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Tai-Jiang Mu

12 accepted papers

2026

Beyond Reassembly: Fractured Object Recovery with Missing Parts

CVPR 2026

We propose a novel learning-based task named fractured object recovery. Unlike the previous fractured object reassembly task that only aligns existing parts with overlaps, our task aims to recover the complete shape by not only reassembling irrelevant parts but also predicting missing parts. Our tas

Cited by 0SourceScholar
2026

Towards Highly-Constrained Human Motion Generation with Retrieval-Guided Diffusion Noise Optimization

CVPR 2026

Generating human motion that satisfies customized zero-shot goal functions, enabling applications such as controllable character animation and behavior synthesis for virtual agents, is a critical capability. While current approaches handle many unseen constraints, they fail on tasks with very challe

Cited by 0SourcecodeScholar
2025

RGE-GS: Reward-Guided Expansive Driving Scene Reconstruction via Diffusion Priors

ICCV 2025poster

A single-pass driving clip frequently results in incomplete scanning of the road structure, making reconstructed scene expanding a critical requirement for sensor simulators to effectively regress driving actions. Although contemporary 3D Gaussian Splatting (3DGS) techniques achieve remarkable recon…

2024

Programmable Motion Generation for Open-Set Motion Control Tasks

CVPR 2024highlight

Character animation in real-world scenarios necessitates a variety of constraints such as trajectories key-frames interactions etc. Existing methodologies typically treat single or a finite set of these constraint(s) as separate control tasks. These methods are often specialized and the tasks they a…

Cited by 5SourcePDFScholar
2024

Recovering Complete Actions for Cross-dataset Skeleton Action Recognition

NeurIPS 2024poster

Despite huge progress in skeleton-based action recognition, its generalizability to different domains remains a challenging issue. In this paper, to solve the skeleton action generalization problem, we present a recover-and-resample augmentation framework based on a novel complete action prior. We…

Cited by 0SourcePDFScholar
2024

Semantic-Aware Transformation-Invariant RoI Align

AAAI 2024technical

Great progress has been made in learning-based object detection methods in the last decade. Two-stage detectors often have higher detection accuracy than one-stage detectors, due to the use of region of interest (RoI) feature extractors which extract transformation-invariant RoI features for differe…

2023

Long Range Pooling for 3D Large-Scale Scene Understanding

CVPR 2023poster

Inspired by the success of recent vision transformers and large kernel design in convolutional neural networks (CNNs), in this paper, we analyze and explore essential reasons for their success. We claim two factors that are critical for 3D large-scale scene understanding: a larger receptive field an…

2022

CIRCLE: Convolutional Implicit Reconstruction and Completion for Large-Scale Indoor Scene

ECCV 2022poster

"We present CIRCLE, a framework for large-scale scene completion and geometric refinement based on local implicit signed distance functions. It is based on an end-to-end sparse convolutional network, CircNet, which jointly models local geometric details and global scene structural contexts, allowing…

Cited by 10SourcePDFScholar
2022

ClusterGNN: Cluster-Based Coarse-To-Fine Graph Neural Network for Efficient Feature Matching

CVPR 2022poster

Graph Neural Networks (GNNs) with attention have been successfully applied for learning visual feature matching. However, current methods learn with complete graphs, resulting in a quadratic complexity in the number of features. Motivated by a prior observation that self- and cross- attention matric…

Cited by 111PDFScholar
2020

ClusterVO: Clustering Moving Instances and Estimating Visual Odometry for Self and Surroundings

CVPR 2020poster

We present ClusterVO, a stereo Visual Odometry which simultaneously clusters and estimates the motion of both ego and surrounding rigid clusters/objects. Unlike previous solutions relying on batch input or imposing priors on scene structure or dynamic object models, ClusterVO is online, general and…

Cited by 123PDFScholar
2020

Lidar-Monocular Visual Odometry using Point and Line Features

ICRA 2020poster

We introduce a novel lidar-monocular visual odometry approach using point and line features. Compared to previous point-only based lidar-visual odometry, our approach leverages more environment structure information by introducing both point and line features into pose estimation. We provide a robus…

Cited by 90SourceScholar
2019

S4Net: Single Stage Salient-Instance Segmentation

CVPR 2019poster

We consider an interesting problem---salient instance segmentation. Other than producing approximate bounding boxes, our network also outputs high-quality instance-level segments. Taking into account the category-independent property of each target, we design a single stage salient instance segmenta…

Cited by 108PDFcodeScholar