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Abstract
This paper presents a transformer encoder-decoder model for predicting future badminton strokes based on previous rally actions. The model uses court position skeleton poses and player-specific embeddings to learn stroke and player-specific latent representations in a spatiotemporal encoder module. The representations are then used to condition the subsequent strokes in a decoder module through rally-aware fusion blocks which provide additional relevant strategic and technical considerations to make more informed predictions. RallyTemPose shows improved forecasting accuracy compared to traditional sequential methods on two real-world badminton datasets. The performance boost can also be attributed to the inclusion of improved stroke embeddings extracted from the latent representation of a pre-trained large-language model subjected to detailed text descriptions of stroke descriptions. In the discussion the latent representations learned by the encoder module show useful properties regarding player analysis and comparisons.
Originalsprog | Engelsk |
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Titel | Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR) Workshops |
Publikationsdato | jun. 2024 |
Sider | 3376-3385 |
Status | Udgivet - jun. 2024 |
Begivenhed | CVPR 2024 - The IEEE/CVF Conference on Computer Vision and Pattern Recognition - Seattle Convention Center, Seattle, USA Varighed: 17 jun. 2024 → 21 jun. 2024 Konferencens nummer: 2024 https://cvpr.thecvf.com/ |
Konference
Konference | CVPR 2024 - The IEEE/CVF Conference on Computer Vision and Pattern Recognition |
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Nummer | 2024 |
Lokation | Seattle Convention Center |
Land/Område | USA |
By | Seattle |
Periode | 17/06/2024 → 21/06/2024 |
Internetadresse |
Emneord
- badminton
- transformer
Fingeraftryk
Dyk ned i forskningsemnerne om 'A stroke of genius: Predicting the next move in badminton'. Sammen danner de et unikt fingeraftryk.Projekter
- 1 Igangværende
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TeamSPORTek: Team Danmark – Dansk Sports Teknologi Forsknings Netværk
Hansen, D. W. (PI) & Grasshof, S. (CoI)
01/09/2020 → 31/12/2024
Projekter: Projekt › Forskning