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3 months ago

Perceptual Quality Assessment of Smartphone Photography

{ Zhou Wang Kede Ma Yan Zeng Hanwei Zhu Yuming Fang}

Perceptual Quality Assessment of Smartphone Photography

Abstract

As smartphones become people's primary cameras to take photos, the quality of their cameras and the associated computational photography modules has become a de facto standard in evaluating and ranking smartphones in the consumer market. We conduct so far the most comprehensive study of perceptual quality assessment of smartphone photography. We introduce the Smartphone Photography Attribute and Quality (SPAQ) database, consisting of 11,125 pictures taken by 66 smartphones, where each image is attached with so far the richest annotations. Specifically, we collect a series of human opinions for each image, including image quality, image attributes (brightness, colorfulness, contrast, noisiness, and sharpness), and scene category labels (animal, cityscape, human, indoor scene, landscape, night scene, plant, still life, and others) in a well-controlled laboratory environment. The exchangeable image file format (EXIF) data for all images are also recorded to aid deeper analysis. We also make the first attempts using the database to train blind image quality assessment (BIQA) models constructed by baseline and multi-task deep neural networks. The results provide useful insights on how EXIF data, image attributes and high-level semantics interact with image quality, how next-generation BIQA models can be designed, and how better computational photography systems can be optimized on mobile devices. The database along with the proposed BIQA models are available at https://github.com/h4nwei/SPAQ.

Benchmarks

BenchmarkMethodologyMetrics
image-quality-assessment-on-msu-nr-vqaSPAQ BL
KLCC: 0.7106
PLCC: 0.8855
SRCC: 0.8799
image-quality-assessment-on-msu-nr-vqaSPAQ MT-A
KLCC: 0.7148
PLCC: 0.8824
SRCC: 0.8794
image-quality-assessment-on-msu-nr-vqaSPAQ MT-S
KLCC: 0.7186
PLCC: 0.8814
SRCC: 0.8822
video-quality-assessment-on-msu-video-qualitySPAQ MT-S
KLCC: 0.7186
PLCC: 0.8814
SRCC: 0.8822
Type: NR
video-quality-assessment-on-msu-video-qualitySPAQ MT-A
KLCC: 0.7148
PLCC: 0.8824
SRCC: 0.8794
Type: NR
video-quality-assessment-on-msu-video-qualitySPAQ BL
KLCC: 0.7106
PLCC: 0.8855
SRCC: 0.8799
Type: NR

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Perceptual Quality Assessment of Smartphone Photography | Papers | HyperAI