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Forced to play too many matches? A deep-learning assessment of crowded schedule

Academic Article
Publication Date:
2023
Short description:
Forced to play too many matches? A deep-learning assessment of crowded schedule / Cabras, Stefano; Delogu, Marco; TENA HORRILLO, J. - In: APPLIED ECONOMICS. - ISSN 0003-6846. - 55:52(2023), pp. 6187-6204. [10.1080/00036846.2022.2141462]
abstract:
Do important upcoming or recent scheduled tasks affect the current productivity of working teams? How is the impact (if any) modified according to team size or by external conditions faced by workers? We study this issue using association football data where team performance is clearly defined and publicly observed before and after completing different activities (football matches). UEFA Champions League (CL) games affect European domestic league
matches in a quasi-random fashion. We estimate this effect using a deep learning model. This approach is instrumental in estimating performance under ‘what if’ situations required in a causal analysis. We find that dispersion of attention and effort to different tournaments significantly worsens domestic performance before/after playing the CL match. However, the size of
the impact is higher in the latter case. Our results suggest that this distortion is higher for small teams and that, compared to home teams, away teams react more conservatively by increasing
their probability of drawing.
Iris type:
1.1 Articolo in rivista
Keywords:
multitasking, causal analysis, deep learning, sports economics
List of contributors:
Cabras, Stefano; Delogu, Marco; TENA HORRILLO, J
Authors of the University:
DELOGU Marco
TENA HORRILLO Juan de Dios
Handle:
https://iris.uniss.it/handle/11388/300444
Published in:
APPLIED ECONOMICS
Journal
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URL

https://www.tandfonline.com/doi/full/10.1080/00036846.2022.2141462?scroll=top&needAccess=true&role=tab
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