Papers › Deep Reinforcement Learning using Genetic Algorithm for Parameter Optimization
Deep Reinforcement Learning using Genetic Algorithm for Parameter Optimization
Adarsh Sehgal, Hung Manh La, Sushil J. Louis, Hai Nguyen
Reinforcement learning (RL) enables agents to take decision based on a reward function. However, in the process of learning, the choice of values for learning algorithm parameters can significantly impact the overall learning process. In this paper, we use a genetic algorithm (GA) to find the values of parameters used in Deep Deterministic Policy Gradient (DDPG) combined with Hindsight Experience Replay (HER), to help speed up the learning agent. We used this method on fetch-reach, slide, push, pick and place, and door opening in robotic manipulation tasks. Our experimental evaluation shows that our method leads to better performance, faster than the original algorithm.
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Syntology Ran 3 of 13 code samples harvested from 1 repository linked to this paper; 10 have no recorded run. Of those that ran: 2 ran · our draft was wrong; 1 ran with no contract checked.
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Code Syntology ran Syntology
13 samples harvested; 3 ran; 0 honoured the contract we drafted; 10 have no recorded run. Read from Syntology's graph 2026-09-24; that is when this build read the record, not when the samples ran.
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Harvested from aralab-unr/ReinforcementLearningWithGA. Some samples are identical code Syntology first harvested from another repository; for those, this paper's copy is not located and its licence is not recorded. “Ran” means the sample executed on a synthesized input. It does not mean the output is correct, and nothing here reproduces the paper's results. “Honoured” and “violated” refer to a contract Syntology drafted from the code itself; “our draft was wrong” and “fixture could not drive it” are failures of Syntology's instrument, not of the code.
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