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Uncovering Hidden Challenges in Query-Based Video Moment Retrieval

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arxiv 2009.00325 v2 pith:QUCJDR6F submitted 2020-09-01 cs.CV

classification cs.CV
keywords momentretrievalquery-basedresultsvideobenchmarkdatasetsexperiments
verification ladder T0 review T1 audit T2 compute T3 formal
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The query-based moment retrieval is a problem of localising a specific clip from an untrimmed video according a query sentence. This is a challenging task that requires interpretation of both the natural language query and the video content. Like in many other areas in computer vision and machine learning, the progress in query-based moment retrieval is heavily driven by the benchmark datasets and, therefore, their quality has significant impact on the field. In this paper, we present a series of experiments assessing how well the benchmark results reflect the true progress in solving the moment retrieval task. Our results indicate substantial biases in the popular datasets and unexpected behaviour of the state-of-the-art models. Moreover, we present new sanity check experiments and approaches for visualising the results. Finally, we suggest possible directions to improve the temporal sentence grounding in the future. Our code for this paper is available at https://mayu-ot.github.io/hidden-challenges-MR .

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  1. Conformal Coverage Guarantees for Any Video Temporal Grounder

    cs.CV 2026-08 conditional novelty 6.0 of 10

    A post-hoc conformal wrapper converts any video temporal grounder's single interval into a region that contains the true moment with probability at least 1-alpha.

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