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Jiahao Chao

4 accepted papers

2026

MUSE: Resolving Manifold Misalignment in Visual Tokenization via Topological Orthogonality

ICML 2026poster

Unified visual tokenization faces a fundamental trade-off: optimizing for high-fidelity pixel reconstruction (spatial equivariance) inherently conflicts with semantic abstraction (conceptual invariance). We identify the root cause as Manifold Misalignment, where naive joint optimization leads to con…

Cited by 0SourceScholar
2023

A Novel Learnable Interpolation Approach for Scale-Arbitrary Image Super-Resolution

IJCAI 2023poster

Deep convolutional neural networks (CNNs) have achieved unprecedented success in single image super-resolution over the past few years. Meanwhile, there is an increasing demand for single image super-resolution with arbitrary scale factors in real-world scenarios. Many approaches adopt scale-specifi…

2023

Equivalent Transformation and Dual Stream Network Construction for Mobile Image Super-Resolution

CVPR 2023poster

In recent years, there has been an increasing demand for real-time super-resolution networks on mobile devices. To address this issue, many lightweight super-resolution models have been proposed. However, these models still contain time-consuming components that increase inference latency, limiting…

2023

Kernel Estimation and Deconvolution for Blind Image Super-Resolution

ICASSP 2023accepted

Blind super-resolution, different from conventional non-blind super-resolution based on the assumption of fixed degradation, handles various unknown Gaussian blur kernels, and thus is closer to real-world application. The accuracy of kernel estimation and deconvolution directly influences the perfor…

Cited by 0SourceScholar