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Widely Applicable Strong Baseline for Sports Ball Detection and Tracking

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arxiv 2311.05237 v2 pith:ROGSG2AF submitted 2023-11-09 cs.CV

classification cs.CV
keywords datasetssbdtsportsbaselineapproachballcategoriesmethods
verification ladder T0 review T1 audit T2 compute T3 formal
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In this work, we present a novel Sports Ball Detection and Tracking (SBDT) method that can be applied to various sports categories. Our approach is composed of (1) high-resolution feature extraction, (2) position-aware model training, and (3) inference considering temporal consistency, all of which are put together as a new SBDT baseline. Besides, to validate the wide-applicability of our approach, we compare our baseline with 6 state-of-the-art SBDT methods on 5 datasets from different sports categories. We achieve this by newly introducing two SBDT datasets, providing new ball annotations for two datasets, and re-implementing all the methods to ease extensive comparison. Experimental results demonstrate that our approach is substantially superior to existing methods on all the sports categories covered by the datasets. We believe our proposed method can play as a Widely Applicable Strong Baseline (WASB) of SBDT, and our datasets and codebase will promote future SBDT research. Datasets and codes are available at https://github.com/nttcom/WASB-SBDT .

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Cited by 2 Pith papers

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    A taxonomy-guided, rally-level, video-anchored review system elicits more frequent, concrete, actionable, and appropriate tactical reflections from amateur badminton players than a report-and-statistics baseline.

  2. Ice Hockey Puck Localization Using Contextual Cues

    cs.CV 2025-06 conditional novelty 5.0 of 10

    PLUCC fuses player-segmentation context with multiscale image features to localize the puck, reporting 12.2% higher average precision than the tested baselines and a new rink-space error metric.

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