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Efficient Derivation of Retinal Pigment Epithelium Cells from Stem Cells
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Robust and efficient coding with grid cells.
Lajos Vágó1, Balázs B Ujfalussy1
1NAP-B PATTERN Group, MTA Wigner Research Center for Physics, Budapest, Hungary.
Plos Computational Biology
|January 9, 2018
Summary
Grid cells in the brain
Area of Science:
- Neuroscience
- Computational Neuroscience
Background:
- Grid cells in the entorhinal cortex provide a neuronal code for spatial representation.
- Optimal coding capacity is known for finite environments, but not unbounded ones.
Purpose of the Study:
- To develop a number theoretic approach for grid cell coding in unbounded environments.
- To identify grid parameters that maximize coding range under noisy conditions.
Main Methods:
- Novel number theoretic approach to derive optimal grid parameters.
- Analytic derivation of an upper bound on coding range.
- Analysis of coding capacity under varying neuronal noise levels.
Main Results:
- Derived optimal grid parameters for unbounded environments.
- Demonstrated that coding capacity becomes robust to scale choices with increased modules under noise.
- Showed near-optimal capacity with random scale choices for realistic module numbers.
Conclusions:
- Robust and efficient grid cell coding is achievable without parameter tuning.
- Multiple grid modules are essential for large coding capacity and system robustness.
- Provides a theoretical basis for the observed diversity of grid scales in experiments.
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