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Papers/IFQA: Interpretable Face Quality Assessment

IFQA: Interpretable Face Quality Assessment

Byungho Jo, Donghyeon Cho, In Kyu Park, Sungeun Hong

2022-11-14Image Quality AssessmentFace Image Quality Assessment
PaperPDFCode(official)

Abstract

Existing face restoration models have relied on general assessment metrics that do not consider the characteristics of facial regions. Recent works have therefore assessed their methods using human studies, which is not scalable and involves significant effort. This paper proposes a novel face-centric metric based on an adversarial framework where a generator simulates face restoration and a discriminator assesses image quality. Specifically, our per-pixel discriminator enables interpretable evaluation that cannot be provided by traditional metrics. Moreover, our metric emphasizes facial primary regions considering that even minor changes to the eyes, nose, and mouth significantly affect human cognition. Our face-oriented metric consistently surpasses existing general or facial image quality assessment metrics by impressive margins. We demonstrate the generalizability of the proposed strategy in various architectural designs and challenging scenarios. Interestingly, we find that our IFQA can lead to performance improvement as an objective function.

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingCGFIQA-40kPLCC0.9601IFQA
Facial Recognition and ModellingCGFIQA-40kSRCC0.9603IFQA
Face ReconstructionCGFIQA-40kPLCC0.9601IFQA
Face ReconstructionCGFIQA-40kSRCC0.9603IFQA
Face RecognitionCGFIQA-40kPLCC0.9601IFQA
Face RecognitionCGFIQA-40kSRCC0.9603IFQA
3DCGFIQA-40kPLCC0.9601IFQA
3DCGFIQA-40kSRCC0.9603IFQA
3D Face ModellingCGFIQA-40kPLCC0.9601IFQA
3D Face ModellingCGFIQA-40kSRCC0.9603IFQA
3D Face ReconstructionCGFIQA-40kPLCC0.9601IFQA
3D Face ReconstructionCGFIQA-40kSRCC0.9603IFQA

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