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An Extended Bandit Learning Game Approach
- Citation Author(s):
- Submitted by:
- Jun Dai
- Last updated:
- Tue, 05/23/2023 - 22:06
- DOI:
- 10.21227/m9d4-3d74
- License:
- Categories:
- Keywords:
Abstract
The extended bandit learning game algorithm can search the best solution for the hybrid discrete-continuous strategy space. At each learning time, the player can quickly decide based on a finite discrete strategy pool, thereby improving the learning efficiency. With the development of the learning time, the dynamic strategy pool can efficiently evolve to extend the whole hybrid discrete-continuous space, thereby avoiding missing the real best solution the hybrid discrete-continuous space. Therefore, the proposed extended bandit learning game algorithm can achieve the quick search for hybrid discrete-continuous strategy spaces, and offers high applicability for the hybrid discrete-continuous resource optimization problem in unknown dynamic scenarios.
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