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Reinforcement learning using advantage estimates

Grant US12585917B2 Kind: B2 Mar 24, 2026

Assignee

Google LLC

Inventors

Shixiang Gu, Timothy Paul Lillicrap, Ilya Sutskever, Sergey Vladimir Levine

Abstract

Methods, systems, and apparatus, including computer programs encoded on a computer storage medium, for computing Q values for actions to be performed by an agent interacting with an environment from a continuous action space of actions. In one aspect, a system includes a value subnetwork configured to receive an observation characterizing a current state of the environment and process the observation to generate a value estimate; a policy subnetwork configured to receive the observation and process the observation to generate an ideal point in the continuous action space; and a subsystem configured to receive a particular point in the continuous action space representing a particular action; generate an advantage estimate for the particular action; and generate a Q value for the particular action that is an estimate of an expected return resulting from the agent performing the particular action when the environment is in the current state.

CPC Classifications

G06N 3/0427 G06N 3/08 G06N 3/042 G06N 3/092 G06N 3/0464 G06N 3/04 G06N 3/045 G06N 3/0455 G06N 3/084 G06N 3/09 G06N 3/044 G06N 3/0442 G06N 3/047 G06N 3/0475 G06N 3/088 G06N 3/091 G06N 3/094 G06N 20/00 G06T 2207/20081

Filing Date

2022-03-25

Application No.

17704721

Claims

21