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Generalizable Long-Horizon Manipulations with Large Language Models

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arxiv 2310.02264 v1 pith:5WKQWEC2 submitted 2023-10-03 cs.RO cs.CLcs.CVcs.LG

classification cs.ROcs.CLcs.CVcs.LG
keywords tasklong-horizontasksconditionsframeworkgeneralizablelanguagelarge
verification ladder T0 review T1 audit T2 compute T3 formal
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This work introduces a framework harnessing the capabilities of Large Language Models (LLMs) to generate primitive task conditions for generalizable long-horizon manipulations with novel objects and unseen tasks. These task conditions serve as guides for the generation and adjustment of Dynamic Movement Primitives (DMP) trajectories for long-horizon task execution. We further create a challenging robotic manipulation task suite based on Pybullet for long-horizon task evaluation. Extensive experiments in both simulated and real-world environments demonstrate the effectiveness of our framework on both familiar tasks involving new objects and novel but related tasks, highlighting the potential of LLMs in enhancing robotic system versatility and adaptability. Project website: https://object814.github.io/Task-Condition-With-LLM/

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Cited by 1 Pith paper

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  1. A Real-to-Sim-to-Real Approach to Robotic Manipulation with VLM-Generated Iterative Keypoint Rewards

    cs.RO 2025-02 conditional novelty 6.0 of 10

    IKER uses VLM-generated keypoint rewards to train manipulation policies in simulation that transfer to a real robot, enabling multi-step tasks and replanning.

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