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Multi-task learning for jersey number recognition in Ice Hockey

Authors :
Vats, Kanav
Fani, Mehrnaz
Clausi, David A.
Zelek, John
Publication Year :
2021

Abstract

Identifying players in sports videos by recognizing their jersey numbers is a challenging task in computer vision. We have designed and implemented a multi-task learning network for jersey number recognition. In order to train a network to recognize jersey numbers, two output label representations are used (1) Holistic - considers the entire jersey number as one class, and (2) Digit-wise - considers the two digits in a jersey number as two separate classes. The proposed network learns both holistic and digit-wise representations through a multi-task loss function. We determine the optimal weights to be assigned to holistic and digit-wise losses through an ablation study. Experimental results demonstrate that the proposed multi-task learning network performs better than the constituent holistic and digit-wise single-task learning networks.<br />Comment: Accepted to the 4th International ACM Workshop on Multimedia Content Analysis in Sports

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2108.07848
Document Type :
Working Paper