This book presents the mathematical background underlying security modeling in the context of next-generation cryptography. By introducing new mathematical results in order to strengthen information security, while simultaneously presenting fresh insights and developing the respective areas of mathematics, it is the first-ever book to focus on areas that have not yet been fully exploited for cryptographic applications such as representation theory and mathematical physics, among others. Recent advances in cryptanalysis, brought about in particular by quantum computation and physical attacks on cryptographic devices, such as side-channel analysis or power analysis, have revealed the growing security risks for state-of-the-art cryptographic schemes. To address these risks, high-performance, next-generation cryptosystems must be studied, which requires the further development of the mathematical background of modern cryptography. More specifically, inorder to avoid the security risks posed by adversaries with advanced attack capabilities, cryptosystems must be upgraded, which in turn relies on a wide range of mathematical theories. This book is suitable for use in an advanced graduate course in mathematical cryptography, while also offering a valuable reference guide for experts.
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The first book to focus on areas that have not yet been fully exploited for cryptographic applications, such as representation theory and mathematical physics Contributes to a better understanding of the current state of modern cryptography Develops new advanced mathematical techniques and their applications in next-generation cryptography Presents contributions by leading international researchers in the field of cryptography, representation theory, number theory, and quantum physics, among others Includes supplementary material: sn.pub/extras
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Product details

ISBN
9789811353093
Published
2018-12-23
Publisher
Springer Verlag, Singapore
Height
235 mm
Width
155 mm
Age
Research, P, 06
Language
Product language
Engelsk
Format
Product format
Heftet
Number of pages
8