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https://hdl.handle.net/20.500.14094/90008524
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2025-08-02
21:36 集計
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90008524 (fulltext)
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メタデータID
90008524
アクセス権
open access
出版タイプ
Version of Record
タイトル
Secret Communication Systems Using Chaotic Wave Equations with Neural Network Boundary Conditions
著者
Chen, Yuhan ; Sano, Hideki ; Wakaiki, Masashi ; Yaguchi, Takaharu
著者名
Chen, Yuhan
著者ID
A1721
研究者ID
1000070278737
KUID
https://kuid-rm-web.ofc.kobe-u.ac.jp/search/detail?systemId=f0619c4c72b7f989520e17560c007669
著者名
Sano, Hideki
佐野, 英樹
サノ, ヒデキ
所属機関名
システム情報学研究科
著者ID
A2142
研究者ID
1000050778587
KUID
https://kuid-rm-web.ofc.kobe-u.ac.jp/search/detail?systemId=876822dc9d1e8561520e17560c007669
著者名
Wakaiki, Masashi
若生, 将史
ワカイキ, マサシ
所属機関名
システム情報学研究科
著者ID
A0292
研究者ID
1000010396822
KUID
https://kuid-rm-web.ofc.kobe-u.ac.jp/search/detail?systemId=4d25630092a491db520e17560c007669
著者名
Yaguchi, Takaharu
谷口, 隆晴
ヤグチ, タカハル
所属機関名
システム情報学研究科
言語
English (英語)
収録物名
Entropy
巻(号)
23(7)
ページ
904
出版者
MDPI
刊行日
2021-07
公開日
2021-08-27
抄録
In a secret communication system using chaotic synchronization, the communication information is embedded in a signal that behaves as chaos and is sent to the receiver to retrieve the information. In a previous study, a chaotic synchronous system was developed by integrating the wave equation with the van der Pol boundary condition, of which the number of the parameters are only three, which is not enough for security. In this study, we replace the nonlinear boundary condition with an artificial neural network, thereby making the transmitted information difficult to leak. The neural network is divided into two parts; the first half is used as the left boundary condition of the wave equation and the second half is used as that on the right boundary, thus replacing the original nonlinear boundary condition. We also show the results for both monochrome and color images and evaluate the security performance. In particular, it is shown that the encrypted images are almost identical regardless of the input images. The learning performance of the neural network is also investigated. The calculated Lyapunov exponent shows that the learned neural network causes some chaotic vibration effect. The information in the original image is completely invisible when viewed through the image obtained after being concealed by the proposed system. Some security tests are also performed. The proposed method is designed in such a way that the transmitted images are encrypted into almost identical images of waves, thereby preventing the retrieval of information from the original image. The numerical results show that the encrypted images are certainly almost identical, which supports the security of the proposed method. Some security tests are also performed. The proposed method is designed in such a way that the transmitted images are encrypted into almost identical images of waves, thereby preventing the retrieval of information from the original image. The numerical results show that the encrypted images are certainly almost identical, which supports the security of the proposed method.
キーワード
chaotic synchronization
secret communication system
van der Pol boundary condition
deep learning
カテゴリ
システム情報学研究科
学術雑誌論文
権利
© 2021 by the authors. 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/).
関連情報
DOI
https://doi.org/10.3390/e23070904
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資源タイプ
journal article
eISSN
1099-4300
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