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Advancements in Face Masking Anonymization: Novel Approaches, Robust Privacy Metrics, and Real-Time Solutions

Publication Type : Book Chapter

Publisher : IEEE

Source : International Conference on Electronics, Communication and Aerospace Technology (ICECA)

Url : https://ieeexplore.ieee.org/abstract/document/10395208

Campus : Amritapuri

School : School of Computing

Year : 2023

Abstract : In todays world, where concerns about privacy are on the rise the use of techniques to mask faces and protect individuals identities in multimedia content has become extremely important. This study thoroughly examines methods of anonymization with a specific focus on how Generative Adversarial Networks (GANs) can be used to enhance privacy preservation. By conducting an analysis that includes techniques like Gaussian Blur, Pixelation, Deep Learning and hybrid approaches our research highlights the impressive effectiveness of GAN based anonymization. This innovative approach not effectively hides identities but also ensures that the anonymized content remains understandable and usable. Alongside evaluating existing techniques our paper also sets the stage for exploration, in this field with the goal of advancing face masking anonymization techniques.

Cite this Research Publication : Prabith, G. S., S. Abhishek, T. Anjali, and Nandakishor Prabhu Ramlal. "Advancements in Face Masking Anonymization: Novel Approaches, Robust Privacy Metrics, and Real-Time Solutions." In 2023 7th International Conference on Electronics, Communication and Aerospace Technology (ICECA), pp. 815-823. IEEE, 2023.

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