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A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal

The developed method of steganographic hiding of text information in an audio signal based on the wavelet transform acquires a deep meaning in the conditions of the use by an attacker of deliberate unauthorized manipulations with a steganocoded audio signal to distort the text information embedded i...

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Autores principales: Veselska, Olga, Lavrynenko, Oleksandr, Odarchenko, Roman, Zaliskyi, Maksym, Bakhtiiarov, Denys, Karpinski, Mikolaj, Rajba, Stanislaw
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9371059/
https://www.ncbi.nlm.nih.gov/pubmed/35957388
http://dx.doi.org/10.3390/s22155832
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author Veselska, Olga
Lavrynenko, Oleksandr
Odarchenko, Roman
Zaliskyi, Maksym
Bakhtiiarov, Denys
Karpinski, Mikolaj
Rajba, Stanislaw
author_facet Veselska, Olga
Lavrynenko, Oleksandr
Odarchenko, Roman
Zaliskyi, Maksym
Bakhtiiarov, Denys
Karpinski, Mikolaj
Rajba, Stanislaw
author_sort Veselska, Olga
collection PubMed
description The developed method of steganographic hiding of text information in an audio signal based on the wavelet transform acquires a deep meaning in the conditions of the use by an attacker of deliberate unauthorized manipulations with a steganocoded audio signal to distort the text information embedded in it. Thus, increasing the robustness of the stego-system by compressing the steganocoded audio signal subject to the preservation of the integrity of text information, taking into account the features of the psychophysiological model of sound perception, is the main objective of this scientific research. The task of this scientific research is effectively solved using a multilevel discrete wavelet transform using adaptive block normalization of text information with subsequent recursive embedding in the low-frequency component of the audio signal and further scalar product of the obtained coefficients with the Daubechies wavelet filters. The results of the obtained experimental studies confirm the hypothesis, namely that it is proposed to use recursive embedding in the low-frequency component (approximating wavelet coefficients) followed by their scalar product with wavelet filters at each level of the wavelet decomposition, which will increase the average power of hidden data. It should be noted that upon analyzing the existing method, which is based on embedding text information in the high-frequency component (detailed wavelet coefficients), at the last level of the wavelet decomposition, we obtained the limit CR = 6, and in the developed, CR = 20, with full integrity of the text information in both cases. Therefore, the resistance of the stego-system is increased by 3.3 times to deliberate or passive compression of the audio signal in order to distort the embedded text information.
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spelling pubmed-93710592022-08-12 A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal Veselska, Olga Lavrynenko, Oleksandr Odarchenko, Roman Zaliskyi, Maksym Bakhtiiarov, Denys Karpinski, Mikolaj Rajba, Stanislaw Sensors (Basel) Article The developed method of steganographic hiding of text information in an audio signal based on the wavelet transform acquires a deep meaning in the conditions of the use by an attacker of deliberate unauthorized manipulations with a steganocoded audio signal to distort the text information embedded in it. Thus, increasing the robustness of the stego-system by compressing the steganocoded audio signal subject to the preservation of the integrity of text information, taking into account the features of the psychophysiological model of sound perception, is the main objective of this scientific research. The task of this scientific research is effectively solved using a multilevel discrete wavelet transform using adaptive block normalization of text information with subsequent recursive embedding in the low-frequency component of the audio signal and further scalar product of the obtained coefficients with the Daubechies wavelet filters. The results of the obtained experimental studies confirm the hypothesis, namely that it is proposed to use recursive embedding in the low-frequency component (approximating wavelet coefficients) followed by their scalar product with wavelet filters at each level of the wavelet decomposition, which will increase the average power of hidden data. It should be noted that upon analyzing the existing method, which is based on embedding text information in the high-frequency component (detailed wavelet coefficients), at the last level of the wavelet decomposition, we obtained the limit CR = 6, and in the developed, CR = 20, with full integrity of the text information in both cases. Therefore, the resistance of the stego-system is increased by 3.3 times to deliberate or passive compression of the audio signal in order to distort the embedded text information. MDPI 2022-08-04 /pmc/articles/PMC9371059/ /pubmed/35957388 http://dx.doi.org/10.3390/s22155832 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Veselska, Olga
Lavrynenko, Oleksandr
Odarchenko, Roman
Zaliskyi, Maksym
Bakhtiiarov, Denys
Karpinski, Mikolaj
Rajba, Stanislaw
A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal
title A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal
title_full A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal
title_fullStr A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal
title_full_unstemmed A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal
title_short A Wavelet-Based Steganographic Method for Text Hiding in an Audio Signal
title_sort wavelet-based steganographic method for text hiding in an audio signal
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9371059/
https://www.ncbi.nlm.nih.gov/pubmed/35957388
http://dx.doi.org/10.3390/s22155832
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