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4 months ago

Blind Image Quality Assessment Using A Deep Bilinear Convolutional Neural Network

Weixia Zhang; Kede Ma; Jia Yan; Dexiang Deng; Zhou Wang

Blind Image Quality Assessment Using A Deep Bilinear Convolutional Neural Network

Abstract

We propose a deep bilinear model for blind image quality assessment (BIQA) that handles both synthetic and authentic distortions. Our model consists of two convolutional neural networks (CNN), each of which specializes in one distortion scenario. For synthetic distortions, we pre-train a CNN to classify image distortion type and level, where we enjoy large-scale training data. For authentic distortions, we adopt a pre-trained CNN for image classification. The features from the two CNNs are pooled bilinearly into a unified representation for final quality prediction. We then fine-tune the entire model on target subject-rated databases using a variant of stochastic gradient descent. Extensive experiments demonstrate that the proposed model achieves superior performance on both synthetic and authentic databases. Furthermore, we verify the generalizability of our method on the Waterloo Exploration Database using the group maximum differentiation competition.

Code Repositories

zwx8981/DBCNN-PyTorch
Official
pytorch

Benchmarks

BenchmarkMethodologyMetrics
no-reference-image-quality-assessment-onDB-CNN
PLCC: 0.865
SRCC: 0.816
no-reference-image-quality-assessment-on-1DB-CNN
PLCC: 0.856
SRCC: 0.851
no-reference-image-quality-assessment-on-csiqDB-CNN
PLCC: 0.959
SRCC: 0.946
video-quality-assessment-on-msu-sr-qa-datasetDBCNN
KLCC: 0.55139
PLCC: 0.63971
SROCC: 0.68621
Type: NR
video-quality-assessment-on-msu-video-qualityDBCNN
KLCC: 0.7750
PLCC: 0.9222
SRCC: 0.9220
Type: NR

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Blind Image Quality Assessment Using A Deep Bilinear Convolutional Neural Network | Papers | HyperAI