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English(EN) HeatTok: Enhancing Remote Sensing Image Understanding via Thermodiffusion-based Tokenization

新的HeatTok标记器提高了LLM对遥感图像的理解能力

研究人员推出了一种新颖的语义感知标记器HeatTok,旨在提高多模态大语言模型(MLLM)对遥感图像的理解能力。与分割对象的传统基于块的方法不同,HeatTok采用热扩散聚合方法创建语义独立、对象对齐的标记。为了更好地表示这些不规则形状,研究团队还开发了高斯多模态旋转位置嵌入(G-MRoPE)来编码空间分布和几何线索。在VRSBench和EarthVQA数据集上的评估表明,HeatTok增强了对象级别的语义完整性,并取得了最先进的结果。 AI

影响 这种新的标记化方法可以通过提高对象识别和语义完整性来增强LLM在遥感等专业领域的性能。

排序理由 该集群描述了arXiv论文中提出的一种用于计算机视觉任务的新方法和标记器。[lever_c_demoted from research: ic=1 ai=1.0]

在 arXiv cs.CV 阅读 →

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新的HeatTok标记器提高了LLM对遥感图像的理解能力

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该集群描述了arXiv论文中提出的一种用于计算机视觉任务的新方法和标记器。[lever_c_demoted from research: ic=1 ai=1.0]
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报道来源 [1]

  1. arXiv cs.CV TIER_1 English(EN) · Yingying Yan, Jiaqi Tang, Wei Wei, Qianzhou Wang, Jinjian Wu, Botong Geng, Jianmin Chen, Yuyang Xia, Lei Zhang ·

    HeatTok:通过热扩散标记化增强遥感图像理解

    arXiv:2608.22485v1 Announce Type: new Abstract: Current visual tokenizers in Multimodal Large Language Models (MLLMs) predominantly rely on patch-based partitioning, which causes severe semantic mixture and object fragmentation in remote sensing imagery due to the irregular conto…