Inclusion 2024 Global Multimedia Deepfake Detection: Towards Multi-dimensional Facial Forgery Detection
- URL: http://arxiv.org/abs/2412.20833v1
- Date: Mon, 30 Dec 2024 09:58:27 GMT
- Title: Inclusion 2024 Global Multimedia Deepfake Detection: Towards Multi-dimensional Facial Forgery Detection
- Authors: Yi Zhang, Weize Gao, Changtao Miao, Man Luo, Jianshu Li, Wenzhong Deng, Zhe Li, Bingyu Hu, Weibin Yao, Wenbo Zhou, Tao Gong, Qi Chu,
- Abstract summary: We present the solutions from the top 3 teams of the two tracks, to boost the research work in the field of image and audio-video forgery detection.
Our challenge has attracted 1500 teams from all over the world, with about 5000 valid result submission counts.
The methodologies developed through the challenge will contribute to the development of next-generation deepfake detection systems.
- Score: 23.087152654892073
- License:
- Abstract: In this paper, we present the Global Multimedia Deepfake Detection held concurrently with the Inclusion 2024. Our Multimedia Deepfake Detection aims to detect automatic image and audio-video manipulations including but not limited to editing, synthesis, generation, Photoshop,etc. Our challenge has attracted 1500 teams from all over the world, with about 5000 valid result submission counts. We invite the top 20 teams to present their solutions to the challenge, from which the top 3 teams are awarded prizes in the grand finale. In this paper, we present the solutions from the top 3 teams of the two tracks, to boost the research work in the field of image and audio-video forgery detection. The methodologies developed through the challenge will contribute to the development of next-generation deepfake detection systems and we encourage participants to open source their methods.
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