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Pregled bibliografske jedinice broj: 1130211

Modeling In-Match Sports Dynamics Using the Evolving Probability Method


Šarčević, Ana; Pintar, Damir; Vranić, Mihaela; Gojsalić, Ante
Modeling In-Match Sports Dynamics Using the Evolving Probability Method // Applied Sciences-Basel, 11(10) (2021), 4429, 22 doi:10.3390/app11104429 (međunarodna recenzija, članak, znanstveni)


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Naslov
Modeling In-Match Sports Dynamics Using the Evolving Probability Method

Autori
Šarčević, Ana ; Pintar, Damir ; Vranić, Mihaela ; Gojsalić, Ante

Izvornik
Applied Sciences-Basel (2076-3417) 11(10) (2021); 4429, 22

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
Bayes estimation ; Markov process ; Monte Carlo simulation ; non-iid distribution ; predictive model ; psychological momentum

Sažetak
The prediction of sport event results has always drawn attention from a vast variety of different groups of people, such as club managers, coaches, betting companies, and the general population. The specific nature of each sport has an important role in the adaption of various predictive techniques founded on different mathematical and statistical models. In this paper, a common approach of modeling sports with a strongly defined structure and a rigid scoring system that relies on an assumption of independent and identical point distributions is challenged. It is demonstrated that such models can be improved by introducing dynamics into the match models in the form of sport momentums. Formal mathematical models for implementing these momentums based on conditional probability and empirical Bayes estimation are proposed, which are ultimately combined through a unifying hybrid approach based on the Monte Carlo simulation. Finally, the method is applied to real-life volleyball data demonstrating noticeable improvements over the previous approaches when it comes to predicting match outcomes. The method can be implemented into an expert system to obtain insight into the performance of players at different stages of the match or to study field scenarios that may arise under different circumstances.

Izvorni jezik
Engleski

Znanstvena područja
Računarstvo



POVEZANOST RADA


Ustanove:
Fakultet elektrotehnike i računarstva, Zagreb

Profili:

Avatar Url Mihaela Vranić (autor)

Avatar Url Damir Pintar (autor)

Avatar Url Ana Šarčević (autor)

Poveznice na cjeloviti tekst rada:

doi www.mdpi.com

Citiraj ovu publikaciju:

Šarčević, Ana; Pintar, Damir; Vranić, Mihaela; Gojsalić, Ante
Modeling In-Match Sports Dynamics Using the Evolving Probability Method // Applied Sciences-Basel, 11(10) (2021), 4429, 22 doi:10.3390/app11104429 (međunarodna recenzija, članak, znanstveni)
Šarčević, A., Pintar, D., Vranić, M. & Gojsalić, A. (2021) Modeling In-Match Sports Dynamics Using the Evolving Probability Method. Applied Sciences-Basel, 11(10), 4429, 22 doi:10.3390/app11104429.
@article{article, author = {\v{S}ar\v{c}evi\'{c}, Ana and Pintar, Damir and Vrani\'{c}, Mihaela and Gojsali\'{c}, Ante}, year = {2021}, pages = {22}, DOI = {10.3390/app11104429}, chapter = {4429}, keywords = {Bayes estimation, Markov process, Monte Carlo simulation, non-iid distribution, predictive model, psychological momentum}, journal = {Applied Sciences-Basel}, doi = {10.3390/app11104429}, volume = {11(10)}, issn = {2076-3417}, title = {Modeling In-Match Sports Dynamics Using the Evolving Probability Method}, keyword = {Bayes estimation, Markov process, Monte Carlo simulation, non-iid distribution, predictive model, psychological momentum}, chapternumber = {4429} }
@article{article, author = {\v{S}ar\v{c}evi\'{c}, Ana and Pintar, Damir and Vrani\'{c}, Mihaela and Gojsali\'{c}, Ante}, year = {2021}, pages = {22}, DOI = {10.3390/app11104429}, chapter = {4429}, keywords = {Bayes estimation, Markov process, Monte Carlo simulation, non-iid distribution, predictive model, psychological momentum}, journal = {Applied Sciences-Basel}, doi = {10.3390/app11104429}, volume = {11(10)}, issn = {2076-3417}, title = {Modeling In-Match Sports Dynamics Using the Evolving Probability Method}, keyword = {Bayes estimation, Markov process, Monte Carlo simulation, non-iid distribution, predictive model, psychological momentum}, chapternumber = {4429} }

Časopis indeksira:


  • Current Contents Connect (CCC)
  • Web of Science Core Collection (WoSCC)
    • Science Citation Index Expanded (SCI-EXP)
    • SCI-EXP, SSCI i/ili A&HCI
  • Scopus


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