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Divide et Impera: Decoding Impedance Strategies for Robotic Peg-in-Hole Assembly

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arxiv 2410.01054 v2 pith:PDEAX3SB submitted 2024-10-01 cs.RO

classification cs.RO
keywords impedanceassemblyroboticpatternspeg-in-holestrategiessuccessfultasks
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This paper investigates robotic peg-in-hole assembly using the Elementary Dynamic Actions (EDA) framework, which models contact-rich tasks through a combination of submovements, oscillations, and mechanical impedance. Rather than focusing on a single optimal parameter set, we analyze the distribution and structure of multiple successful impedance solutions, revealing patterns that guide impedance selection in contactrich robotic manipulation. Experiments with a real robot and four different peg types demonstrate the presence of task-specific and generalized assembly strategies, identified through K-means Clustering. Principal Component Analysis (PCA) is used to represent these findings, highlighting patterns in successful impedance selections. Additionally, a neural-network-based success predictor accurately estimates feasible impedance parameters, reducing the need for extensive trial-and-error tuning. By providing publicly available code, CAD files, and a trained model, this work enhances the accessibility of impedance control and offers a structured approach to programming robotic assembly tasks, particularly for less-experienced users.

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  1. Combining Movement Primitives with Contraction Theory

    cs.RO 2025-01 conditional novelty 4.0 of 10

    A modular DMP framework mixes discrete and rhythmic movement primitives in parallel or sequence, preserving independent scaling and rotation of each movement.

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