
Deep Reinforcement Learning at the Edge of the Statistical Precipice with Rishabh Agarwal - #559
The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)
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Navigating Performance in Deep Reinforcement Learning
This chapter explores the development of a notable research paper in deep reinforcement learning, focusing on the challenges in evaluating algorithm performance. The discussion highlights the effects of random seed variability on results, revealing inconsistencies in existing literature and emphasizing the need for careful benchmarking in the field.
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