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cs.CV2025

SpatioTemporal Difference Network for Video Depth Super-Resolution

Zhengxue Wang, Yuan Wu, Xiang Li +2

Depth super-resolution has achieved impressive performance, and the incorporation of multi-frame information further enhances reconstruction quality. Nevertheless, statistical anal…

cs.CV2025

See through the Dark: Learning Illumination-affined Representations for Nighttime Occupancy Prediction

Yuan Wu, Zhiqiang Yan, Yigong Zhang +2

Occupancy prediction aims to estimate the 3D spatial distribution of occupied regions along with their corresponding semantic labels. Existing vision-based methods perform well on…

cs.CV2025

DuCos: Duality Constrained Depth Super-Resolution via Foundation Model

Zhiqiang Yan, Zhengxue Wang, Haoye Dong +3

We introduce DuCos, a novel depth super-resolution framework grounded in Lagrangian duality theory, offering a flexible integration of multiple constraints and reconstruction objec…

cs.CV2025

Completion as Enhancement: A Degradation-Aware Selective Image Guided Network for Depth Completion

Zhiqiang Yan, Zhengxue Wang, Kun Wang +2

In this paper, we introduce the Selective Image Guided Network (SigNet), a novel degradation-aware framework that transforms depth completion into depth enhancement for the first t…

cs.CV2025

Deep Height Decoupling for Precise Vision-based 3D Occupancy Prediction

Yuan Wu, Zhiqiang Yan, Zhengxue Wang +3

The task of vision-based 3D occupancy prediction aims to reconstruct 3D geometry and estimate its semantic classes from 2D color images, where the 2D-to-3D view transformation is a…

cs.CV2025

Learning Inverse Laplacian Pyramid for Progressive Depth Completion

Kun Wang, Zhiqiang Yan, Junkai Fan +2

Depth completion endeavors to reconstruct a dense depth map from sparse depth measurements, leveraging the information provided by a corresponding color image. Existing approaches…