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{"n_games":456,"n_skipped":0,"n_with_skill":456,"n_with_hint":0,"steps_covered":21,"step_min":0,"ste(...TRUNCATED)
[{"generation":"gen_0000","step":0,"filename":"game_00000_000_api_orchestration.py","skill":"API Orc(...TRUNCATED)

qwen3-4B-Instruct-0630-tooluse-eval-aligned-r32 — generated environments

Environments generated by the SPARE proposer during training run 050mlekj (qwen3-4B-Instruct-0630-tooluse-eval-aligned-r32), recovered from the spare-viz durable cache. The run's scratch directory no longer exists; this dataset is the surviving copy.

Games 456
Steps covered 21 (step 0–448)
With recovered skill 456
With hint 0
Actor / proposer model /workspace/spare-workspace/Qwen3-4B-Instruct-2507
WandB segments 050mlekj

Layout

manifest.json                                  authoritative games list
games/gen_<NNNN>/game_<NNNNN>_<NNN>_<slug>.py  one environment per file

generation numbers are dense over the training steps actually captured; the true training step is the step field. Each game exposes the standard SPARE contract (reset(seed=None), step(action) -> (obs, reward, terminated, truncated, info)).

Loading

Load games through the project loader, not a bare import — it injects the common stdlib names and the ToolUseBaseEnv / TerminalBaseEnv base classes that generated games subclass without importing:

from spare.core.envs.synthetic_game_env import make_synthetic_env
env = make_synthetic_env("games/gen_0000/game_00000_000_api_orchestration.py")
obs, info = env.reset(seed=0)
obs, reward, terminated, truncated, info = env.step("...")

Caveats

  • Partial step coverage. The viz extractor pulls newest-first with a call budget, so a run's captured steps are a subset of the steps it trained.
  • No joined rewards. Weave payloads for these runs predate the reward join; mean_reward/solve_rate are null where reward_joined is false.
  • skill / difficulty are parsed from the proposer prompt, not from a stored label.

Rendered in the env gallery via SPARE_VIZ_ENV_DATASETS=<rid>=<this dataset>.

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