture; quantum annealing processor; quantum mechanics; quantum-dot cellular automata circuits; quantum-dot cellular automata simulation; routing method; serial adder circuit; word length 4 bit; Adders; Automata; Benchmark testing; Heuristic algorithms; Logic gates; Quantum dots; Stationary state;
Conference_Titel :
Optoelectronic and Microelectronic Materials & Devices (COMMAD), 2014 Conference on
Conference_Location :
Perth, WA
Print_ISBN :
978-1-4799-6867-1
DOI :
10.1109/COMMAD.2014.7038689