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Perception-Oriented Bidirectional Attention Network for Image Super-Resolution Quality Assessment
Summary
A new Perception-oriented Bidirectional Attention Network (PBAN) enhances full-reference image quality assessment for super-resolution (SR) algorithms. This novel method improves the evaluation of SR image quality by mimicking human visual perception.
Area of Science:
- Computer Vision
- Image Processing
- Artificial Intelligence
Background:
- Super-resolution (SR) algorithms aim to enhance image resolution.
- Existing full-reference (FR) image quality assessment (IQA) metrics are limited for evaluating SR algorithms.
Purpose of the Study:
- To propose a novel FR-IQA metric for SR algorithms.
- To develop a network that accurately assesses perceived quality of SR images.
Main Methods:
- Introduced the Perception-oriented Bidirectional Attention Network (PBAN) with three modules: image encoder, perception-oriented bidirectional attention (PBA), and quality prediction.
- Constructed PBA module inspired by human visual system characteristics, incorporating Bidirectional Attention.
- Utilized Grouped Multi-scale Deformable Convolution and Sub-information Excitation Convolution for adaptive distortion perception.
Main Results:
- PBAN effectively encodes images for feature representation.
- The PBA module bidirectionally constructs visual attention to distortion.
- Experiments show PBAN outperforms existing state-of-the-art quality assessment methods.
Conclusions:
- PBAN provides a robust solution for SR image FR-IQA.
- The proposed method aligns quality assessment with human perception of distortions.
- PBAN demonstrates superior performance in evaluating SR algorithm outputs.
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