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Nianjin Ye

5 accepted papers

2026

LaS-Comp: Zero-shot 3D Completion with Latent-Spatial Consistency

CVPR 2026

This paper introduces LaS-Comp, a zero-shot and category-agnostic approach that leverages the rich geometric priors of 3D foundation models to enable 3D shape completion across diverse types of partial observations. Our contributions are threefold: First, LaS-Comp harnesses these powerful generative

Cited by 0SourcecodeScholar
2022

FINet: Dual Branches Feature Interaction for Partial-to-Partial Point Cloud Registration

AAAI 2022technical

Data association is important in the point cloud registration. In this work, we propose to solve the partial-to-partial registration from a new perspective, by introducing multi-level feature interactions between the source and the reference clouds at the feature extraction stage, such that the regi…

2022

Unsupervised Homography Estimation With Coplanarity-Aware GAN

CVPR 2022poster

Estimating homography from an image pair is a fundamental problem in image alignment. Unsupervised learning methods have received increasing attention in this field due to their promising performance and label-free training. However, existing methods do not explicitly consider the problem of plane i…

Cited by 54PDFcodeScholar
2021

Motion Basis Learning for Unsupervised Deep Homography Estimation With Subspace Projection

ICCV 2021poster

In this paper, we introduce a new framework for unsupervised deep homography estimation. Our contributions are 3 folds. First, unlike previous methods that regress 4 offsets for a homography, we propose a homography flow representation, which can be estimated by a weighted sum of 8 pre-defined homog…

Cited by 70PDFcodeScholar
2020

Content-Aware Unsupervised Deep Homography Estimation

ECCV 2020poster

Homography estimation is a basic image alignment method in many applications. It is usually done by extracting and matching sparse feature points, which are error-prone in low-light and low-texture images. On the other hand, previous deep homography approaches use either synthetic images for supervi…