A Fowler
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Explore the profile of A Fowler including associated specialties, affiliations and a list of published articles.
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Articles
111
Citations
1249
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Recent Articles
1.
Edwards D, Best N, Crawford J, Zi L, Shelton C, Fowler A
Ther Innov Regul Sci
. 2023 Nov;
58(1):1-10.
PMID: 37910271
Bayesian Dynamic Borrowing (BDB) designs are being increasingly used in clinical drug development. These methods offer a mathematically rigorous and robust approach to increase efficiency and strengthen evidence by integrating...
2.
Bodie G, Hagen J, Almamar A, Majumdar S, Wang X, Tuepah R, et al.
Can J Surg
. 2022 Apr;
55(4 Suppl 1):S63-S135.
PMID: 35488395
No abstract available.
3.
Droeser R, Kaneva P, Cheng V, Lam L, Benjamin E, Matsushima K, et al.
Can J Surg
. 2022 Apr;
61(4 Suppl 1):S94-S174.
PMID: 35488393
No abstract available.
4.
Beaney T, Neves A, Alboksmaty A, Ashrafian H, Flott K, Fowler A, et al.
Nat Commun
. 2022 Apr;
13(1):2356.
PMID: 35487905
The Covid-19 mortality rate varies between countries and over time but the extent to which this is explained by the underlying risk in those infected is unclear. Using data on...
5.
Lin P, Min M, Lai K, Lee M, Holloway L, Xuan W, et al.
Clin Oncol (R Coll Radiol)
. 2021 Aug;
33(12):e586-e598.
PMID: 34373179
Aims: To evaluate whether biomarkers derived from fluorodeoxyglucose positron emission tomography-computed tomography (FDG PET-CT) performed prior to (prePET) and during the third week (interim PET; iPET) of radiotherapy can predict...
6.
Foxen B, Neill C, Dunsworth A, Roushan P, Chiaro B, Megrant A, et al.
Phys Rev Lett
. 2020 Oct;
125(12):120504.
PMID: 33016760
Quantum algorithms offer a dramatic speedup for computational problems in material science and chemistry. However, any near-term realizations of these algorithms will need to be optimized to fit within the...
7.
Barends R, Quintana C, Petukhov A, Chen Y, Kafri D, Kechedzhi K, et al.
Phys Rev Lett
. 2019 Dec;
123(21):210501.
PMID: 31809160
We demonstrate diabatic two-qubit gates with Pauli error rates down to 4.3(2)×10^{-3} in as fast as 18 ns using frequency-tunable superconducting qubits. This is achieved by synchronizing the entangling parameters...
8.
Klimov P, Kelly J, Chen Z, Neeley M, Megrant A, Burkett B, et al.
Phys Rev Lett
. 2018 Sep;
121(9):090502.
PMID: 30230854
Superconducting qubits are an attractive platform for quantum computing since they have demonstrated high-fidelity quantum gates and extensibility to modest system sizes. Nonetheless, an outstanding challenge is stabilizing their energy-relaxation...
9.
Neill C, Roushan P, Kechedzhi K, Boixo S, Isakov S, Smelyanskiy V, et al.
Science
. 2018 Apr;
360(6385):195-199.
PMID: 29650670
A key step toward demonstrating a quantum system that can address difficult problems in physics and chemistry will be performing a computation beyond the capabilities of any classical computer, thus...
10.
Roushan P, Neill C, Tangpanitanon J, Bastidas V, Megrant A, Barends R, et al.
Science
. 2017 Dec;
358(6367):1175-1179.
PMID: 29191906
Quantized eigenenergies and their associated wave functions provide extensive information for predicting the physics of quantum many-body systems. Using a chain of nine superconducting qubits, we implement a technique for...