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December 5, 2025Scientific Reports2 citationsOpen Access

Visual imitation learning from one-shot demonstration for multi-step robot pick and place tasks

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SLShuang LuCHChristian HärdtleinJSJohannes Schilp

Key Points

  • The framework shows that a single video can guide robots in multi-step tasks, enhancing efficiency.
  • Skill learning via Dynamic Movement Primitives enables adaptation to new object positions reliably.
  • Object detection and hand detection improve task understanding for robots in varied environments.
  • These findings support more flexible programming in industrial robot applications while reducing data needs.

Abstract

Abstract Imitation learning provides an intuitive approach for robot programming by enabling robots to learn directly from human demonstrations. While recent visual imitation learning methods have shown promise, they often depend on large datasets, which limits their applicability in manufacturing scenarios where tasks and objects are highly specialized. This paper proposes a one-shot visual imitation learning framework that allows robots to acquire multi-step pick & place tasks from a single video demonstration. The framework integrates hand detection, object detection, trajectory segmentation, and skill learning through Dynamic Movement Primitives (DMPs). Hand trajectories are mapped to the robot’s end-effector, enabling the system to generalize to new object positions while significantly reducing data requirements. The approach is evaluated in simulation and achieves reliable reproduction of multi-step tasks. These results demonstrate the potential of one-shot visual imitation learning to reduce programming complexity and increase flexibility for industrial robot applications.

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Cite This Study

Lu et al. (2025) studied this question.

synapsesocial.com/papers/694022492d562116f28fbe1ahttps://doi.org/10.1038/s41598-025-30938-x
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Also Consider

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  1. 1Visual Imitation Learning from One-Shot Demonstration for Multi-Step Robot Pick-and-Place Tasks2024
  2. 2Visual Imitation Learning from One-Shot Demonstration for Multi-Step Robot Pick-and-Place Tasks2024
  3. 3Annotation-Free One-Shot Imitation Learning for Multi-Step Manipulation Tasks2025
  4. 4DITTO: Demonstration Imitation by Trajectory Transformation2024
  5. 5Direct Imitation Learning-based Visual Servoing using the Large Projection Formulation2024