Raffin, Antonin (2025) Enabling Reinforcement Learning on Real Robots. Dissertation, TUM.
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Offizielle URL: https://mediatum.ub.tum.de/?id=1743420
Kurzfassung
This dissertation makes several contributions to the training of reinforcement learning agents directly on real robots. It introduces a reliable software suite and a new exploration strategy to replace the standard step-based one. The thesis also explores additional types of expert knowledge to guide RL, focusing on an elastic neck and quadruped locomotion. The presented approaches are extensively validated through experiments on four different robots.
| elib-URL des Eintrags: | https://elib.dlr.de/221225/ | ||||||||||||||||
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| Dokumentart: | Hochschulschrift (Dissertation) | ||||||||||||||||
| Titel: | Enabling Reinforcement Learning on Real Robots | ||||||||||||||||
| Autoren: |
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| DLR-Supervisor: |
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| Datum: | 15 Dezember 2025 | ||||||||||||||||
| Open Access: | Ja | ||||||||||||||||
| Seitenanzahl: | 128 | ||||||||||||||||
| Status: | veröffentlicht | ||||||||||||||||
| Stichwörter: | reinforcement learning, robotics | ||||||||||||||||
| Institution: | TUM | ||||||||||||||||
| Abteilung: | School of Computation, Information and Technology | ||||||||||||||||
| HGF - Forschungsbereich: | Luftfahrt, Raumfahrt und Verkehr | ||||||||||||||||
| HGF - Programm: | Raumfahrt | ||||||||||||||||
| HGF - Programmthema: | Robotik | ||||||||||||||||
| DLR - Schwerpunkt: | Raumfahrt | ||||||||||||||||
| DLR - Forschungsgebiet: | R RO - Robotik | ||||||||||||||||
| DLR - Teilgebiet (Projekt, Vorhaben): | R - Autonome, lernende Roboter [RO] | ||||||||||||||||
| Standort: | Oberpfaffenhofen | ||||||||||||||||
| Institute & Einrichtungen: | Institut für Robotik und Mechatronik (ab 2013) | ||||||||||||||||
| Hinterlegt von: | Raffin, Antonin | ||||||||||||||||
| Hinterlegt am: | 13 Jan 2026 08:14 | ||||||||||||||||
| Letzte Änderung: | 13 Jan 2026 08:14 |
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