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1. Fisher information for smart sampling in time-domain spectroscopy.

2. On-the-fly training of polynomial machine learning potentials in computing lattice thermal conductivity.

3. Inferring temperature fields from concentration fields in channel flows using conditional generative adversarial networks.

4. A moment tensor potential for lattice thermal conductivity calculations of α and β phases of Ga2O3.

5. First-principles-based machine learning interatomic potential for molecular dynamics simulations of 2D lateral MoS2/WS2 heterostructures.

6. High throughput substrate screening for interfacial thermal management of β-Ga2O3 by deep convolutional neural network.

7. Pyroelectric crystals for generation of neutrons: A review.

8. Amorphous MoS2 from a machine learning inter-atomic potential.

9. Discovering melting temperature prediction models of inorganic solids by combining supervised and unsupervised learning.

10. Performance assessment of the effective core potentials under the fermionic neural network: First and second row elements.

11. Machine learning aided understanding and manipulating thermal transport in amorphous networks.

12. Enhancing ferroelectric characterization at nanoscale: A comprehensive approach for data processing in spectroscopic piezoresponse force microscopy.

13. Ultra-flat bands at large twist angles in group-V twisted bilayer materials.

14. Microscopic pathways of transition from low-density to high-density amorphous phase of water.

15. CO2 inside sI clathrate-like cages: Automated construction of neural network/machine learned guest–host potential and quantum spectra computations.

16. Improving second-order Møller–Plesset perturbation theory for noncovalent interactions with the machine learning-corrected ab initio dispersion potential.

17. Ab initio dispersion potentials based on physics-based functional forms with machine learning.

18. Lattice thermal conductivity of solid LiF based on machine learning force fields and the Green–Kubo approach.

19. Antiferromagnetic ground state and evidence for metamagnetic transition in itinerant-electron compounds YCo12−xFexB6 (x = 1.5, 2, 2.5).

20. Unleashing the power of artificial intelligence in phonon thermal transport: Current challenges and prospects.

21. Revealing the reconstruction mechanism of AgPd nanoalloys under fluorination based on a multiscale deep learning potential.

22. State-to-state dynamics and machine learning predictions of inelastic and reactive O(3P) + CO(1∑+) collisions relevant to hypersonic flows.

23. Unveiling interatomic distances influencing the reaction coordinates in alanine dipeptide isomerization: An explainable deep learning approach.

24. Deep learning path-like collective variable for enhanced sampling molecular dynamics.

25. Perspective: Atomistic simulations of water and aqueous systems with machine learning potentials.

26. Multimodal learning of heat capacity based on transformers and crystallography pretraining.

27. Understanding the effect of density functional choice and van der Waals treatment on predicting the binding configuration, loading, and stability of amine-grafted metal organic frameworks.

28. Unraveling the impact of initial choices and in-loop interventions on learning dynamics in autonomous scanning probe microscopy.

29. Global machine learning potentials for molecular crystals.

30. Classification of complex local environments in systems of particle shapes through shape symmetry-encoded data augmentation.

31. Unified deep learning network for enhanced accuracy in predicting thermal conductivity of bilayer graphene, hexagonal boron nitride, and their heterostructures.

32. Erratum: "The quaternary question: Determining allostery in spastin through dynamics classification learning and bioinformatics" [J. Chem. Phys. 158, 125102 (2023)].

33. Many-body interactions and deep neural network potentials for water.

34. The optimization of evaporation rate in graphene-water system by machine learning algorithm.

35. Estimating the lattice thermal conductivity of AlCoCrNiFe high-entropy alloy using machine learning.

36. Temperature-transferable tight-binding model using a hybrid-orbital basis.

37. Fostering Undergraduate Academic Research: Rolling out a Tech Stack with AI-Powered Tools in a Library.

38. Professionalizing a Student's Library Employment Through Experiential Learning Workshops.

39. Unplug the Classroom. Or Reboot It. Just Don’t Do Nothing.

40. Resolving the Human-Subjects Status of ML's Crowdworkers.

41. Computer Vision, ML, and AI in the Study of Fine Art.

42. Proof of intelligence?

43. Combining Machine Learning and Lifetime-Based Resource Management for Memory Allocation and Beyond.

44. Probing the critical point of MgSiO3 using deep potential simulation.

45. Diffusion model-based inverse design for thermal transparency.

46. Using machine learning with atomistic surface and local water features to predict heterogeneous ice nucleation.

47. Inverse design of pore wall chemistry and topology through active learning of surface group interactions.

48. The effect of machine learning predicted anharmonic frequencies on thermodynamic properties of fluid hydrogen fluoride.

49. Deep learning-based data processing method for transient thermoreflectance measurements.

50. Machine-learning accelerated structure search for ligand-protected clusters.

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