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env-ssl-wrapper

One line turns any simulator's environment — gymnasium, dm_control, isaac, maniskill, pybullet, robosuite, pufferlib — into the same torch-native interface.

Install

pip install env-ssl-wrapper

Usage

import torch
from env_ssl_wrapper import compose_env

env = compose_env(
    any_env,                                 # any env from any sim
    ('tensor', dict(device='cpu')),          # wrap with whatever you need
    'done_tracker',
)

obs, info = env.reset()                      # torch.float32, batched
while not env.all_done:
    actions = torch.randint(0, 2, (8,))
    obs, reward, terminated, truncated, info = env.step(actions)

Works identically for every simulator.

Wrappers

Pass wrappers as strings (default config) or (name, dict) tuples (custom config), in any order.

Wrapper What it does
standardize Normalizes any sim's step/reset signatures, vectorization, and autoreset into (obs, reward, terminated, truncated, info). Applied automatically.
time_limit Caps episodes, sets truncated=True. ('time_limit', dict(max_timesteps=200))
done_tracker Tracks per-env episode_lengths, exposes env.all_done / env.needs_reset.
pad_episodes Standardizes padding for uneven vectorized episodes: done envs emit zeros (float/int) / False (bool) obs, and rewards are zeroed from the step after termination onward (the terminating step's own reward is the real terminal transition reward and is preserved). Applied automatically to vectorized envs. Works for autoreset (Isaac, gymnasium) and non-autoreset (pufferlib, maniskill) envs alike.
auto_batch Gives single envs a leading batch dim: (4,)(1, 4).
action_transform Rescales actions from a canonical (0, 1) range to the env's bounds.
tensor NumPy → torch on a device, torch actions → numpy for the sim.
flatten_obs Flattens dict/tuple observations into a single vector.

Every env emits the same contract: obs torch.float32, rewards torch.float32, terminated/truncated torch.bool. env.seed(n) works on every sim.

Terminated envs are uniformly padded (zeros / False obs; rewards zeroed only after the terminating step, so the terminal transition's reward is never lost), and info['final_observation'] — the true terminal obs, frozen per env and re-emitted while the env stays done — is always present once any env has terminated, with info['_final_observation'] masking which envs it applies to. env.is_done always reflects the per-env done mask.

Mock sims

env_ssl_wrapper.mocks ships dependency-free stand-ins emulating each simulator's quirks (GymnasiumMockEnv, IsaacMockEnv, DMControlMockEnv, ...) for testing your code without installing the real sims.

from env_ssl_wrapper.mocks import IsaacMockEnv
env = compose_env(IsaacMockEnv(), 'tensor', 'done_tracker')

Tests

uv sync --extra test
uv run pytest tests/test_real_envs.py

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