Simulation Training System for Parafoil Motion Controller Based on Actor–Critic RL Approach

Author:

He Xi1,Liu Jingnan1,Zhao Jing1,Xu Ronghua2,Liu Qi2,Wan Jincheng2,Yu Gang3

Affiliation:

1. GNSS Research Center, Wuhan University, Wuhan 430072, China

2. Aviation Industry Corporation of China Aerospace Life Support Industries Ltd., Xiangyang 441003, China

3. School of Mechanical Engineering, Hubei University of Arts and Science, Xiangyang 441053, China

Abstract

The unique ram air aerodynamic shape and control rope pulling course of the parafoil system make it difficult to realize its precise control. At present, the commonly used control methods of the parafoil system include proportional–integral–derivative (PID) control, model predictive control, and adaptive control. The control precision of PID control and model predictive control is low, while the adaptive control has the problems of complexity and high cost. This study proposes a new method to improve the control precision of the parafoil system by establishing a parafoil motion simulation training system that trains the neural network controllers based on actor–critic reinforcement learning (RL). Simulation results verify the feasibility of the proposed parafoil motion-control-simulation training system. Furthermore, the test results of the real flight experiment based on the motion controller trained by the proximal policy optimization (PPO) algorithm are presented, which are close to the simulation results.

Funder

Major State Basic Research Development Programme of China

Ministry of Education G China Mobile Scientific Research Fund

Publisher

MDPI AG

Reference33 articles.

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