Papers › Generalized Portrait Quality Assessment

Generalized Portrait Quality Assessment

14 Feb 2024arXiv:2402.09178archive 2025-07-28

Nicolas Chahine, Sira Ferradans, Javier Vazquez-Corral, Jean Ponce

Automated and robust portrait quality assessment (PQA) is of paramount importance in high-impact applications such as smartphone photography. This paper presents FHIQA, a learning-based approach to PQA that introduces a simple but effective quality score rescaling method based on image semantics, to enhance the precision of fine-grained image quality metrics while ensuring robust generalization to various scene settings beyond the training dataset. The proposed approach is validated by extensive experiments on the PIQ23 benchmark and comparisons with the current state of the art. The source code of FHIQA will be made publicly available on the PIQ23 GitHub repository at https://github.com/DXOMARK-Research/PIQ2023.

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Face Image Quality Assessment

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Face Image Quality Assessment PIQ23 FHIQA KRCC 0.59 #3 of 3 Archive leaderboard report
Face Image Quality Assessment PIQ23 FHIQA MAE 1.12 #3 of 3 Archive leaderboard report
Face Image Quality Assessment PIQ23 FHIQA PLCC 0.78 #3 of 3 Archive leaderboard report
Face Image Quality Assessment PIQ23 FHIQA SRCC 0.78 #3 of 3 Archive leaderboard report

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