Academic literature on the topic 'Cryptographic security'

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Journal articles on the topic "Cryptographic security"

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Raut, Krutia. "Secure Message Hashing with SHA-256: Cryptographic Implementation." International Journal for Research in Applied Science and Engineering Technology 12, no. 11 (2024): 1288–94. http://dx.doi.org/10.22214/ijraset.2024.65078.

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Hash Functions are fundamental devices in the information security on the internet. The hash function used in various security applications are known as cryptographic hash function. The cryptographic hash function plays a crucial role in cryptography to ensure certain security objectives. A simple and effective implementation of the SHA-256 hashing algorithm using Java. While it is securing sensitive data and assuring data integrity, it has extensive applications through digital signatures, authentication protocols, and blockchain technology. Cryptographic hashing functions are implementations
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Anilkumar, Chunduru, Swathi Lenka, N. Neelima, and Sathishkumar V E. "A Secure Method of Communication Through BB84 Protocol in Quantum Key Distribution." Scalable Computing: Practice and Experience 25, no. 1 (2024): 21–33. http://dx.doi.org/10.12694/scpe.v25i1.2152.

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Security awareness is one of the most pressing topics in today's globe. The idea of cryptography is introduced when the subject is information security. Conventional cryptography-based security techniques rely on the presumption that keys are shared before secure connections. The most crucial factor to consider when integrating cryptographic operations into account when integrating cryptographic operations in with any system is the safe key management strategy required for sending and transferring a secret key between two entities The systems will be vulnerable to bugs and possibly fatal exter
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Robert, Wamusi, Asiku Denis, Adebo Thomas, et al. "A Comprehensive Review on Cryptographic Techniques for Securing Internet of Medical Things: A State-of-the-Art, Applications, Security Attacks, Mitigation Measures, and Future Research Direction." Mesopotamian Journal of Artificial Intelligence in Healthcare 2024 (November 3, 2024): 135–69. https://doi.org/10.58496/mjaih/2024/016.

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As healthcare becomes increasingly dependent on the Internet of Medical Things (IoMT) infrastructure, it is essential to establish a secure system that guarantees the confidentiality and privacy of patient data. This system must also facilitate the secure sharing of healthcare information with other parties within the healthcare ecosystem. However, this increased connectivity also introduces cybersecurity attacks and vulnerabilities. This comprehensive review explores the state-of-the-art in the IoMT, security requirements in the IoMT, cryptographic techniques in the IoMT, application of crypt
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Slashi Leel. "Graph - Based Innovations in Cryptographic Security." Communications on Applied Nonlinear Analysis 32, no. 7s (2025): 744–58. https://doi.org/10.52783/cana.v32.3480.

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Cryptography focuses on securely transmitting messages from one party to another, ensuring that an unauthorized third party cannot comprehend them. To achieve this, various mathematical concepts, particularly from Graph Theory, have been incorporated into cryptographic techniques for more secure data transmission. The process of converting the original plain-text message into an unreadable cipher-text is known as encryption, while converting the cipher-text back to the original plain-text is referred to as decryption. Graph Theory is essential in numerous fields, particularly in cryptography,
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Darko, Cyprian Danso. "Data Security in the Cloud Using Multi-Modal Bio-Cryptographic Authentication." Advances in Multidisciplinary and scientific Research Journal Publication 10, no. 4 (2022): 9–14. http://dx.doi.org/10.22624/aims/digital/v10n4p2.

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Bio Cryptography have been used to secure and protect systems for decades and a further development to employing multi modal bio cryptographic authentication in cloud security has become the best of practice to avert the problems associated with single-phased bio cryptographic techniques. Cloud security have seen improvements over time and higher data security can be achieved by using Multimodal bio cryptographic technique for data encryption and decryption to prevent the intruders from accessing the data. Application of one of the best algorithm-Bluefish to encrypt and decrypt data in the clo
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Shashi Raj K. "The Intersection of Algebra and Cryptography: Enhancing Information Security through Mathematical Foundations." Communications on Applied Nonlinear Analysis 31, no. 4s (2024): 466–89. http://dx.doi.org/10.52783/cana.v31.943.

