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The author presents a rapidly convergent algorithm to solve the general portfolio problem of maximizing concave utility functions subject to linear constraints. The algorithm is based on an iterative ...
One simple illustration is K-nearest neighbor algorithm used for classification. It can be applied to digitizing hand-written characters, detecting hidden packages, etc.
In this article, I want to provide a simple guide that explains reinforcement learning and give you some practical examples of how it is used today.
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