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Illuminating Generalization in Deep Reinforcement Learning through Procedural Level Generation

  • Niels Justesen
    ,
  • Ruben Rodriguez Torrado
    ,
  • Philip Bontrager
    ,
  • Ahmed Khalifa
    ,
  • Julian Togelius
    ,
  • New York University
Research Output:
Contribution to conference - NOT published in proceeding or journal
Paper

Open access

Publication Information

Output type

Research Output:
Contribution to conference - NOT published in proceeding or journal
Paper

Original language

English

Publication milestones

  • Published - 2018

Publication status

Published - 2018

Abstract

Deep reinforcement learning (RL) has shown impressive results in a variety of domains, learning directly from high-dimensional sensory streams. However, when neural networks are trained in a fixed environment, such as a single level in a video game, they will usually overfit and fail to generalize to new levels. When RL models overfit, even slight modifications to the environment can result in poor agent performance. This paper explores how procedurally generated levels during training can increase generality. We show that for some games procedural level generation enables generalization to new levels within the same distribution. Additionally, it is possible to achieve better performance with less data by manipulating the difficulty of the levels in response to the performance of the agent. The generality of the learned behaviors is also evaluated on a set of human-designed levels. The results suggest that the ability to generalize to human-designed levels highly depends on the design of the level generators. We apply dimensionality reduction and clustering techniques to visualize the generators’ distributions of levels and analyze to what degree they can produce levels similar to those designed by a human.

Related Event

Title

NeurIPS Workshop on Deep Reinforcement Learning Workshop

Event type

Conference

Degree of recognition

International event

Date

07/12/2018 - 07/12/2018

Location

Palais des Congrès de MontréalMontréalCanada