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A Markov Game model for valuing actions, locations, and team performance in ice hockey
by
Zhao, Zeyu
, Schulte, Oliver
, Khademi, Mahmoud
, Desaulniers, Philippe
, Javan, Mehrsan
, Gholami, Sajjad
in
Artificial Intelligence
/ Chemistry and Earth Sciences
/ Computer Science
/ Data Mining and Knowledge Discovery
/ Dynamic programming
/ Formalism
/ Hockey
/ Ice hockey
/ Information Storage and Retrieval
/ Machine learning
/ Markov chains
/ Physics
/ Players
/ Professional hockey
/ Sports Analytics
/ Statistics for Engineering
2017
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A Markov Game model for valuing actions, locations, and team performance in ice hockey
by
Zhao, Zeyu
, Schulte, Oliver
, Khademi, Mahmoud
, Desaulniers, Philippe
, Javan, Mehrsan
, Gholami, Sajjad
in
Artificial Intelligence
/ Chemistry and Earth Sciences
/ Computer Science
/ Data Mining and Knowledge Discovery
/ Dynamic programming
/ Formalism
/ Hockey
/ Ice hockey
/ Information Storage and Retrieval
/ Machine learning
/ Markov chains
/ Physics
/ Players
/ Professional hockey
/ Sports Analytics
/ Statistics for Engineering
2017
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Do you wish to request the book?
A Markov Game model for valuing actions, locations, and team performance in ice hockey
by
Zhao, Zeyu
, Schulte, Oliver
, Khademi, Mahmoud
, Desaulniers, Philippe
, Javan, Mehrsan
, Gholami, Sajjad
in
Artificial Intelligence
/ Chemistry and Earth Sciences
/ Computer Science
/ Data Mining and Knowledge Discovery
/ Dynamic programming
/ Formalism
/ Hockey
/ Ice hockey
/ Information Storage and Retrieval
/ Machine learning
/ Markov chains
/ Physics
/ Players
/ Professional hockey
/ Sports Analytics
/ Statistics for Engineering
2017
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A Markov Game model for valuing actions, locations, and team performance in ice hockey
Journal Article
A Markov Game model for valuing actions, locations, and team performance in ice hockey
2017
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Overview
We apply the Markov Game formalism to develop a context-aware approach to valuing player actions, locations, and team performance in ice hockey. The Markov Game formalism uses machine learning and AI techniques to incorporate context and look-ahead. Dynamic programming is applied to learn value functions that quantify the impact of actions on goal scoring. Learning is based on a massive new dataset, from SportLogiq, that contains over 1.3M events in the National Hockey League. The SportLogiq data include the location of an action, which has previously been unavailable in hockey analytics. We give examples showing how the model assigns context and location aware values to a large set of 13 action types. Team performance can be assessed as the aggregate value of actions performed by the team’s players, or the aggregate value of states reached by the team. Model validation shows that the total team action and state value both provide a strong indicator predictor of team success, as measured by the team’s average goal ratio.
Publisher
Springer US,Springer Nature B.V
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