Factoring integers via Schnorr's algorithm assisted with VQE

November 25, 2024 Β· Declared Dead Β· πŸ› Euro-Par Workshops

πŸ‘» CAUSE OF DEATH: Ghosted
No code link whatsoever

"No code URL or promise found in abstract"

Evidence collected by the PWNC Scanner

Authors Luis SΓ‘nchez Cano, GinΓ©s Carrascal de las Heras, Guillermo Botella Juan, Alberto del Barrio GarcΓ­a arXiv ID 2411.16632 Category quant-ph: Quantum Computing Cross-listed cs.CR Citations 1 Venue Euro-Par Workshops Last Checked 5 months ago
Abstract
Current asymmetric cryptography is based on the principle that while classical computers can efficiently multiply large integers, the inverse operation, factorization, is significantly more complex. For sufficiently large integers, this factorization process can take in classical computers hundreds or even thousands of years to complete. However, there exist some quantum algorithms that might be able to factor integers theoretically -- the theory works properly, but the hardware requirements are far away from what we can build nowadays -- and, for instance, Yan, B. et al. ([14]) claim to have constructed a hybrid algorithm which could be able even to challenge RSA-2048 in the near future. This work analyses this article and replicates the experiments they carried out, but with a different quantum method (VQE), being able to factor the number 1961.
Community shame:
Not yet rated
Community Contributions

Found the code? Know the venue? Think something is wrong? Let us know!

πŸ“œ Similar Papers

In the same crypt β€” Quantum Computing

Died the same way β€” πŸ‘» Ghosted