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Sudarshan Rajagopalan

5 accepted papers

2026

RestoreVAR: Visual Autoregressive Generation for All-in-One Image Restoration

ICLR 2026poster

The use of latent diffusion models (LDMs) such as Stable Diffusion has significantly improved the perceptual quality of All-in-One image Restoration (AiOR) methods, while also enhancing their generalization capabilities. However, these LDM-based frameworks suffer from slow inference due to their ite…

Cited by 0SourcecodeScholar
2025

AWRaCLe: All-Weather Image Restoration Using Visual In-Context Learning

AAAI 2025technical

All-Weather Image Restoration (AWIR) under adverse weather conditions is a challenging task due to the presence of different types of degradations. Prior research in this domain relies on extensive training data but lacks the utilization of additional contextual information for restoration guidance.…

Cited by 1SourcePDFScholar
2025

GenDeg: Diffusion-based Degradation Synthesis for Generalizable All-In-One Image Restoration

CVPR 2025poster

Deep learning-based models for All-In-One image Restoration (AIOR) have achieved significant advancements in recent years. However, their practical applicability is limited by poor generalization to samples outside the training distribution. This limitation arises primarily from insufficient diversi…

Cited by 2SourcePDFScholar
2025

SINR: Sparsity Driven Compressed Implicit Neural Representations

CVPR 2025poster

Implicit Neural Representations (INRs) are increasingly recognized as a versatile data modality for representing discretized signals, offering benefits such as infinite query resolution and reduced storage requirements. Existing signal compression approaches for INRs typically employ one of two stra…

Cited by 0SourcePDFScholar