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Design and analysis of secure quantum communication schemes
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Design and analysis of secure quantum communication schemes/ by Ri-Gui Zhou, Xiao-Xue Zhang, Lin-Tao Du.
作者:
Zhou, Ri-Gui.
其他作者:
Zhang, Xiao-Xu.
出版者:
Cham :Springer Nature Switzerland : : 2024.,
面頁冊數:
xiii, 289 p. :ill., digital ; : 24 cm.;
Contained By:
Springer Nature eBook
標題:
Quantum communication - Security measures. -
電子資源:
https://doi.org/10.1007/978-3-031-78428-6
ISBN:
9783031784286
Design and analysis of secure quantum communication schemes
Zhou, Ri-Gui.
Design and analysis of secure quantum communication schemes
[electronic resource] /by Ri-Gui Zhou, Xiao-Xue Zhang, Lin-Tao Du. - Cham :Springer Nature Switzerland :2024. - xiii, 289 p. :ill., digital ;24 cm.
Chapter 1: Introduction -- Chapter 2: Fundamentals of Quantum Information Theory -- Chapter 3: Quantum Key Distribution -- Chapter 4: Quantum Secret Sharing -- Chapter 5: Quantum Direct Communication -- Chapter 6: Quantum Key Agreement -- Chapter 7: Quantum Private Query -- Chapter 8: Quantum Network Coding.
This book provides a comprehensive guide to the design and analysis of quantum secure communication schemes. While quantum computers may provide a platform for arithmetic calculations which threaten classical cryptosystems, the development of quantum information has also brought a corresponding solution: quantum cryptography, which is the basis of quantum secure communication. Quantum secure communication (QSC) uses quantum states for key agreement and information transmission, and uses the basic principles of quantum mechanics to discover eavesdropping behavior, and to ensure the security of information. It can overcome the security risks of classical encryption technology and can securely distribute keys in real time via public channels. Beginning in 1984 with the first conception of quantum key distribution (QKD) based on single-photon polarization states, subsequent innovations include quantum identity authentication (QIA), quantum secret sharing (QSS), quantum direct communication (QDC), quantum key agreement (QKA), quantum private query (QPQ), and quantum network coding (QNC). Each of these schemes is explored in detail based on different environments and structures, along with specific security and feasibility analyses. This book is essential reading for academic researchers and graduate students in quantum science and technology, as well as professionals and engineers in quantum industries and cybersecurity.
ISBN: 9783031784286
Standard No.: 10.1007/978-3-031-78428-6doiSubjects--Topical Terms:
1291988
Quantum communication
--Security measures.
LC Class. No.: TK5103.592.Q83 / Z46 2024
Dewey Class. No.: 003.54
Design and analysis of secure quantum communication schemes
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Chapter 1: Introduction -- Chapter 2: Fundamentals of Quantum Information Theory -- Chapter 3: Quantum Key Distribution -- Chapter 4: Quantum Secret Sharing -- Chapter 5: Quantum Direct Communication -- Chapter 6: Quantum Key Agreement -- Chapter 7: Quantum Private Query -- Chapter 8: Quantum Network Coding.
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This book provides a comprehensive guide to the design and analysis of quantum secure communication schemes. While quantum computers may provide a platform for arithmetic calculations which threaten classical cryptosystems, the development of quantum information has also brought a corresponding solution: quantum cryptography, which is the basis of quantum secure communication. Quantum secure communication (QSC) uses quantum states for key agreement and information transmission, and uses the basic principles of quantum mechanics to discover eavesdropping behavior, and to ensure the security of information. It can overcome the security risks of classical encryption technology and can securely distribute keys in real time via public channels. Beginning in 1984 with the first conception of quantum key distribution (QKD) based on single-photon polarization states, subsequent innovations include quantum identity authentication (QIA), quantum secret sharing (QSS), quantum direct communication (QDC), quantum key agreement (QKA), quantum private query (QPQ), and quantum network coding (QNC). Each of these schemes is explored in detail based on different environments and structures, along with specific security and feasibility analyses. This book is essential reading for academic researchers and graduate students in quantum science and technology, as well as professionals and engineers in quantum industries and cybersecurity.
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