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Global Sensitive-Based Input Shaping for UAV-Payload Precision Motion Control

Karan Baker, Sanjay Maharjan, Tariq Hlayel, Oladapo Ogunbodede, Dutch Dunphy, Adrian Stein

arXiv:2607.26717Published July 29, 2026Updated August 11, 20260 citations
  • eess.SY
  • cs.RO

Abstract

This work presents a comprehensive analysis and design of global sensitivity-based input shapers for a 3D Unmanned Aerial Vehicle-payload system, emphasizing robustness against uncertainties in payload mass and rope length. The proposed approach also leverages the Shapley value concept in controller design to systematically account for uncertainties, thereby reducing the controller's sensitivity to unknown parameters. To validate the effectiveness of the methodology, numerical simulations are conducted, comparing the proposed controller against non-robust, robust, and minimax designs. The results demonstrate that the standard global sensitivity or Shapley-based input shapers improve performance and offer a promising framework for uncertainty-aware control in aerial payload transport.

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