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Spatially Localized Image Degradation Embeddings for Image Quality Assessment

About

Self-supervised learning (SSL) currently drives state-of-the-art performance in no-reference image quality assessment (NR-IQA). However, standard SSL pipelines uniformly apply synthetic distortions across the entire image field, which can limit their sensitivity to spatially localized and co-occurring degradations encountered in real-world content. In this work, we empirically expose this representational blind spot across existing state-of-the-art encoders, demonstrating their reduced sensitivity to spatially bounded image degradations. To bridge this gap, we introduce Spatial Localized Image Degradation Embeddings for Image Quality Assessment (SLIDE-IQA). SLIDE-IQA employs a dual-branch Vision Transformer framework that injects spatially bounded degradations into a contrastive pretraining objective. To handle the spatial complexity of these degradations, we introduce a Threshold-Bounded Exclusion Mechanism, a representational design choice that resolves structural conflicts arising from spatially localized distortions to ensure the latent space respects both degradation type and spatial scale. Finally, we show that SLIDE-IQA's synthetic-only pretraining significantly improves sensitivity to localized distortions, while achieving competitive performance on NR-IQA benchmarks against existing SSL NR-IQA models.

Krishna Srikar Durbha, Hassene Tmar, Ping-Hao Wu, Ioannis Katsavounidis, Alan C. Bovik• 2026

Related benchmarks

TaskDatasetResultRank
No-Reference Image Quality AssessmentKADID-10K
SROCC0.932
189
No-Reference Image Quality AssessmentKonIQ-10k
SROCC0.915
144
Blind Image Quality AssessmentFLIVE
SRCC0.61
142
No-Reference Image Quality AssessmentTID 2013
SRCC0.899
136
No-Reference Image Quality AssessmentSPAQ
SROCC0.913
136
No-Reference Image Quality AssessmentCLIVE
SRCC0.825
36
No-Reference Image Quality AssessmentCSIQ-IQA
SRCC0.94
29
No-Reference Image Quality AssessmentLIVE-IQA
SRCC0.963
27
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