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Qiu Shen

9 accepted papers

2026

Pressure2Motion: Hierarchical Human Motion Reconstruction from Ground Pressure with Text Guidance

CVPR 2026

We present Pressure2Motion, a novel motion capture algorithm that reconstructs human motion from a ground pressure sequence and text prompt. At inference time, Pressure2Motion requires only a pressure mat, eliminating the need for specialized lighting setups, cameras, or wearable devices, making it

Cited by 0SourcecodeScholar
2026

Split-Layer: Enhancing Implicit Neural Representation by Maximizing the Dimensionality of Feature Space

AAAI 2026technical

Implicit neural representation (INR) models signals as continuous functions using neural networks, offering efficient and differentiable optimization for inverse problems across diverse disciplines. However, the representational capacity of INR—defined by the range of functions the neural network ca

Cited by 0SourcePDFScholar
2025

M-SpecGene: Generalized Foundation Model for RGBT Multispectral Vision

ICCV 2025poster

RGB-Thermal (RGBT) multispectral vision is essential for robust perception in complex environments. Most RGBT tasks follow a case-by-case research paradigm, relying on manually customized models to learn task-oriented representations. Nevertheless, this paradigm is inherently constrained by artifici…

Cited by 0SourcePDFScholar
2025

MotionPRO: Exploring the Role of Pressure in Human MoCap and Beyond

CVPR 2025highlight

Existing human Motion Capture (MoCap) methods mostly focus on the visual similarity while neglecting the physical plausibility. As a result, downstream tasks such as driving virtual human in 3D scene or humanoid robots in real world suffer from issues such as timing drift and jitter, spatial problem…

2024

Batch Normalization Alleviates the Spectral Bias in Coordinate Networks

CVPR 2024poster

Representing signals using coordinate networks dominates the area of inverse problems recently and is widely applied in various scientific computing tasks. Still there exists an issue of spectral bias in coordinate networks limiting the capacity to learn high-frequency components. This problem is ca…

Cited by 9SourcePDFScholar
2024

MMVP: A Multimodal MoCap Dataset with Vision and Pressure Sensors

CVPR 2024poster

Foot contact is an important cue for human motion capture understanding and generation. Existing datasets tend to annotate dense foot contact using visual matching with thresholding or incorporating pressure signals. However these approaches either suffer from low accuracy or are only designed for s…

2022

Explore Spatio-Temporal Aggregation for Insubstantial Object Detection: Benchmark Dataset and Baseline

CVPR 2022poster

We endeavor on a rarely explored task named Insubstan-tial Object Detection (IOD), which aims to localize the object with following characteristics: (1) amorphous shape with indistinct boundary; (2) similarity to surroundings; (3) absence in color. Accordingly, it is far more challenging to distingu…

Cited by 23PDFcodeScholar
2021

Dive Into Ambiguity: Latent Distribution Mining and Pairwise Uncertainty Estimation for Facial Expression Recognition

CVPR 2021poster

Due to the subjective annotation and the inherent inter-class similarity of facial expressions, one of key challenges in Facial Expression Recognition (FER) is the annotation ambiguity. In this paper, we proposes a solution, named DMUE, to address the problem of annotation ambiguity from two perspec…

Cited by 291PDFcodeScholar
2020

FaceScape: A Large-Scale High Quality 3D Face Dataset and Detailed Riggable 3D Face Prediction

CVPR 2020poster

In this paper, we present a large-scale detailed 3D face dataset, FaceScape, and propose a novel algorithm that is able to predict elaborate riggable 3D face models from a single image input. FaceScape dataset provides 18,760 textured 3D faces, captured from 938 subjects and each with 20 specific ex…

Cited by 361PDFcodeScholar