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1. A prediction rigidity formalism for low-cost uncertainties in trained neural networks

2. Uncertainty quantification by direct propagation of shallow ensembles

3. Thermal transport of Li$_3$PS$_4$ solid electrolytes with ab initio accuracy

4. Electronic excited states from physically-constrained machine learning

5. Mechanism of charge transport in lithium thiophosphate

6. Modeling the ferroelectric phase transition in barium titanate with DFT accuracy and converged sampling

7. Surface segregation in high-entropy alloys from alchemical machine learning

8. Physics-inspired Equivariant Descriptors of Non-bonded Interactions

9. Robustness of Local Predictions in Atomistic Machine Learning Models

10. Probing the unfolded configurations of a $\beta$-hairpin using sketch-map

11. Smooth, exact rotational symmetrization for deep learning on point clouds

12. Wigner kernels: body-ordered equivariant machine learning without a basis

16. Accelerated chemical science with AI

17. Completeness of Atomic Structure Representations

18. Fast evaluation of spherical harmonics with sphericart

19. Modeling high-entropy transition-metal alloys with alchemical compression

20. A data-driven interpretation of the stability of molecular crystals

21. A smooth basis for atomistic machine learning

24. Beyond potentials: integrated machine-learning models for materials

25. Electronic-structure properties from atom-centered predictions of the electron density

26. Predicting hot-electron free energies from ground-state data

27. Comment on 'Manifolds of quasi-constant SOAP and ACSF fingerprints and the resulting failure to machine learn four body interactions'

28. Unified theory of atom-centered representations and message-passing machine-learning schemes

29. Incompleteness of graph neural networks for points clouds in three dimensions

30. Thermodynamics and dielectric response of $\text{BaTiO}_3$ by data-driven modeling

31. Ranking the Synthesizability of Hypothetical Zeolites with the Sorting Hat

32. Equivariant representations for molecular Hamiltonians and N-center atomic-scale properties

33. Local invertibility and sensitivity of atomic structure-feature mappings

34. The importance of nuclear quantum effects for NMR crystallography

35. Learning electron densities in the condensed phase

38. Optimal radial basis for density-based atomic representations

39. Quantum vibronic effects on the electronic properties of solid and molecular carbon

40. Modeling the Ga/As binary system across temperaturesand compositions from first principles

43. Efficient implementation of atom-density representations

44. Physics-inspired structural representations for molecules and materials

45. Improving Sample and Feature Selection with Principal Covariates Regression

46. Machine learning at the atomic-scale

47. Uncertainty estimation for molecular dynamics and sampling

48. Finite-temperature materials modeling from the quantum nuclei to the hot electrons regime

49. The role of feature space in atomistic learning

50. 2021 JCP Emerging Investigator Special Collection

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