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Demonstration of sub-micron UCN position resolution using room-temperature CMOS sensor
S. Lin
, J. K. Baldwin
, M. Blatnik
, S. M. Clayton
, C. Cude-Woods
, S. A. Currie
, B. Filippone
, E. M. Fries
, P. Geltenbort
, A. T. Holley
, W. Li
,
C. Y. Liu
, M. Makela
, C. L. Morris
, R. Musedinovic
, C. O'Shaughnessy
, R. W. Pattie
, D. J. Salvat
, A. Saunders
, E. I. Sharapov
M. Singh, X. Sun, Z. Tang, W. Uhrich, W. Wei, B. Wolfe, A. R. Young, Z. Wang
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Physics
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Keyphrases
Room Temperature
100%
Submicron
100%
Position Resolution
100%
Ultracold Neutrons
100%
CMOS Sensor
100%
Physics-informed Deep Learning
25%
High Spatial Resolution
12%
Fast Data
12%
Position Measurement
12%
Polarimeter
12%
Submicron Spatial Resolution
12%
Neutron Experiments
12%
Quantum Physics
12%
Neutron Measurements
12%
Automated Analysis
12%
Quantum Gravity
12%
Position Uncertainty
12%
Fully Convolutional Neural Network
12%
Neutron Spectrometer
12%
Neutron Detection
12%
Ultracold Neutron Source
12%
Physics
Physics
100%
Room Temperature
100%
Deep Learning Method
100%
Neural Network
50%
Quantum Physics
50%
Neutron Source
50%
Polarimeter
50%
Quantum Gravity
50%
Neutron Spectrometer
50%
Earth and Planetary Sciences
Room Temperature
100%
High Spatial Resolution
50%
Spatial Resolution
50%
Neutron Source
50%
Spectrometer
50%
Polarimeter
50%
Chemical Engineering
Deep Learning Method
100%
Position Measurement
50%
Neural Network
50%