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Sijie Song

5 accepted papers

2026

Augmentation-invariant Learning Strategy via Data Augmentation for Improving Model Generalization

AAAI 2026technical

Data augmentation is an effective technique for regularizing deep networks, which helps to enhance the generalizability and robustness of the model. However, in the field of medical imaging, traditional data augmentation techniques such as cropping, rotation, and degradation may inadvertently alter

Cited by 0SourcePDFScholar
2021

Co-Grounding Networks With Semantic Attention for Referring Expression Comprehension in Videos

CVPR 2021poster

In this paper, we address the problem of referring expression comprehension in videos, which is challenging due to complex expression and scene dynamics. Unlike previous methods which solve the problem in multiple stages (i.e., tracking, proposal-based matching), we tackle the problem from a novel p…

Cited by 17PDFcodeScholar
2019

Unsupervised Person Image Generation With Semantic Parsing Transformation

CVPR 2019oral

In this paper, we address unsupervised pose-guided person image generation, which is known challenging due to non-rigid deformation. Unlike previous methods learning a rock-hard direct mapping between human bodies, we propose a new pathway to decompose the hard mapping into two more accessible subta…

Cited by 141PDFcodeScholar
2016

Joint sub-band based neighbor embedding for image super-resolution

ICASSP 2016accepted

In this paper, we propose a novel neighbor embedding method based on joint sub-bands for image super-resolution. Rather than directly reconstructing the total spatial variations of the input image, we restore each frequency component separately. The input LR image is decomposed into sub-bands define…

Cited by 0SourceScholar
2016

Structure-guided image completion via regularity statistics

ICASSP 2016accepted

In this paper, we propose a novel hierarchical image completion approach using regularity statistics, considering structure features. Guided by dominant structures, the target image is used to generate reference images in a self-reproductive way by image data enhancement. The structure-guided image…

Cited by 0SourceScholar