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    Home»AI Tools»Mamba-Based Feature Alignment and LLM-Driven Purification for Multi-Modal Video Temporal Grounding
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    Mamba-Based Feature Alignment and LLM-Driven Purification for Multi-Modal Video Temporal Grounding

    AwaisBy AwaisJanuary 28, 2026No Comments2 Mins Read0 Views
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    [Submitted on 10 Jun 2025 (v1), last revised 27 Jan 2026 (this version, v2)]

    View a PDF of the paper titled MLVTG: Mamba-Based Feature Alignment and LLM-Driven Purification for Multi-Modal Video Temporal Grounding, by Zhiyi Zhu and 3 other authors

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    Abstract:Video Temporal Grounding (VTG), which aims to localize video clips corresponding to natural language queries, is a fundamental yet challenging task in video understanding. Existing Transformer-based methods often suffer from redundant attention and suboptimal multi-modal alignment. To address these limitations, we propose MLVTG, a novel framework that integrates two key modules: MambaAligner and LLMRefiner. MambaAligner uses stacked Vision Mamba blocks as a backbone instead of Transformers to model temporal dependencies and extract robust video representations for multi-modal alignment. LLMRefiner leverages the specific frozen layer of a pre-trained Large Language Model (LLM) to implicitly transfer semantic priors, enhancing multi-modal alignment without fine-tuning. This dual alignment strategy, temporal modeling via structured state-space dynamics and semantic purification via textual priors, enables more precise localization. Extensive experiments on QVHighlights, Charades-STA, and TVSum demonstrate that MLVTG achieves state-of-the-art performance and significantly outperforms existing baselines.

    Submission history

    From: Zhiyi Zhu [view email]
    [v1]
    Tue, 10 Jun 2025 07:20:12 UTC (2,640 KB)
    [v2]
    Tue, 27 Jan 2026 18:07:12 UTC (3,142 KB)

    Alignment Feature Grounding LLMDriven MambaBased Multimodal Purification Temporal Video
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    Awais
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