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Yuanhao Yu

10 accepted papers

2026

CamDirector: Towards Long-Term Coherent Video Trajectory Editing

CVPR 2026

Video (camera) trajectory editing aims to synthesize new videos that follow user-defined camera paths while preserving scene content and plausibly inpainting previously unseen regions, upgrading amateur footage into professionally styled videos. Existing VTE methods struggle with precise camera cont

Cited by 0SourceScholar
2026

Widget2Code: From Visual Widgets to UI Code via Multimodal LLMs

CVPR 2026

User interface to code (UI2Code) aims to generate executable code that can faithfully reconstruct a given input UI. Prior work focuses largely on web pages and mobile screens, leaving app widgets underexplored. Unlike web or mobile UIs with rich hierarchical context, widgets are compact, context-fre

Cited by 0SourcecodeScholar
2024

Adapting to Distribution Shift by Visual Domain Prompt Generation

ICLR 2024poster

In this paper, we aim to adapt a model at test-time using a few unlabeled data to address distribution shifts. To tackle the challenges of extracting domain knowledge from a limited amount of data, it is crucial to utilize correlated information from pre-trained backbones and source domains. Previo…

2024

Test-Time Personalization with Meta Prompt for Gaze Estimation

AAAI 2024technical

Despite the recent remarkable achievement in gaze estimation, efficient and accurate personalization of gaze estimation without labels is a practical problem but rarely touched on in the literature. To achieve efficient personalization, we take inspiration from the recent advances in Natural Langua…

2022

Few-Shot Class-Incremental Learning via Entropy-Regularized Data-Free Replay

ECCV 2022poster

"Few-shot class-incremental learning (FSCIL) has been proposed aiming to enable a deep learning system to incrementally learn new classes with limited data. Recently, a pioneer claims that the commonly used replay-based method in class-incremental learning (CIL) is ineffective and thus not preferred…

2022

Hierarchical Deep Learning Model with Inertial and Physiological Sensors Fusion for Wearable-Based Human Activity Recognition

ICASSP 2022accepted

This paper presents a human activity recognition (HAR) system with wearable devices. While various approaches have been suggested for HAR, most of them focus on either 1) the inertial sensors to capture the physical movement or 2) subject-dependent evaluations that are less practical to real world c…

Cited by 0SourceScholar
2022

Meta-DMoE: Adapting to Domain Shift by Meta-Distillation from Mixture-of-Experts

NeurIPS 2022accept

In this paper, we tackle the problem of domain shift. Most existing methods perform training on multiple source domains using a single model, and the same trained model is used on all unseen target domains. Such solutions are sub-optimal as each target domain exhibits its own specialty, which is not…

2022

MetaFSCIL: A Meta-Learning Approach for Few-Shot Class Incremental Learning

CVPR 2022poster

In this paper, we tackle the problem of few-shot class incremental learning (FSCIL). FSCIL aims to incrementally learn new classes with only a few samples in each class. Most existing methods only consider the incremental steps at test time. The learning objective of these methods is often hand-engi…

Cited by 186PDFScholar
2021

Test-Time Fast Adaptation for Dynamic Scene Deblurring via Meta-Auxiliary Learning

CVPR 2021poster

In this paper, we tackle the problem of dynamic scene deblurring. Most existing deep end-to-end learning approaches adopt the same generic model for all unseen test images. These solutions are sub-optimal, as they fail to utilize the internal information within a specific image. On the other hand, a…

Cited by 106PDFScholar