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Jingjing Zheng

8 accepted papers

2026

ReFTA: Breaking the Weight Reconstruction Bottleneck in Tensorized Parameter-Efficient Fine-Tuning

CVPR 2026

Tensor-based methods have attracted growing interest due to their ability to reduce trainable parameters and offer advantages over matrix-based approaches in parameter-efficient fine-tuning (e.g., LoRA and PiSSA), particularly in capturing inter-layer correlations. However, directly applying tensor

Cited by 0SourcecodeScholar
2025

AdaMSS: Adaptive Multi-Subspace Approach for Parameter-Efficient Fine-Tuning

NeurIPS 2025poster

In this paper, we propose AdaMSS, an adaptive multi-subspace approach for parameter-efficient fine-tuning of large models. Unlike traditional parameter-efficient fine-tuning methods that operate within a large single subspace of the network weights, AdaMSS leverages subspace segmentation to obtain…

Cited by 0SourcecodeScholar
2025

Details Matter for Indoor Open-vocabulary 3D Instance Segmentation

ICCV 2025poster

Unlike closed-vocabulary 3D instance segmentation that is often trained end-to-end, open-vocabulary 3D instance segmentation (OV-3DIS) often leverages vision-language models (VLMs) to generate 3D instance proposals and classify them. While various concepts have been proposed from existing research,…

Cited by 0SourcePDFScholar
2025

Differentiable Decision Tree via "ReLU+Argmin" Reformulation

NeurIPS 2025spotlight

Decision tree, despite its unmatched interpretability and lightweight structure, faces two key issues that limit its broader applicability: non-differentiability and low testing accuracy. This study addresses these issues by developing a differentiable oblique tree that optimizes the entire tree us…

Cited by 0SourcecodeScholar
2024

Handling The Non-Smooth Challenge in Tensor SVD: A Multi-Objective Tensor Recovery Framework

ECCV 2024poster

"Recently, numerous tensor singular value decomposition (t-SVD)-based tensor recovery methods have shown promise in processing visual data, such as color images and videos. However, these methods often suffer from severe performance degradation when confronted with tensor data exhibiting non-smooth…

2024

No More Ambiguity in 360deg Room Layout via Bi-Layout Estimation

CVPR 2024poster

Inherent ambiguity in layout annotations poses significant challenges to developing accurate 360deg room layout estimation models. To address this issue we propose a novel Bi-Layout model capable of predicting two distinct layout types. One stops at ambiguous regions while the other extends to encom…

Cited by 5SourcePDFScholar
2022

Handling Slice Permutations Variability in Tensor Recovery

AAAI 2022technical

This work studies the influence of slice permutations on tensor recovery, which is derived from a reasonable assumption about algorithm, i.e. changing data order should not affect the effectiveness of the algorithm. However, as we will discussed in this paper, this assumption is not satisfied by ten…

2022

Learning Feature Decomposition for Domain Adaptive Monocular Depth Estimation

IROS 2022poster

Monocular depth estimation (MDE) has attracted intense study due to its low cost and critical functions for robotic tasks such as localization, mapping and obstacle detection. Supervised approaches have led to great success with the advance of deep learning, but they rely on large quantities of grou…

Cited by 16SourceScholar