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GodJh1n/GPUMD-skill

SkillsMP は GodJh1n/GPUMD-skill から 35 件の skill を収集しています。skill を開くとソースと詳細を確認できます。

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10 件の職業カテゴリ · 100% 分類済み

収集済み skill 35 件中 35 件を表示しています。

職業分類
材料科学者
説明

Route NEP requests to task-specific subskills. NEP (Neuroevolution Potential) is the native machine-learning potential family of the GPUMD ecosystem — analogous to DeePMD-kit for LAMMPS. Use when the user asks for `nep.in`, `train.xyz`, `test.xyz`, NEP…

原文の言語: 英語

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職業分類
データサイエンティスト
説明

Train a first NEP potential from labeled extxyz data. Use when the user needs `nep.in`, `train.xyz`, `test.xyz`, parameter guidance, loss.out interpretation, or deployment of the resulting `nep.txt` back into GPUMD. NEP is the native machine-learning…

原文の言語: 英語

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職業分類
化学者
説明

Route VASP DFT requests to task-specific subskills based on user intent. Use when the user asks for VASP workflows and you must decide between static SCF, relaxation, DOS, or band-structure task preparation. This orchestration skill does not own detailed…

原文の言語: 英語

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職業分類
化学者
説明

Prepare VASP static SCF input tasks from a user-provided structure and essential DFT settings. Use when the user needs single-point electronic structure/total-energy calculations with INCAR generation, KSPACING-based k-point policy (or explicit KPOINTS on…

原文の言語: 英語

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職業分類
化学者
説明

Route ABACUS requests to task-specific subskills based on user intent. Use when the user asks for any ABACUS DFT calculation and you need to determine whether the task is SCF, relaxation, MD, or electronic analysis.

原文の言語: 英語

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職業分類
化学者
説明

Prepare ABACUS single-point (static SCF) task inputs from a user-provided structure and essential DFT settings. Use when the user needs total-energy/electronic SCF evaluation with explicit ABACUS INPUT/STRU/KPT generation, pseudopotential + orbital mapping,…

原文の言語: 英語

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職業分類
材料科学者
説明

Generate Quantum ESPRESSO DFT input tasks from a user-provided structure plus user-specified DFT settings. Use when the user wants to prepare QE calculations such as SCF, NSCF, relax, vc-relax, MD, bands, DOS, or phonons starting from a structure file or…

原文の言語: 英語

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職業分類
化学者
説明

Route CP2K requests to task-specific subskills based on user intent. Use when the user asks for CP2K workflows and you must decide between static, relaxation, molecular dynamics, or electronic-analysis preparation. This orchestration skill dispatches to the…

原文の言語: 英語

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職業分類
化学者
説明

Prepare CP2K single-point (static) task inputs from a user-provided structure and essential DFT settings. Use when the user needs total-energy/electronic SCF evaluation with explicit CP2K basis/potential and SCF controls.

原文の言語: 英語

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職業分類
物理学者
説明

Prepare VASP band-structure workflow inputs from existing SCF context and user-specified band-path settings. Use when the user requests electronic band-structure calculations and needs explicit prerequisite checks, line-mode KPOINTS path setup, and…

原文の言語: 英語

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職業分類
物理学者
説明

Prepare VASP DOS workflow inputs from existing SCF artifacts and user-specified DOS settings. Use when the user requests total/projected DOS setup and needs INCAR/KPOINTS preparation with explicit prerequisite checks against prior SCF runs.

原文の言語: 英語

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職業分類
材料科学者
説明

Prepare VASP geometry-relaxation input tasks from a user-provided structure and essential DFT settings. Use when the user needs ionic or cell-coupled relaxation and requires explicit ISIF-driven relaxation intent mapping, INCAR generation, and POTCAR mapping…

原文の言語: 英語

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職業分類
物理学者
説明

Prepare and run equilibrium GPUMD molecular dynamics. Use when the user needs a `model.xyz`, a `run.in`, an ensemble choice (NVE/NVT/NPT), timestep and dump-cadence guidance, or interpretation of `thermo.out` and `movie.xyz`. This is the general-purpose MD…

原文の言語: 英語

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職業分類
生化学者・生物物理学者
説明

Route GPUMD requests to task-specific subskills. GPUMD is a GPU-accelerated molecular dynamics code that pairs naturally with NEP machine-learning potentials. Use when the user asks for GPUMD MD, `model.xyz`, `run.in`, harmonic phonons via `compute_phonon`,…

原文の言語: 英語

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職業分類
データサイエンティスト
説明

Tooling layer for GPUMD helper repositories, format converters, dataset curation, and local example discovery. Use when the user needs GPUMDkit, upstream `GPUMD/tools`, GPUMD-Tutorials lookup, DFT-to-extxyz conversion, frame selection, dataset splitting, or…

原文の言語: 英語

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職業分類
物理学者
説明

Run ReacNetGenerator on reactive MD trajectories to generate reaction networks and reports. Use when the user wants to analyze LAMMPS dump/xyz/bond trajectories with ReacNetGenerator. Handles LAMMPS dump quirks like x/y/z vs xs/ys/zs by converting to x/y/z…

原文の言語: 英語

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職業分類
化学者
説明

A command-line utility for converting and manipulating over 50 atomic simulation data formats, including outputs from DFT and MD software (VASP, LAMMPS, Gaussian, QE, CP2K, ABACUS, etc.). USE WHEN you need to convert structural or trajectory files between…

