A. Salnikov

ORCID: 0000-0002-3623-0161
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About
Contact & Profiles
Research Areas
  • Particle physics theoretical and experimental studies
  • High-Energy Particle Collisions Research
  • Particle Detector Development and Performance
  • Quantum Chromodynamics and Particle Interactions
  • Dark Matter and Cosmic Phenomena
  • Neutrino Physics Research
  • Cosmology and Gravitation Theories
  • Computational Physics and Python Applications
  • Distributed and Parallel Computing Systems
  • Medical Imaging Techniques and Applications
  • Radiation Detection and Scintillator Technologies
  • Astrophysics and Cosmic Phenomena
  • Atomic and Subatomic Physics Research
  • Advanced Data Storage Technologies
  • Black Holes and Theoretical Physics
  • Muon and positron interactions and applications
  • Particle Accelerators and Free-Electron Lasers
  • Digital Radiography and Breast Imaging
  • Particle accelerators and beam dynamics
  • Algorithms and Data Compression
  • Quality and Safety in Healthcare
  • Risk and Safety Analysis

SLAC National Accelerator Laboratory
2015-2025

The University of Adelaide
2017-2023

University of California, Santa Cruz
2023

Northern Illinois University
2023

The University of Melbourne
2020

Stanford University
2012-2013

The parameters of the beam spot produced by LHC in ATLAS interaction region are computed online using High Level Trigger (HLT) system. high rate triggered events is exploited to make precise measurements position, size and orientation luminous near real-time, as these change significantly even during a single data-taking run. We present challenges, solutions results for determination, monitoring feedback system ATLAS. A specially designed algorithm, which uses tracks registered silicon...

10.1109/rtc.2012.6418175 article EN 2012-06-01

We present results of studies e+e− → ηγ cross section in the energy region s < 1.4 GeV performed SND experiment at VEPP‐2M collider. The following values for decay probabilities were obtained Br(φ ηγ) = (1.341 ± 0.012 0.051) ⋅ 10−2, B(ω (4.22 0.47 0.17) 10−4, and B(ρ (2.77 0.26 0.16) 10−4 η 3π0, π0 γγ mode. It was found that this process may be described by a sum ρ, ω φ resonance contributions only.

10.1063/1.1482526 article EN AIP conference proceedings 2002-01-01
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