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3 months ago

Integrate the temporal scheme for unsupervised video summarization via attention mechanism

{Viet H. Vo Bang Q. Vo}

Abstract

In this work, we present a novel unsupervised scheme named SegSum, designed for video summarization through the creation of video skims. Most contemporary methods involve training a summarizer to assign importance scores to individual video frames, which are then aggregated to calculate scores for video segments produced by methods like Kernel Temporal Segmentation(KTS). Nonetheless, this methodology restricts the summarizer’s access to vital information essential for generating the summary—specifically, spatial-temporal relationships in video segments. Our proposed method incorporates the segment information obtained from KTS into the learning process of the summarizer based on concentrated attention architecture in deep learning models. In our experiment, we extensively evaluated our method across several datasets and many architectural frameworks for unsupervised video summarization. By incorporating a concentrated attention module, we managed to secure top F1-scores on established benchmarks, recording 54% on the SumMe dataset and 62% on the TVSum dataset. Furthermore, even with a straightforward Regressor network, SegSum demonstrates competitive performance, producing summaries that closely align with human annotations.

Benchmarks

BenchmarkMethodologyMetrics
unsupervised-video-summarization-on-summeSegSum
F1-score: 54
Parameters (M): 5.25
unsupervised-video-summarization-on-tvsumSegSum
F1-score: 62
Parameters (M): 5.25

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Integrate the temporal scheme for unsupervised video summarization via attention mechanism | Papers | HyperAI