Papers › DSFD: Dual Shot Face Detector

DSFD: Dual Shot Face Detector

24 Oct 2018CVPR 2019 6arXiv:1810.10220archive 2025-07-28

Jian Li, Yabiao Wang, Changan Wang, Ying Tai, Jianjun Qian, Jian Yang, Chengjie Wang, Jilin Li, Feiyue Huang

In this paper, we propose a novel face detection network with three novel contributions that address three key aspects of face detection, including better feature learning, progressive loss design and anchor assign based data augmentation, respectively. First, we propose a Feature Enhance Module (FEM) for enhancing the original feature maps to extend the single shot detector to dual shot detector. Second, we adopt Progressive Anchor Loss (PAL) computed by two different sets of anchors to effectively facilitate the features. Third, we use an Improved Anchor Matching (IAM) by integrating novel anchor assign strategy into data augmentation to provide better initialization for the regressor. Since these techniques are all related to the two-stream design, we name the proposed network as Dual Shot Face Detector (DSFD). Extensive experiments on popular benchmarks, WIDER FACE and FDDB, demonstrate the superiority of DSFD over the state-of-the-art face detectors.

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Code

Tencent/FaceDetection-DSFD mentioned on GitHubpytorch report
lijiannuist/lightDSFD mentioned on GitHubpytorch report

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Tasks

Data AugmentationFace DetectionOccluded Face Detection

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Face Detection FDDB DSFD AP 0.991 #1 of 11 Archive leaderboard report
Face Detection WIDER Face (Easy) DSFD (RFB) AP 0.96 #9 of 27 Archive leaderboard report
Face Detection WIDER Face (Hard) DSFD AP 0.9 #6 of 40 Archive leaderboard report
Face Detection WIDER Face (Hard) DSFD (RFB) AP 0.872 #16 of 40 Archive leaderboard report
Face Detection WIDER Face (Medium) DSFD AP 0.953 #5 of 37 Archive leaderboard report
Face Detection WIDER Face (Medium) DSFD (RFB) AP 0.945 #12 of 37 Archive leaderboard report

Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.

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