TY - CHAP
T1 - QUANTUM COMPUTING
T2 - Progress and Prospects
AU - COMMITTEE ON TECHNICAL ASSESSMENT OF THE FEASIBILITY AND IMPLICATIONS OF QUANTUM COMPUTING
AU - COMPUTER SCIENCE AND TELECOMMUNICATIONS BOARD
AU - INTELLIGENCE COMMUNITY STUDIES BOARD
AU - Horowitz, Mark A.
AU - Aspuru-Guzik, Alán
AU - Awschalom, David D.
AU - Blakley, Bob
AU - Boneh, Dan
AU - Coppersmith, Susan N.
AU - Kim, Jungsang
AU - Martinis, John M.
AU - Martonosi, Margaret
AU - Mosca, Michele
AU - Oliver, William D.
AU - Svore, Krysta
AU - Vazirani, Umesh V.
AU - Grumbling, Emily
AU - Bradley, Shenae
AU - Eisenberg, Jon
AU - Ortiz, Katiria
AU - Patel, Janki
AU - Jahanian, Farnam
AU - Barroso, Luiz
AU - Bellovin, Steve M.
AU - Brammer, Robert F.
AU - Culler, David
AU - Frank, Edward
AU - Haas, Laura
AU - Horowitz, Mark
AU - Horvitz, Eric
AU - Kumar, Vijay
AU - Mynatt, Beth
AU - Partridge, Craig
AU - Rus, Daniela
AU - Schneider, Fred B.
AU - Seltzer, Margo
AU - Vardi, Moshe
AU - Millett, Lynette I.
AU - Hawkins, Renee
AU - Chang, Frederick
AU - Dynes, Robert C.
AU - Brill, Julie
AU - Díaz De La Rubia, Tomás
AU - Fein, Robert
AU - John, Miriam
AU - Jones, Anita
AU - Kerr, Donald M.
AU - Latiff, Robert H.
AU - Lowenthal, Mark
AU - Marletta, Michael
AU - Mason, L. Roger
AU - Parker, Elizabeth Rindskopf
AU - Press, William H.
N1 - Publisher Copyright:
Copyright 2019 by the National Academy of Sciences. All rights reserved.
PY - 2019
Y1 - 2019
N2 - Quantum mechanics, the subfield of physics that describes the behavior of very small (quantum) particles, provides the basis for a new paradigm of computing. First proposed in the 1980s as a way to improve computational modeling of quantum systems, the field of quantum computing has recently garnered significant attention due to progress in building small-scale devices. However, significant technical advances will be required before a large-scale, practical quantum computer can be achieved. Quantum Computing: Progress and Prospects provides an introduction to the field, including the unique characteristics and constraints of the technology, and assesses the feasibility and implications of creating a functional quantum computer capable of addressing real-world problems. This report considers hardware and software requirements, quantum algorithms, drivers of advances in quantum computing and quantum devices, benchmarks associated with relevant use cases, the time and resources required, and how to assess the probability of success.
AB - Quantum mechanics, the subfield of physics that describes the behavior of very small (quantum) particles, provides the basis for a new paradigm of computing. First proposed in the 1980s as a way to improve computational modeling of quantum systems, the field of quantum computing has recently garnered significant attention due to progress in building small-scale devices. However, significant technical advances will be required before a large-scale, practical quantum computer can be achieved. Quantum Computing: Progress and Prospects provides an introduction to the field, including the unique characteristics and constraints of the technology, and assesses the feasibility and implications of creating a functional quantum computer capable of addressing real-world problems. This report considers hardware and software requirements, quantum algorithms, drivers of advances in quantum computing and quantum devices, benchmarks associated with relevant use cases, the time and resources required, and how to assess the probability of success.
UR - https://www.scopus.com/pages/publications/105031689243
UR - https://www.scopus.com/pages/publications/105031689243#tab=citedBy
U2 - 10.17226/25196
DO - 10.17226/25196
M3 - Chapter
AN - SCOPUS:105031689243
SN - 030947969X
SN - 9780309479691
SP - 1
EP - 192
BT - Coresource 4
PB - National Academies Press
ER -