Image Privacy Protection: A Survey
Wenying Wen, Ziye Yuan, Yushu Zhang, Tao Wang, Xiangli Xiao, Ruoyu, Zhao, Yuming Fang

TL;DR
This survey comprehensively reviews image privacy protection approaches by classifying them into data, content, and feature levels, providing a holistic framework that addresses various scenarios and privacy goals.
Contribution
It introduces a novel classification framework based on privacy-sensitive domains, enabling a holistic understanding of image privacy protection across multiple levels.
Findings
Categorizes image privacy protection into three levels: data, content, and feature.
Analyzes main approaches and features within each protection level.
Discusses challenges and future research directions in image privacy protection.
Abstract
Images serve as a crucial medium for communication, presenting information in a visually engaging format that facilitates rapid comprehension of key points. Meanwhile, during transmission and storage, they contain significant sensitive information. If not managed properly, this information may be vulnerable to exploitation for personal gain, potentially infringing on privacy rights and other legal entitlements. Consequently, researchers continue to propose some approaches for preserving image privacy and publish reviews that provide comprehensive and methodical summaries of these approaches. However, existing reviews tend to categorize either by specific scenarios, or by specific privacy objectives. This classification somewhat restricts the reader's ability to grasp a holistic view of image privacy protection and poses challenges in developing a total understanding of the subject that…
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Taxonomy
TopicsDigital Media and Visual Art · Face recognition and analysis · Brain Tumor Detection and Classification
