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SOTA
DeepFake Detection
Deepfake Detection On Fakeavceleb 1
Deepfake Detection On Fakeavceleb 1
Metrics
AP
ROC AUC
Results
Performance results of various models on this benchmark
Columns
Model Name
AP
ROC AUC
Paper Title
FACTOR
96.8
97.4
Detecting Deepfakes Without Seeing Any
RealForensics
95.3
97.1
Leveraging Real Talking Faces via Self-Supervision for Robust Forgery Detection
AVAD
94.2
94.5
Self-Supervised Video Forensics by Audio-Visual Anomaly Detection
FTCN
92.3
93.1
Exploring Temporal Coherence for More General Video Face Forgery Detection
LipForensics
89.4
91.1
Lips Don't Lie: A Generalisable and Robust Approach to Face Forgery Detection
AD DFD
88.8
88.1
Joint Audio-Visual Deepfake Detection
Xception
84.8
85.3
FaceForensics++: Learning to Detect Manipulated Facial Images
AVBYOL
73.9
59.2
Leveraging Real Talking Faces via Self-Supervision for Robust Forgery Detection
VQGAN
55.0
51.8
Taming Transformers for High-Resolution Image Synthesis
AV-Lip-Sync+
-
-
AV-Lip-Sync+: Leveraging AV-HuBERT to Exploit Multimodal Inconsistency for Video Deepfake Detection
Multimodal Ensemble Model
-
-
Lip Sync Matters: A Novel Multimodal Forgery Detector
Avtenet
-
-
AVTENet: Audio-Visual Transformer-based Ensemble Network Exploiting Multiple Experts for Video Deepfake Detection
AV-Lip-Sync Model
-
-
Lip Sync Matters: A Novel Multimodal Forgery Detector
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