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Denis Steckelmacher

13 papers hereh-index 8647 citations30 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • first author2
  • middle author10
  • last author1

Across the 13 of 13 papers where every author was matched, so the position is known.

fields
  • cs.LG6
  • cs.AI5
  • cs.RO2

identity via Semantic Scholar / OpenAlex

activity
20172026
most citedOptimistic Reinforcement Learning-Based Skill Insertions for Task and Motion Planning

3 citations · 10 across the 11 of their papers we have counts for

collaborators
Showing 2019Show all

3 papers · 1 filter

cs.AI2019★ 1 cited

Transfer Learning Across Simulated Robots With Different Sensors

Hélène Plisnier, Denis Steckelmacher, Diederik Roijers +1

For a robot to learn a good policy, it often requires expensive equipment (such as sophisticated sensors) and a prepared training environment conducive to learning. However, it is…

cs.LG2019

Sample-Efficient Model-Free Reinforcement Learning with Off-Policy Critics

Denis Steckelmacher, Hélène Plisnier, Diederik M. Roijers +1

Value-based reinforcement-learning algorithms provide state-of-the-art results in model-free discrete-action settings, and tend to outperform actor-critic algorithms. We argue that…

cs.AI2019★ 3 cited

The Actor-Advisor: Policy Gradient With Off-Policy Advice

Hélène Plisnier, Denis Steckelmacher, Diederik M. Roijers +1

Actor-critic algorithms learn an explicit policy (actor), and an accompanying value function (critic). The actor performs actions in the environment, while the critic evaluates the…

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