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    Home»AI Tools»From Segment Anything to Any Segmentation
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    From Segment Anything to Any Segmentation

    AwaisBy AwaisJanuary 29, 2026No Comments2 Mins Read0 Views
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    Measuring Intelligence Efficiency of Local AI
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    [Submitted on 6 Aug 2025 (v1), last revised 28 Jan 2026 (this version, v2)]

    View a PDF of the paper titled X-SAM: From Segment Anything to Any Segmentation, by Hao Wang and 8 other authors

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    Abstract:Large Language Models (LLMs) demonstrate strong capabilities in broad knowledge representation, yet they are inherently deficient in pixel-level perceptual understanding. Although the Segment Anything Model (SAM) represents a significant advancement in visual-prompt-driven image segmentation, it exhibits notable limitations in multi-mask prediction and category-specific segmentation tasks, and it cannot integrate all segmentation tasks within a unified model architecture. To address these limitations, we present X-SAM, a streamlined Multimodal Large Language Model (MLLM) framework that extends the segmentation paradigm from \textit{segment anything} to \textit{any segmentation}. Specifically, we introduce a novel unified framework that enables more advanced pixel-level perceptual comprehension for MLLMs. Furthermore, we propose a new segmentation task, termed Visual GrounDed (VGD) segmentation, which segments all instance objects with interactive visual prompts and empowers MLLMs with visual grounded, pixel-wise interpretative capabilities. To enable effective training on diverse data sources, we present a unified training strategy that supports co-training across multiple datasets. Experimental results demonstrate that X-SAM achieves state-of-the-art performance on a wide range of image segmentation benchmarks, highlighting its efficiency for multimodal, pixel-level visual understanding. Code is available at this https URL.

    Submission history

    From: Hao Wang [view email]
    [v1]
    Wed, 6 Aug 2025 17:19:10 UTC (10,942 KB)
    [v2]
    Wed, 28 Jan 2026 15:50:17 UTC (10,438 KB)

    segment Segmentation
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