Trajectory Planning With Deep Reinforcement Learning in High-Level Action Spaces

被引:11
作者
Williams, Kyle R. [1 ]
Schlossman, Rachel [1 ]
Whitten, Daniel [1 ]
Ingram, Joe
Musuvathy, Srideep [1 ]
Pagan, James [1 ]
Williams, Kyle A. [1 ]
Green, Sam [2 ]
Patel, Anirudh [2 ]
Mazumdar, Anirban [3 ]
Parish, Julie [1 ]
机构
[1] Sandia Natl Labs, Albuquerque, CA 94551 USA
[2] Semiot Labs, Los Altos, CA 94022 USA
[3] Georgia Inst Technol, Atlanta, GA 30332 USA
关键词
Trajectory; Planning; Trajectory planning; Training; Reinforcement learning; Optimization; Aerodynamics; OPTIMIZATION;
D O I
10.1109/TAES.2022.3218496
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This article presents a technique for trajectory planning based on parameterized high-level actions. These high-level actions are subtrajectories that have variable shape and duration. The use of high-level actions can improve the performance of guidance algorithms. Specifically, we show how the use of high-level actions improves the performance of guidance policies that are generated via reinforcement learning (RL). RL has shown great promise for solving complex control, guidance, and coordination problems but can still suffer from long training times and poor performance. This work shows how the use of high-level actions reduces the required number of training steps and increases the path performance of an RL-trained guidance policy. We demonstrate the method on a space-shuttle guidance example. We show the proposed method increases the path performance (latitude range) by 18% compared with a baseline RL implementation. Similarly, we show the proposed method achieves steady state during training with approximately 75% fewer training steps. We also show how the guidance policy enables effective performance in an obstacle field. Finally, this article develops a loss function term for policy-gradient-based deep RL, which is analogous to an antiwindup mechanism in feedback control. We demonstrate that the inclusion of this term in the underlying optimization increases the average policy return in our numerical example.
引用
收藏
页码:2513 / 2529
页数:17
相关论文
共 50 条
[31]   Trajectory Design and Resource Allocation for Multi-UAV Networks: Deep Reinforcement Learning Approaches [J].
Chang, Zheng ;
Deng, Hengwei ;
You, Li ;
Min, Geyong ;
Garg, Sahil ;
Kaddoum, Georges .
IEEE TRANSACTIONS ON NETWORK SCIENCE AND ENGINEERING, 2023, 10 (05) :2940-2951
[32]   DeepGame-TP: Integrating Dynamic Game Theory and Deep Learning for Trajectory Planning [J].
Lucente, Giovanni ;
Maarssoe, Mikkel Skov ;
Konthala, Sanath Himasekhar ;
Abulehia, Anas ;
Dariani, Reza ;
Schindler, Julian .
IEEE OPEN JOURNAL OF INTELLIGENT TRANSPORTATION SYSTEMS, 2024, 5 :873-888
[33]   Deep reinforcement learning-based reactive trajectory planning method for UAVs [J].
Cao, Lijia ;
Wang, Lin ;
Liu, Yang ;
Xu, Weihong ;
Geng, Chuang .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2024, 238 (10) :1018-1037
[34]   Deep reinforcement learning trajectory planning for vibration suppression via jerk control [J].
Park, Sung Gwan ;
Rhim, Sungsoo .
2023 20TH INTERNATIONAL CONFERENCE ON UBIQUITOUS ROBOTS, UR, 2023, :818-824
[35]   Deep Reinforcement Learning for Real-Time Trajectory Planning in UAV Networks [J].
Li, Kai ;
Ni, Wei ;
Tovar, Eduardo ;
Guizani, Mohsen .
2020 16TH INTERNATIONAL WIRELESS COMMUNICATIONS & MOBILE COMPUTING CONFERENCE, IWCMC, 2020, :958-963
[36]   Optimizing Robotic Task Sequencing and Trajectory Planning on the Basis of Deep Reinforcement Learning [J].
Dong, Xiaoting ;
Wan, Guangxi ;
Zeng, Peng ;
Song, Chunhe ;
Cui, Shijie .
BIOMIMETICS, 2024, 9 (01)
[37]   Survey of Deep Reinforcement Learning for Motion Planning of Autonomous Vehicles [J].
Aradi, Szilard .
IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS, 2022, 23 (02) :740-759
[38]   Strategic Workforce Planning with Deep Reinforcement Learning [J].
Smit, Yannick ;
Den Hengst, Floris ;
Bhulai, Sandjai ;
Mehdad, Ehsan .
MACHINE LEARNING, OPTIMIZATION, AND DATA SCIENCE, LOD 2022, PT II, 2023, 13811 :108-122
[39]   Deep Reinforcement Learning for Joint Trajectory Planning, Transmission Scheduling, and Access Control in UAV-Assisted Wireless Sensor Networks [J].
Luo, Xiaoling ;
Chen, Che ;
Zeng, Chunnian ;
Li, Chengtao ;
Xu, Jing ;
Gong, Shimin .
SENSORS, 2023, 23 (10)
[40]   Design and Experimental Validation of Deep Reinforcement Learning-Based Fast Trajectory Planning and Control for Mobile Robot in Unknown Environment [J].
Chai, Runqi ;
Niu, Hanlin ;
Carrasco, Joaquin ;
Arvin, Farshad ;
Yin, Hujun ;
Lennox, Barry .
IEEE TRANSACTIONS ON NEURAL NETWORKS AND LEARNING SYSTEMS, 2024, 35 (04) :5778-5792