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Gradient Echo Quantum Memory in Warm Atomic Vapor
Published on: November 11, 2013
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Postprocessing techniques for gradient percolation predictions on the square lattice
John Tencer1, Kelsey Meeks Forsberg1
1Sandia National Laboratories, 1515 Eubank SE, Albuquerque, NM 87123, New Mexico, USA.
Physical Review. E
|February 19, 2021
Summary
Quantization bias errors impact site percolation threshold predictions. This study reveals non-linear relationships and proposes metrics for accurate percolation threshold estimation.
Area of Science:
- Statistical Physics
- Computational Science
Background:
- Site percolation on regular lattices is a fundamental problem in statistical physics.
- Previous studies assumed a linear relationship between probability gradients and percolation thresholds.
Purpose of the Study:
- To investigate the impact of quantization bias errors on percolation threshold predictions.
- To propose a mitigation strategy for these errors.
- To challenge the linearity assumption in percolation threshold analysis.
Main Methods:
- Extensive computational experiments were conducted.
- Analysis of occupation probability distributions.
- Identification and evaluation of alternative convergence metrics.
Main Results:
- The assumed linear relationship between probability gradient and percolation threshold is invalid.
- Average occupation probabilities do not monotonically converge to the true percolation threshold due to distribution skewness.
- Several alternative metrics demonstrate monotonic convergence.
Conclusions:
- Quantization bias significantly affects percolation threshold predictions, invalidating linear assumptions.
- New metrics are identified for more reliable percolation threshold estimation in the presence of bias.
- This work provides a refined understanding of percolation phenomena under computational constraints.
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