STEGANOGRAPHY BEYOND SPACE-TIME WITH CHAIN OF MULTIMODAL AI

Steganography beyond space-time with chain of multimodal AI

Steganography beyond space-time with chain of multimodal AI

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Abstract Steganography is the art and science of covert writing, with a broad range of applications interwoven within the realm of cybersecurity.As artificial intelligence continues to evolve, its Regional, subregional and country-level full vaccination coverage in children aged 12–23 months for 34 countries in sub-Saharan Africa: a global analysis using Demographic and Health Survey data ability to synthesise realistic content emerges as a threat in the hands of cybercriminals who seek to manipulate and misrepresent the truth.Such synthetic content introduces a non-trivial risk of overwriting the subtle changes made for the purpose of steganography.When the signals in both the spatial and temporal domains are vulnerable to unforeseen overwriting, it calls for reflection on what, if any, remains invariant.This study proposes a paradigm in steganography for audiovisual media, where messages are concealed beyond both spatial and temporal domains.

A chain of multimodal artificial intelligence is developed to deconstruct audiovisual content into a cover text, embed a message within the linguistic domain, and then reconstruct the audiovisual content through synchronising both auditory and visual modalities with the resultant stego text.The message is encoded by biasing the word sampling process of a language generation model and decoded by analysing the probability distribution of word choices.The accuracy of message transmission is evaluated Epidemiological Aspects and Differential Diagnosis of the Cutaneous Round Cell Tumors in Dogs under both zero-bit and multi-bit capacity settings.Fidelity is assessed through both biometric and semantic similarities, capturing the identities of the recorded face and voice, as well as the core ideas conveyed through the media.Secrecy is examined through statistical comparisons between cover and stego texts.

Robustness is tested across various scenarios, including audiovisual resampling, face-swapping, voice-cloning and their combinations.

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