Expected reward blows up while training (DDPG agent, reinforcement learning)
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I am training a DDPG network and after training for around 5000 iterations, the model seems doesnot seem to converge while the expected reward keeps on increasing exponentially. What can be a possible reason and how to solve the issue.
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Emmanouil Tzorakoleftherakis
2020 年 10 月 12 日
編集済み: Emmanouil Tzorakoleftherakis
2020 年 10 月 12 日
Hello,
This answer may be helpful.
I would make sure your reward signal outputs values that make sense, and also possibly simplify the critic network.
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