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المنصة
الرئيسية
SOTA
التعرف على الوجه
Face Identification On Megaface
Face Identification On Megaface
المقاييس
Accuracy
النتائج
نتائج أداء النماذج المختلفة على هذا المعيار القياسي
Columns
اسم النموذج
Accuracy
Paper Title
Cos+UNPG
99.27%
Unified Negative Pair Generation toward Well-discriminative Feature Space for Face Recognition
PartialFC + Glint360K + R100
99.10%
Partial FC: Training 10 Million Identities on a Single Machine
Arc+UNPG
98.82%
Unified Negative Pair Generation toward Well-discriminative Feature Space for Face Recognition
Prodpoly
98.78%
Deep Polynomial Neural Networks
GhostFaceNetV2-1
98.64%
GhostFaceNets: Lightweight Face Recognition Model From Cheap Operations
ArcFace + MS1MV2 + R100 + R
98.35%
ArcFace: Additive Angular Margin Loss for Deep Face Recognition
Mag+UNPG
98.03%
Unified Negative Pair Generation toward Well-discriminative Feature Space for Face Recognition
SV-AM-Softmax
97.2%
Support Vector Guided Softmax Loss for Face Recognition
CosFace
82.72%
CosFace: Large Margin Cosine Loss for Deep Face Recognition
SphereFace (3-patch ensemble)
75.766%
SphereFace: Deep Hypersphere Embedding for Face Recognition
Light CNN-29
73.749%
A Light CNN for Deep Face Representation with Noisy Labels
SphereFace (single model)
72.729%
SphereFace: Deep Hypersphere Embedding for Face Recognition
FaceNet
70.49%
FaceNet: A Unified Embedding for Face Recognition and Clustering
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