原文の言語: 英語

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職業分類
化学者
説明

A versatile CLI tool for converting molecular file formats, generating 3D atomic coordinates from SMILES, rendering 2D chemical structure images, and preparing or extracting structures for computational workflows. USE WHEN you need to convert between chemical…

原文の言語: 英語

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職業分類
化学者
説明

A tool for generating initial packed molecular configurations (XYZ format) from single-molecule structures by calculating box dimensions, writing input scripts, and executing Packmol. USE WHEN you need to randomly pack a specific number of molecules into a…

原文の言語: 英語

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職業分類
材料科学者
説明

Structure manipulation and crystal analysis workflows based on pymatgen. USE WHEN you need to read/write common atomistic formats (CIF, POSCAR, XYZ), build supercells, perform site substitution/doping, inspect symmetry (space group), or compute local…

原文の言語: 英語

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職業分類
大気・宇宙科学者微生物学者
説明

A standardized CLI wrapper for RDKit 3D/2D conformer generation that samples multiple conformers per molecule (ETKDGv3, default 10), optimizes each with a force field (MMFF94s/UFF), keeps the lowest-energy conformer, automatically falls back to 2D layout on…

原文の言語: 英語

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職業分類
ネットワーク・コンピュータシステム管理者
説明

Run Shell commands as computational jobs, on local machines or HPC clusters, through Shell, Slurm, PBS, LSF, Bohrium, etc. USE WHEN the user needs to submit batch jobs to a cluster, run commands on a remote server, execute tasks via job schedulers (Slurm,…

原文の言語: 英語

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職業分類
化学者
説明

USE WHEN requesting core chemical structural data (SMILES, formula, mass, 2D images) via IUPAC, common, or multilingual names. You MUST actively retrieve the data using this skill; DO NOT hallucinate or generate structures yourself. DO NOT USE WHEN asking for…

原文の言語: 英語

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職業分類
プロジェクト管理専門家
説明

It is a specification for semantic workflows used by agents to plan, generate, formalize, summarize, and execute complex tasks, projects, experiments,and research efforts for agents, requiring explicit structure, lazy loading,scoped context, evidence-grounded…

原文の言語: 英語

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職業分類
物理学者
説明

General phonon-workflow skill built around phonopy, independent of force backend. USE WHEN you need to prepare finite-displacement phonon calculations, build force constants, and analyze phonon properties (band structure, DOS, thermal quantities) while…

原文の言語: 英語

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職業分類
化学者
説明

Prepare CP2K electronic-analysis task inputs from prior converged context. Use when the user requests post-ground-state electronic analyses and needs prerequisite-aware setup.

原文の言語: 英語

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職業分類
物理学者
説明

Prepare CP2K molecular-dynamics task inputs from a user-provided structure and MD controls. Use when the user needs finite-temperature trajectories with explicit ensemble, timestep, and thermostat/barostat settings.

原文の言語: 英語

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職業分類
化学者
説明

Prepare CP2K geometry-relaxation task inputs from a user-provided structure and optimization settings. Use when the user needs ion-only or cell-coupled optimization with explicit optimizer and convergence controls.

原文の言語: 英語

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職業分類
データサイエンティスト
説明

Prepare NEP prediction and fine-tuning workflows from an existing model or foundation model such as NEP89. Use when the user wants out-of-the-box evaluation, targeted MD sampling, `prediction 1`, or `fine_tune` from an existing `nep.txt` + `nep.restart`.

原文の言語: 英語

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職業分類
物理学者
説明

Prepare GPUMD workflows for self-diffusion, ionic conductivity, and viscosity. Use when the user needs `compute_msd`, `compute_sdc`, `compute_viscosity`, Nernst-Einstein ionic conductivity, Arrhenius fitting, or species-selective diffusion through group…

原文の言語: 英語

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職業分類
その他の生物科学者
説明

Prepare GPUMD elastic-constant calculations using the strain-fluctuation method. Use when the user needs `compute_elastic`, the full `C_ij` tensor, or elastic moduli (bulk, shear, Young's) from an anisotropic NPT trajectory.

原文の言語: 英語

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職業分類
物理学者
説明

Prepare GPUMD mechanics-type workflows: friction, deposition, impact, and other group-based interface simulations. Use when the user needs `add_spring`, ghost-atom setups, layered 2D material shearing, deposition event sampling, or impact/collision dynamics.

原文の言語: 英語

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職業分類
物理学者
説明

Prepare GPUMD harmonic phonon-dispersion calculations using `compute_phonon`, `kpoints.in`, and supercell replication. Use when the user needs harmonic phonons, `omega2.out`, `D.out`, phonon DOS, or a GPUMD-based starting point for lattice-dynamics analysis.

原文の言語: 英語

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職業分類
物理学者
説明

Prepare GPUMD thermal-transport workflows for EMD / HNEMD / NEMD / SHC / HNEMDEC. Use when the user needs `compute_hac`, `compute_hnemd`, `compute_hnemdec`, `compute_shc`, thermal-conductivity extraction, or transport-specific sampling and convergence…

原文の言語: 英語

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職業分類
データサイエンティスト
説明

Prepare dataset-curation and active-learning workflows around NepTrain and NepTrainKit. Use when the user needs perturbation-based sampling, representative-structure selection (FPS / max-min), automated NEP project scaffolding, interactive outlier inspection,…

原文の言語: 英語

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収集済み skill 35 件中 35 件を表示しています。