- Home
- Search Results
- Page 1 of 1
Search for: All records
-
Total Resources4
- Resource Type
-
0003000001000000
- More
- Availability
-
40
- Author / Contributor
- Filter by Author / Creator
-
-
Cassella, Cristian (3)
-
Casilli, Nicolas (2)
-
Davaji, Benyamin (2)
-
Kaisar, Tahmid (2)
-
Kaya, Onurcan (2)
-
Casilli, N (1)
-
Cassella, C (1)
-
Colombo, L (1)
-
Colombo, Luca (1)
-
Feng, P (1)
-
Feng, Philip X-L (1)
-
Feng, Philip X.-L. (1)
-
Ghosh, S (1)
-
Hoque_Yousuf, S_M Enamul (1)
-
Kaisar, T (1)
-
Mandal, Soumyajit (1)
-
Rais-Zadeh, Mina (1)
-
#Tyler Phillips, Kenneth E. (0)
-
#Willis, Ciara (0)
-
& Abreu-Ramos, E. D. (0)
-
- Filter by Editor
-
-
& Spizer, S. M. (0)
-
& . Spizer, S. (0)
-
& Ahn, J. (0)
-
& Bateiha, S. (0)
-
& Bosch, N. (0)
-
& Brennan K. (0)
-
& Brennan, K. (0)
-
& Chen, B. (0)
-
& Chen, Bodong (0)
-
& Drown, S. (0)
-
& Ferretti, F. (0)
-
& Higgins, A. (0)
-
& J. Peters (0)
-
& Kali, Y. (0)
-
& Ruiz-Arias, P.M. (0)
-
& S. Spitzer (0)
-
& Sahin. I. (0)
-
& Spitzer, S. (0)
-
& Spitzer, S.M. (0)
-
(submitted - in Review for IEEE ICASSP-2024) (0)
-
-
Have feedback or suggestions for a way to improve these results?
!
Note: When clicking on a Digital Object Identifier (DOI) number, you will be taken to an external site maintained by the publisher.
Some full text articles may not yet be available without a charge during the embargo (administrative interval).
What is a DOI Number?
Some links on this page may take you to non-federal websites. Their policies may differ from this site.
-
We report on a new class of Ising machines (IMs) that rely on coupled parametric frequency dividers (PFDs) as macroscopic artificial spins. Unlike the IM counterparts based on subharmonic-injection locking (SHIL), PFD IMs donot require strong injected continuous-wave signals or applied dc voltages. Therefore, they show a significantly lower power consumption per spin compared to SHIL-based IMs, making it feasible to accurately solve large-scale combinatorial optimization problems that are hard or even impossible to solve by using the current von Neumann computing architectures. Furthermore, using high quality factor resonators in the PFD design makes PFD IMs able to exhibit a nanowatt-level power per spin. Also, it remarkably allows a speedup of the phase synchronization among the PFDs, resulting in shorter time to solution and lower energy to solution despite the resonators’ longer relaxation time. As a proof of concept, a 4-node PFD IM has been demonstrated. This IM correctly solves a set of Max-Cut problems while consuming just 600 nanowatts per spin. This power consumption is 2 orders of magnitude lower than the power per spin of state-of-the-art SHIL-based IMs operating at the same frequency.more » « less
-
Kaisar, Tahmid; Hoque_Yousuf, S_M Enamul; Casilli, Nicolas; Rais-Zadeh, Mina; Mandal, Soumyajit; Cassella, Cristian; Feng, Philip X-L (, IEEE)
-
Casilli, Nicolas; Kaya, Onurcan; Kaisar, Tahmid; Davaji, Benyamin; Feng, Philip X.-L.; Cassella, Cristian (, 2023 IEEE 36th International Conference on Micro Electro Mechanical Systems (MEMS))
-
Kaya, Onurcan; Colombo, Luca; Davaji, Benyamin; Cassella, Cristian (, 2023 IEEE 36th International Conference on Micro Electro Mechanical Systems (MEMS))
An official website of the United States government

Full Text Available