Gradient Monitored Reinforcement Learning

被引:5
作者
Abdul Hameed, Mohammed Sharafath [1 ]
Chadha, Gavneet Singh [1 ]
Schwung, Andreas [1 ]
Ding, Steven X. [2 ]
机构
[1] South Westphalia Univ Appl Sci, Dept Automat Technol, D-59494 Soest, Germany
[2] Univ Duisburg Essen, Dept Automat Control & Complex Syst, D-47057 Duisburg, Germany
基金
美国国家卫生研究院;
关键词
Training; Monitoring; Neural networks; Reinforcement learning; Optimization; Games; Task analysis; Atari games; deep neural networks (DNNs); gradient monitoring (GM); MuJoCo; multirobot coordination; OpenAI GYM; reinforcement learning (RL);
D O I
10.1109/TNNLS.2021.3119853
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
This article presents a novel neural network training approach for faster convergence and better generalization abilities in deep reinforcement learning (RL). Particularly, we focus on the enhancement of training and evaluation performance in RL algorithms by systematically reducing gradient's variance and, thereby, providing a more targeted learning process. The proposed method, which we term gradient monitoring (GM), is a method to steer the learning in the weight parameters of a neural network based on the dynamic development and feedback from the training process itself. We propose different variants of the GM method that we prove to increase the underlying performance of the model. One of the proposed variants, momentum with GM (M-WGM), allows for a continuous adjustment of the quantum of backpropagated gradients in the network based on certain learning parameters. We further enhance the method with the adaptive M-WGM (AM-WGM) method, which allows for automatic adjustment between focused learning of certain weights versus more dispersed learning depending on the feedback from the rewards collected. As a by-product, it also allows for automatic derivation of the required deep network sizes during training as the method automatically freezes trained weights. The method is applied to two discrete (real-world multirobot coordination problems and Atari games) and one continuous control task (MuJoCo) using advantage actor-critic (A2C) and proximal policy optimization (PPO), respectively. The results obtained particularly underline the applicability and performance improvements of the methods in terms of generalization capability.
引用
收藏
页码:4106 / 4119
页数:14
相关论文
共 50 条
[31]   Cooperative Multiagent Reinforcement Learning With Partial Observations [J].
Zhang, Yan ;
Zavlanos, Michael M. .
IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2024, 69 (02) :968-981
[32]   PyTAG: Tabletop Games for Multiagent Reinforcement Learning [J].
Balla, Martin ;
Long, George E. M. ;
Goodman, James ;
Gaina, Raluca D. ;
Perez-Liebana, Diego .
IEEE TRANSACTIONS ON GAMES, 2024, 16 (04) :993-1002
[33]   Adaptive spatial discretization using reinforcement learning [J].
Jemil Avers Butt ;
Andreas Wieser .
Applied Geomatics, 2023, 15 :327-336
[34]   State Augmented Constrained Reinforcement Learning: Overcoming the Limitations of Learning With Rewards [J].
Calvo-Fullana, Miguel ;
Paternain, Santiago ;
Chamon, Luiz F. O. ;
Ribeiro, Alejandro .
IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2024, 69 (07) :4275-4290
[35]   Adversary Agnostic Robust Deep Reinforcement Learning [J].
Qu, Xinghua ;
Gupta, Abhishek ;
Ong, Yew-Soon ;
Sun, Zhu .
IEEE TRANSACTIONS ON NEURAL NETWORKS AND LEARNING SYSTEMS, 2023, 34 (09) :6146-6157
[36]   Partial Consistency for Stabilizing Undiscounted Reinforcement Learning [J].
Gao, Haichuan ;
Yang, Zhile ;
Tan, Tian ;
Zhang, Tianren ;
Ren, Jinsheng ;
Sun, Pengfei ;
Guo, Shangqi ;
Chen, Feng .
IEEE TRANSACTIONS ON NEURAL NETWORKS AND LEARNING SYSTEMS, 2023, 34 (12) :10359-10373
[37]   Adaptive spatial discretization using reinforcement learning [J].
Butt, Jemil Avers ;
Wieser, Andreas .
APPLIED GEOMATICS, 2023, 15 (02) :327-336
[38]   Reinforcement Learning With Adaptive Policy Gradient Transfer Across Heterogeneous Problems [J].
Zhang, Gengzhi ;
Feng, Liang ;
Wang, Yu ;
Li, Min ;
Xie, Hong ;
Tan, Kay Chen .
IEEE TRANSACTIONS ON EMERGING TOPICS IN COMPUTATIONAL INTELLIGENCE, 2024, 8 (03) :2213-2227
[39]   Adaptive Natural Policy Gradient in Reinforcement Learning [J].
Li, Dazi ;
Qiao, Zengyuan ;
Song, Tianheng ;
Jin, Qibing .
PROCEEDINGS OF 2018 IEEE 7TH DATA DRIVEN CONTROL AND LEARNING SYSTEMS CONFERENCE (DDCLS), 2018, :605-610
[40]   MABSearch: The Bandit Way of Learning the Learning Rate-A Harmony Between Reinforcement Learning and Gradient Descent [J].
Hameed, A. S. Syed Shahul ;
Rajagopalan, Narendran .
NATIONAL ACADEMY SCIENCE LETTERS-INDIA, 2024, 47 (01) :29-34