run-train

tarafından lllllllama

We need to translate the given English text into Turkish, preserving the name "run-train" if it appears. The text is a description of a skill. The name "run-train" is not in the provided text? Actually, the text starts with "Rigor Train skill" - but the name to preserve is "run-train". The instruction says "Name to preserve: run-train" but the text does not contain "run-train". It contains "Rigor Train skill". Possibly the name is "Rigor Train" but the instruction says "run-train". I need to check: The user says "Name to preserve: run-train" and then provides text that starts with "Rigor Train skill". That might be a different name. The instruction says "Do not include the name unless it appears in the source text." So if "run-train" does not appear in the source text, I should not add it. The source text has "Rigor Train skill" - that is not "run-train". So I will translate the text as

npx skills add https://github.com/lllllllama/rigorpilot-skills --skill run-train

run-train

Use this as the Rigor Train skill. The installed slug remains run-train for compatibility.

Use the shared operating principles in ../../references/agent-operating-principles.md; this skill should keep training evidence bounded while leaving repository-specific monitoring details to the model.

When to apply

  • When the training command has already been selected and should be executed conservatively.
  • When the researcher wants startup verification, short-run verification, full training kickoff, or resume handling.
  • When the run needs structured training status, checkpoint, and metric reporting.

When not to apply

  • When the main task is environment setup or asset download.
  • When the researcher wants inference-only or evaluation-only execution.
  • When the task is speculative exploration, multi-variant sweeps, or autonomous idea implementation.
  • When the user still needs repository intake or paper gap resolution.

Clear boundaries

  • This skill executes a selected training command and normalizes the resulting evidence.
  • It does not choose the overall research goal on its own.
  • It does not own exploratory branching or speculative code adaptation.
  • It should record partial, blocked, resumed, and kicked-off states clearly.
  • It should preserve reproducibility context such as configs, seeds, checkpoints, logs, metrics, and runtime assumptions when available.

Input expectations

  • selected training goal
  • runnable training command
  • environment and asset assumptions
  • run mode such as startup verification, short-run verification, full kickoff, or resume

Output expectations

  • train_outputs/SUMMARY.md
  • train_outputs/COMMANDS.md
  • train_outputs/LOG.md
  • train_outputs/SCIENTIFIC_CHANGELOG.md
  • train_outputs/COMPARABILITY_REPORT.md
  • train_outputs/status.json

Notes

Use references/training-policy.md, ../../references/deep-learning-experiment-principles.md, scripts/run_training.py, and scripts/write_outputs.py.

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