EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION
Abstract & Details
Research Area
INFORMATION TECHNOLOGY
Keywords
Long
Distance
Traces
Patches
Abstract
With the rapid progress of deepfake techniques in recent years, facial video forgery can generate highly deceptive video content and bring severe security threats. And detection of such forgery videos is much more urgent and challenging. Most existing detection methods treat the problem as a vanilla binary classification problem. In this article, the problem is treated as a special fine-grained classification problem since the differences between fake and real faces are very subtle. It is observed that most existing face forgery methods left some common artifacts in the spatial domain and time domain, including generative defects in the spatial domain and interframe inconsistencies in the time domain. And a spatial-temporal model is proposed which has two components for capturing spatial and temporal forgery traces from a global perspective, respectively. The two components are designed using a novel long-distance attention mechanism. One component of the spatial domain is used to capture artifacts in a single frame, and the other component of the time domain is used to capture artifacts in consecutive frames. They generate attention maps in the form of patches. The attention method has a broader vision which contributes to better assembling global information and extracting local statistic information. Finally, the attention maps are used to guide the network to focus on pivotal parts of the face, just like other fine-grained classification methods.
License
This work is licensed under a Creative
Commons
Attribution-ShareAlike 4.0 International License.
Author Information
| # | Name | Institute / Affiliation |
|---|---|---|
| 1 | Sivasankar Chittoor | Siddharth Institute of Engineering & Technology |
| 2 | M Chanikya | Siddharth Institute of Engineering & Technology |
| 3 | Agepati Gayathri | Siddharth Institute of Engineering & Technology |
| 4 | Vallemma Lavanya | Siddharth Institute of Engineering & Technology |
| 5 | Kasthuri Anil Kumar | Siddharth Institute of Engineering & Technology |
| 6 | Abhishek Kumar Pal | Siddharth Institute of Engineering & Technology |
How to Cite
Use the following formats to cite this article in your research.
APA Style
Chittoor, Sivasankar, Chanikya, M, Gayathri, Agepati, Lavanya, Vallemma, Kumar, Kasthuri Anil, & Pal, Abhishek Kumar (2024). EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION. International Journal of Advance Research and Innovative Ideas In Education, 10(2), 5181-5187.
MLA Style
Chittoor, Sivasankar, et al. "EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION." International Journal of Advance Research and Innovative Ideas In Education, vol. 10, no. 2, 2024, pp. 5181-5187.
IEEE Style
Sivasankar Chittoor, M Chanikya, Agepati Gayathri, Vallemma Lavanya, Kasthuri Anil Kumar, and Abhishek Kumar Pal, "EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION," International Journal of Advance Research and Innovative Ideas In Education, vol. 10, no. 2, pp. 5181-5187, 2024.
Vancouver Style
Chittoor Sivasankar, Chanikya M, Gayathri Agepati, Lavanya Vallemma, Kumar Kasthuri Anil, Pal Abhishek Kumar. EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION. International Journal of Advance Research and Innovative Ideas In Education. 2024;10(2):5181-5187.
Harvard Style
Chittoor, Sivasankar, Chanikya, M, Gayathri, Agepati, Lavanya, Vallemma, Kumar, Kasthuri Anil, & Pal, Abhishek Kumar (2024) 'EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION', International Journal of Advance Research and Innovative Ideas In Education, 10(2), pp. 5181-5187.
Chicago Style
Chittoor, Sivasankar, et al. "EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION." International Journal of Advance Research and Innovative Ideas In Education 10, no. 2 (2024): 5181-5187.
Turabian Style
Chittoor, Sivasankar, et al. "EXPOSING DEEP FAKE VIDEOS THROUGH LONG RANGE ATTENTION." International Journal of Advance Research and Innovative Ideas In Education 10, no. 2 (2024): 5181-5187.
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