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March 3, 2026Journal of Cloud Computing Advances Systems and Applications0 citationsOpen Access

WSMS: weakly supervised multi-feature steganalysis with EVT calibration for cloud-edge collaborative intelligence

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YCYingquan ChenQLQianmu LiWZWenhao Zhang

Key Points

  • Weakly supervised multi-feature steganalysis improves accuracy in cloud-edge scenarios while minimizing false positives.
  • Key evidence shows a significant enhancement in detection rates, utilizing EVT calibration methods for optimization.
  • Analysis of collaborative intelligence frameworks indicates that cloud-edge processing can enhance steganalysis efficiency.
  • Results imply broader applications in cybersecurity, with further validation needed to support large-scale implementation.
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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69a75b2dc6e9836116a2207ahttps://doi.org/10.1186/s13677-025-00838-6
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