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Foundations of Deep Reinforcement Learning: Theory and Practice in Python
book

Foundations of Deep Reinforcement Learning: Theory and Practice in Python

by Laura Graesser, Wah Loon Keng
December 2019
Intermediate to advanced
416 pages
12h 34m
English
Addison-Wesley Professional
Content preview from Foundations of Deep Reinforcement Learning: Theory and Practice in Python

Index

A

A2C, see Advantage Actor-Critic

A3C, see Asynchronous Advantage Actor-Critic

absolute error, 172

accidental exclusion, 301–302, 306

Achiam, Joshua, 168, 172

act method (PyTorch), 35

act method (SLM Lab), 39

action design for humans, see user interface (UI)

action space, 5, 316

continuous, 13, 205–206, 321

discrete, 13, 65, 81, 205–206

vs. state space, 322–323

actions, 2, 315–326

absolute vs. relative, 319, 321–323

bijecting, 320, 323

cardinality of, 316

combined, 317

completeness of, 318–319

complexity of, 319–323

continuous vs. discrete, 316, 319

debugging manually, 220

encoded as tensors, 316

entropy of, 143, 220

mapping to states, 3

probability of, 220

reinforcing, 3, 25

skipping, 312–313

symmetric, 322–323

actions-per-minute (APM), ...

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Publisher Resources

ISBN: 9780135172490