Frame-rate Up-conversion Detection Based on Convolutional Neural Network for Learning Spatiotemporal Features
Minseok Yoon, Seung-Hun Nam, In-Jae Yu, Wonhyuk Ahn, Myung-Joon Kwon,, Heung-Kyu Lee

TL;DR
This paper introduces FCDNet, a neural network that detects frame-rate up-conversion in videos by learning subtle interpolation artifacts, achieving high accuracy and robustness with minimal frame input.
Contribution
First neural network-based method for FRUC detection that covers multiple interpolation schemes and operates efficiently with only six frames.
Findings
Achieved state-of-the-art detection accuracy.
Robust against unseen datasets and parameters.
Operates with only six frames for quick verification.
Abstract
With the advance in user-friendly and powerful video editing tools, anyone can easily manipulate videos without leaving prominent visual traces. Frame-rate up-conversion (FRUC), a representative temporal-domain operation, increases the motion continuity of videos with a lower frame-rate and is used by malicious counterfeiters in video tampering such as generating fake frame-rate video without improving the quality or mixing temporally spliced videos. FRUC is based on frame interpolation schemes and subtle artifacts that remain in interpolated frames are often difficult to distinguish. Hence, detecting such forgery traces is a critical issue in video forensics. This paper proposes a frame-rate conversion detection network (FCDNet) that learns forensic features caused by FRUC in an end-to-end fashion. The proposed network uses a stack of consecutive frames as the input and effectively…
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Taxonomy
TopicsDigital Media Forensic Detection · Advanced Image Processing Techniques · Generative Adversarial Networks and Image Synthesis
