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AdaGate-DF: Adaptive Gated Deepfake Detection for Resource-Constrained Environments

First seen · 9/5/2026, 12:14 AMLatest activity · 9/5/2026, 12:14 AM

Deepfake detection often falters on edge devices where compute budgets are slim and video quality is uneven. To address this mismatch, AdaGate-DF routes frames through a dual multi-exit architecture keyed to image-quality cues, allowing clearer samples to terminate early and cut latency. Across benchmark evaluations on Celeb-DF, the framework records an AUC of 0.9370 with low inference overhead, climbing to 0.9708 at 384×384 resolution. By replacing fixed inference pipelines with adaptive routing, it provides a practical path for authenticating visual media under real-world bandwidth and resource constraints.

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  1. AggregatorarXiv9/5, 12:14 AMnot independentRepresentative
    AdaGate-DF: Adaptive Gated Deepfake Detection for Resource-Constrained Environments