DEEP FAKE IMAGES AND VIDEOS DETECTION USING DEEP LEARNING

Authors

  • GANDLA PRAVALLIKA, Ms. B. TEJASWINI Author

DOI:

https://doi.org/10.64751/

Keywords:

Deep Fakes, Deep Learning, Fake Generation, Fake Detection, Machine Learning.

Abstract

Deep fakes are altered, high-quality, realistic videos/images that have lately gained popularity. Many incredible uses of this technology are being investigated. Malicious uses of fake videos, such as fake news, celebrity pornographic videos and financial scams are currently on the rise in the digital world. As a result, celebrities, politicians, and other well-known persons are particularly vulnerable to the Deep fake detection challenge. Numerous research has been undertaken in recent years to understand how deep fakes function and many deep learning-based algorithms to detect deep fake videos or pictures have been presented. This study comprehensively evaluates deep fake production and detection technologies based on several deep learning algorithms. In addition, the limits of current approaches and the availability of databases in society will be discussed. A deep fake detection system that is both precise and automatic. Given the ease with which deep fake videos/images may be generated and shared, the lack of an effective deep fake detection system creates a serious problem for the world. However, there have been various attempts to address this issue, and deep learning-related solutions outperform traditional approaches. These capabilities are used to train a ResNext which learns to categorize if a video has been concern to manipulation or now no longer and is also capable of hit upon the temporal inconsistencies among frames presented by DF introduction tools.Deep Fakes, Deep Learning, Fake Generation, Fake Detection, Machine Learning.

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Published

2026-03-31

How to Cite

GANDLA PRAVALLIKA, Ms. B. TEJASWINI. (2026). DEEP FAKE IMAGES AND VIDEOS DETECTION USING DEEP LEARNING. International Journal of Data Science and IoT Management System, 5(1), 822-828. https://doi.org/10.64751/

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