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20242026
most citedSemantic-CD: Remote Sensing Image Semantic Change Detection towards Open-vocabulary Setting

1 citations · 1 across the 4 of their papers we have counts for

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cs.CV2026

State Space Models Meet Remote Sensing: A Survey

Qinzhe Yang, Chenyang Liu, Jia Xu +2

State Space Models (SSMs), designed for long-range modeling, offer linear computational complexity and strong capabilities in capturing long-range dependencies. In the field of rem…

cs.CV2026

MetaEarth3D: Unlocking World-scale 3D Generation with Spatially Scalable Generative Modeling

Jinqi Cao, Zhiping Yu, Baihong Lin +3

Recent generative AI models have achieved remarkable breakthroughs in language and visual understanding. However, although these models can generate realistic visual content, their…

cs.CV2025

TaCo: Capturing Spatio-Temporal Semantic Consistency in Remote Sensing Change Detection

Han Guo, Chenyang Liu, Haotian Zhang +3

Remote sensing change detection (RSCD) aims to identify surface changes across bi-temporal satellite images. Most previous methods rely solely on mask supervision, which effectivel…

cs.CV2025

RSRefSeg 2: Decoupling Referring Remote Sensing Image Segmentation with Foundation Models

Keyan Chen, Chenyang Liu, Bowen Chen +3

Referring Remote Sensing Image Segmentation provides a flexible and fine-grained framework for remote sensing scene analysis via vision-language collaborative interpretation. Curre…

cs.CV2025

DynamicVis: Dynamic Visual Perception for Efficient Remote Sensing Foundation Models

Keyan Chen, Chenyang Liu, Bowen Chen +4

The advancement of RS technology has enabled high-resolution Earth observation; however, interpreting these images using modern VFMs remains a significant challenge. Unlike object-…

cs.CV2025

RSRefSeg: Referring Remote Sensing Image Segmentation with Foundation Models

Keyan Chen, Jiafan Zhang, Chenyang Liu +2

Referring remote sensing image segmentation is crucial for achieving fine-grained visual understanding through free-format textual input, enabling enhanced scene and object extract…