A1 Alkuperäisartikkeli tieteellisessä aikakauslehdessä
Novel qutrit circuit design for multiplexer, De-multiplexer, and decoder (2023)


Taheri Monfared, A., Ciriani, V., Kettunen, L., & Haghparast, M. (2023). Novel qutrit circuit design for multiplexer, De-multiplexer, and decoder. Quantum information processing, 22, Article 12. https://doi.org/10.1007/s11128-022-03754-9


JYU-tekijät tai -toimittajat


Julkaisun tiedot

Julkaisun kaikki tekijät tai toimittajatTaheri Monfared, Asma; Ciriani, Valentina; Kettunen, Lauri; Haghparast, Majid

Lehti tai sarjaQuantum information processing

ISSN1570-0755

eISSN1573-1332

Julkaisuvuosi2023

Ilmestymispäivä09.12.2022

Volyymi22

Artikkelinumero12

KustantajaSpringer

JulkaisumaaYhdysvallat (USA)

Julkaisun kielienglanti

DOIhttps://doi.org/10.1007/s11128-022-03754-9

Julkaisun avoin saatavuusAvoimesti saatavilla

Julkaisukanavan avoin saatavuusOsittain avoin julkaisukanava

Julkaisu on rinnakkaistallennettu (JYX)https://jyx.jyu.fi/handle/123456789/84556


Tiivistelmä

Designing conventional circuits present many challenges, including minimizing internal power dissipation. An approach to overcoming this problem is utilizing quantum technology, which has attracted significant attention as an alternative to Nanoscale CMOS technology. The reduction of energy dissipation makes quantum circuits an up-and-coming emerging technology. Ternary logic can potentially diminish the quantum circuit width, which is currently a limitation in quantum technologies. Using qutrit instead of qubit could play an essential role in the future of quantum computing. First, we propose two approaches for quantum ternary decoder circuit in this context. Then, we propose a quantum ternary multiplexer and quantum ternary demultiplexer to exploit the constructed quantum ternary decoder circuit. Techniques to achieve lower quantum cost are of importance. We considered two types of circuits, one in which the output states are always restored to the initial input states and the other in which the states of the output are irrelevant. We compare the proposed quantum ternary circuits with their existing counterparts and present the improvements. It is possible to realize the proposed designs using macro-level ternary gates that are based on the ion-trap realizable ternary 2-qutrit Muthukrishnan–Stroud and 1-qutrit permutation gates.


YSO-asiasanatkvanttilaskenta

Vapaat asiasanatquantum computing; qutrit; quantum ternary logic; restoration technique; non-restoration technique


Liittyvät organisaatiot


Hankkeet, joissa julkaisu on tehty


OKM-raportointiKyllä

Raportointivuosi2023

Alustava JUFO-taso1


Viimeisin päivitys 2024-22-04 klo 21:56