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CALVIN: A Benchmark for Language-Conditioned Policy Learning for Long-Horizon Robot Manipulation Tasks

6 Dec 2021arXiv:2112.03227archive 2025-07-28

Oier Mees, Lukas Hermann, Erick Rosete-Beas, Wolfram Burgard

General-purpose robots coexisting with humans in their environment must learn to relate human language to their perceptions and actions to be useful in a range of daily tasks. Moreover, they need to acquire a diverse repertoire of general-purpose skills that allow composing long-horizon tasks by following unconstrained language instructions. In this paper, we present CALVIN (Composing Actions from Language and Vision), an open-source simulated benchmark to learn long-horizon language-conditioned tasks. Our aim is to make it possible to develop agents that can solve many robotic manipulation tasks over a long horizon, from onboard sensors, and specified only via human language. CALVIN tasks are more complex in terms of sequence length, action space, and language than existing vision-and-language task datasets and supports flexible specification of sensor suites. We evaluate the agents in zero-shot to novel language instructions and to novel environments and objects. We show that a baseline model based on multi-context imitation learning performs poorly on CALVIN, suggesting that there is significant room for developing innovative agents that learn to relate human language to their world models with this benchmark.

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check_condition mees/calvin/calvin_models/calvin_agent/evaluation/multistep_sequences.py official repository ran MIT (permissive) · 907517ed3b614cc8 · report
count_success mees/calvin/calvin_models/calvin_agent/evaluation/utils.py official repository ran MIT (permissive) · 91e0e52c98282d15 · report
load_npz mees/calvin/calvin_models/calvin_agent/datasets/disk_dataset.py official repository ran MIT (permissive) · c0de2c3f2828b5a3 · report
load_pkl mees/calvin/calvin_models/calvin_agent/datasets/disk_dataset.py official repository ran MIT (permissive) · 3ffdb6fe27bf366d · report
update_state mees/calvin/calvin_models/calvin_agent/evaluation/multistep_sequences.py official repository ran MIT (permissive) · 916d58d0838c488b · report
valid_task mees/calvin/calvin_models/calvin_agent/evaluation/multistep_sequences.py official repository ran MIT (permissive) · 5879a63c0a8f823e · report
get_epoch mees/calvin/calvin_models/calvin_agent/evaluation/evaluate_policy.py official repository unverified MIT (permissive) · 256f624439688a69 · report
get_log_dir mees/calvin/calvin_models/calvin_agent/evaluation/utils.py official repository unverified MIT (permissive) · d85175948c443563 · report
setup_callbacks mees/calvin/calvin_models/calvin_agent/training.py official repository unverified MIT (permissive) · 8ab9acda1d0ae3ee · report
setup_logger mees/calvin/calvin_models/calvin_agent/training.py official repository unverified MIT (permissive) · c31080cd83cde26e · report

Tasks

Continuous ControlImitation LearningNatural Language Visual GroundingRobot ManipulationRobotic Grasping

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CALVIN

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