Towards a Hands-Free Query Optimizer through Deep Learning
September 26, 2018 Β· Declared Dead Β· π Conference on Innovative Data Systems Research
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Authors
Ryan Marcus, Olga Papaemmanouil
arXiv ID
1809.10212
Category
cs.DB: Databases
Citations
74
Venue
Conference on Innovative Data Systems Research
Last Checked
5 months ago
Abstract
Query optimization remains one of the most important and well-studied problems in database systems. However, traditional query optimizers are complex heuristically-driven systems, requiring large amounts of time to tune for a particular database and requiring even more time to develop and maintain in the first place. In this vision paper, we argue that a new type of query optimizer, based on deep reinforcement learning, can drastically improve on the state-of-the-art. We identify potential complications for future research that integrates deep learning with query optimization, and we describe three novel deep learning based approaches that can lead the way to end-to-end learning-based query optimizers.
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