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E. Barnes

Publications and source records attributed to E. Barnes.

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The design and statistical aspects of VIETNARMS: a strategic post-licensing trial of multiple oral direct acting antiviral Hepatitis C treatment strategies in Vietnam

Background Achieving hepatitis C elimination is hampered by the costs of treatment and the need to treat hard-to-reach populations. Treatment access could be widened by shortening treatment, but limited research means it is unclear which strategies could achieve sufficiently high cure rates to be acceptable. We present the statistical aspects of a multi-arm trial designed to test multiple strategies simultaneously with a monitoring mechanism to detect and stop those with unacceptably low cure rates quickly. Methods The VIETNARMS trial will factorially randomise patients to three randomisations. We will use Bayesian monitoring at interim analyses to detect and stop recruitment into unsuccessful strategies, defined as a >0.95 posterior probability of the true cure rate being <90%. Here, we tested the operating characteristics of the stopping guideline, planned the timing of the interim analyses and explored power at the final analysis. Results A beta(4.5, 0.5) prior for the true cure rate produces <0.05 probability of incorrectly stopping a group with true cure rate >90%. Groups with very low cure rates (<60%) are very likely (>0.9 probability) to stop after ~25% patients are recruited. Groups with moderately low cure rates (80%) are likely to stop (0.7 probability) before the end of recruitment. Interim analyses 7, 10, 13 and 18 months after recruitment commences provide good probabilities of stopping inferior groups. For an overall true cure rate of 95%, power is >90% to detect non-inferiority in the regimen and strategy comparisons using 5% and 10% margins respectively, regardless of the control cure rate, and to detect a 5% absolute difference in the ribavirin comparison. Conclusions The operating characteristics of the stopping guideline are appropriate and interim analyses can be timed to detect failing groups at various stages.

stat.AP

Notch filtering the nuclear environment of a spin qubit

Electron spins in gate-defined quantum dots provide a promising platform for quantum computation. In particular, spin-based quantum computing in gallium arsenide takes advantage of the high quality of semiconducting materials, reliability in fabricating arrays of quantum dots, and accurate qubit operations. However, the effective magnetic noise arising from the hyperfine interaction with uncontrolled nuclear spins in the host lattice constitutes a major source of decoherence. Low frequency nuclear noise, responsible for fast (10 ns) inhomogeneous dephasing, can be removed by echo techniques. High frequency nuclear noise, recently studied via echo revivals, occurs in narrow frequency bands related to differences in Larmor precession of the three isotopes $\mathbf{^{69}Ga}$, $\mathbf{^{71}Ga}$, and $\mathbf{^{75}As}$. Here we show that both low and high frequency nuclear noise can be filtered by appropriate dynamical decoupling sequences, resulting in a substantial enhancement of spin qubit coherence times. Using nuclear notch filtering, we demonstrate a spin coherence time ($\mathbf{T_{2}}$) of 0.87 ms, five orders of magnitude longer than typical exchange gate times, and exceeding the longest coherence times reported to date in Si/SiGe gate-defined quantum dots.

cond-mat.mes-hall

Mu2e Technical Design Report

The Mu2e experiment at Fermilab will search for charged lepton flavor violation via the coherent conversion process mu- N --> e- N with a sensitivity approximately four orders of magnitude better than the current world's best limits for this process. The experiment's sensitivity offers discovery potential over a wide array of new physics models and probes mass scales well beyond the reach of the LHC. We describe herein the preliminary design of the proposed Mu2e experiment. This document was created in partial fulfillment of the requirements necessary to obtain DOE CD-2 approval.

physics.ins-det

Mu2e Conceptual Design Report

Mu2e at Fermilab will search for charged lepton flavor violation via the coherent conversion process mu- N --> e- N with a sensitivity approximately four orders of magnitude better than the current world's best limits for this process. The experiment's sensitivity offers discovery potential over a wide array of new physics models and probes mass scales well beyond the reach of the LHC. We describe herein the conceptual design of the proposed Mu2e experiment. This document was created in partial fulfillment of the requirements necessary to obtain DOE CD-1 approval, which was granted July 11, 2012.

physics.ins-det