A Multi-stage deep architecture for summary generation of soccer videos
Melissa Sanabria, Fr\'ed\'eric Precioso, Pierre-Alexandre Mattei, and, Thomas Menguy

TL;DR
This paper introduces a multi-stage deep learning architecture that combines audio and event metadata to generate diverse, high-quality soccer match summaries, demonstrating strong generalization across datasets and conditions.
Contribution
It presents a novel multi-modal deep learning approach for soccer video summarization that leverages both audio and event data, outperforming heuristic-based methods and enabling transferability across datasets.
Findings
Effective detection of key match actions.
Generation of multiple diverse summary options.
Strong transferability across different datasets.
Abstract
Video content is present in an ever-increasing number of fields, both scientific and commercial. Sports, particularly soccer, is one of the industries that has invested the most in the field of video analytics, due to the massive popularity of the game and the emergence of new markets. Previous state-of-the-art methods on soccer matches video summarization rely on handcrafted heuristics to generate summaries which are poorly generalizable, but these works have yet proven that multiple modalities help detect the best actions of the game. On the other hand, machine learning models with higher generalization potential have entered the field of summarization of general-purpose videos, offering several deep learning approaches. However, most of them exploit content specificities that are not appropriate for sport whole-match videos. Although video content has been for many years the main…
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Taxonomy
TopicsVideo Analysis and Summarization · Advanced Text Analysis Techniques · Artificial Intelligence in Games
