This dataset provides held-out testing and production-model provenance analysis for the Pt–C–O fourth-generation neuroevolution potential (NEP4) used in the manuscript “Species-Dependent Interfacial Aggregation and Local Graphene Lifting on Pt(111)”. It supplements the principal computational dataset at https://doi.org/10.17632/h7m39h94hk.1 and the additional analysis dataset at https://doi.org/10.17632/cy22xdbxd8.1. The original database contains 4,226 configurations divided into 2,961 training configurations, 844 validation configurations, and 421 previously unused held-out test configurations. The 844-configuration subset previously described as a test set is treated here as the validation set. Production-model provenance was assessed by re-evaluating five archived frames from each public CO- and O-intercalation molecular-dynamics trajectory using two candidate Pt–C–O NEP models. The distributed production model (SHA-256: 4203fb759da3404878ecbde319f76f59014280d3cf6d88897312349fbffff28e) reproduces the archived trajectory energies substantially more closely than candidate model 2a. The fingerprint errors are 0.0200 versus 19.5630 meV/atom for CO and 0.00775 versus 1.24616 meV/atom for O, identifying model 2 as the model consistent with both archived production trajectories. On the 421-configuration held-out set containing 71,703 atoms, the frozen production model gives RMSEs of 0.98395 meV/atom for energy, 72.6538 meV/Å for force components, and 45.9592 meV/atom for virial components. Species-resolved force RMSEs are 48.7622 meV/Å for C, 93.1835 meV/Å for O, and 86.7958 meV/Å for Pt. The 844-configuration validation replay gives corresponding RMSEs of 0.94363 meV/atom, 74.6506 meV/Å, and 46.0115 meV/atom. The package contains the production NEP model and training input, held-out test structures and prediction outputs, validation-replay summaries, trajectory-fingerprint structures and results, reproduction scripts, the recorded software environment, and SHA-256 checksums. These validation and held-out results assess interpolation within the sampled Pt–C–O configuration domain. They do not establish unrestricted transferability to arbitrary compositions, defects, temperatures, reaction pathways, or configurations outside the sampled domain.
This dataset provides held-out testing and production-model provenance analysis for the Pt–C–O fourth-generation neuroevolution potential (NEP4) used in the manuscript “Species-Dependent Interfacial Aggregation and Local Graphene Lifting on Pt(111)”. It supplements the main computational dataset available at [PARENT DATASET DOI]. The original database contains 4,226 configurations divided into 2,961 training configurations, 844 validation configurations, and 421 previously unused held-out test configurations. The 844-configuration subset previously described as a test set is treated here as the validation set. Production-model provenance was assessed by re-evaluating five archived frames from each public CO- and O-intercalation molecular-dynamics trajectory using two candidate Pt–C–O NEP models. The distributed production model (SHA-256: 4203fb759da3404878ecbde319f76f59014280d3cf6d88897312349fbffff28e) reproduces the archived trajectory energies substantially more closely than candidate model 2a. The fingerprint errors are 0.0200 versus 19.5630 meV/atom for CO and 0.00775 versus 1.24616 meV/atom for O, identifying model 2 as the model consistent with both archived production trajectories. On the 421-configuration held-out set containing 71,703 atoms, the frozen production model gives RMSEs of 0.98395 meV/atom for energy, 72.6538 meV/Å for force components, and 45.9592 meV/atom for virial components. Species-resolved force RMSEs are 48.7622 meV/Å for C, 93.1835 meV/Å for O, and 86.7958 meV/Å for Pt. The 844-configuration validation replay gives corresponding RMSEs of 0.94363 meV/atom, 74.6506 meV/Å, and 46.0115 meV/atom. The package contains the production NEP model and training input, held-out test structures and prediction outputs, validation-replay summaries, trajectory-fingerprint structures and results, reproduction scripts, the recorded software environment, and SHA-256 checksums. These validation and held-out results assess interpolation within the sampled Pt–C–O configuration domain. They do not establish unrestricted transferability to arbitrary compositions, defects, temperatures, reaction pathways, or configurations outside the sampled domain.
W. J. Lee· Mendeley Data· 0 citations
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