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The rapid advancements in digital technologies have necessitated the development of robust information security measures. This paper explores the intersection of algebra and cryptography, focusing on how algebraic principles can enhance cryptographic techniques to provide stronger security foundations. By leveraging mathematical structures such as groups, rings, and fields, we can address critical challenges in encryption, secure communications, and data privacy. This study reviews key algebraic methods used in contemporary cryptographic protocols, including elliptic curve cryptography, homomo
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Tejasweeni Pradhan. "Quantum Cryptography for Secure Autonomous Vehicle Networks." Advances in Nonlinear Variational Inequalities 28, no. 1s (2024): 449–59. https://doi.org/10.52783/anvi.v28.2445.

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As autonomous vehicle networks evolve, securing them against advanced cyber threats is becoming increasingly crucial. Traditional cryptographic methods are inadequate for these demands. This paper examines quantum cryptography, focusing on Quantum Key Distribution (QKD), to enhance security in these networks. A network architecture incorporating quantum cryptographic protocols, and an outline of the necessary hardware and software are proposed. Simulations demonstrate the advantages of quantum cryptography in ensuring data integrity, confidentiality, and authenticity. However, challenges such
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Sedat Sonko, Kenneth Ifeanyi Ibekwe, Valentine Ikenna Ilojianya, Emmanuel Augustine Etukudoh, and Adefunke Fabuyide. "QUANTUM CRYPTOGRAPHY AND U.S. DIGITAL SECURITY: A COMPREHENSIVE REVIEW: INVESTIGATING THE POTENTIAL OF QUANTUM TECHNOLOGIES IN CREATING UNBREAKABLE ENCRYPTION AND THEIR FUTURE IN NATIONAL SECURITY." Computer Science & IT Research Journal 5, no. 2 (2024): 390–414. http://dx.doi.org/10.51594/csitrj.v5i2.790.

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This study provides a comprehensive review of quantum cryptography and its implications for U.S. national security in the face of emerging quantum technologies. The primary objective is to investigate the potential of quantum cryptographic methods in creating unbreakable encryption and their future role in enhancing digital security. Employing a systematic literature review and content analysis, the study draws on recent peer-reviewed articles, institutional reports, and academic journals from 2013 to 2023. The methodology focuses on evaluating the evolution, current state, and challenges of q
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Gan, Angela. "Review on Cryptography Techniques in Network Security." Journal of ICT in Education 8, no. 1 (2021): 124–35. http://dx.doi.org/10.37134/jictie.vol8.1.10.2021.

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This article's aim is to provide an overview of network security encryption technologies. This article discusses the different types of cryptographic techniques, advantages, and disadvantages of cryptography on network security. First, we will go over the different cryptographic techniques' operational characteristics. The approach entails comparing and observing the outcomes of 20 different papers. The survey's findings would demonstrate the characteristics, advantages, and disadvantages posed by cryptographic technology, allowing the general public to gain a deeper understanding of the techn
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Shuxrat, Toirov Abduganiyevich, Eldor Islomovich Saidakhmedov, and X.U Akbarov. "Enhancing post-quantum security through hybrid cryptographic systems integrating quantum key distribution." Yashil iqtisodiyot va taraqqiyot 3, no. 2 (2025): 6–10. https://doi.org/10.5281/zenodo.14868992.

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As quantum computing continues to evolve, traditional cryptographic systems face significant vulnerabilities,especially asymmetric algorithms based on factorization and discrete logarithms. In response, the integration of QuantumKey Distribution with post-quantum cryptography presents a promising hybrid approach to ensuring long-term data security.This new topic explores the design and development of cryptographic systems that combine the computational resilienceof post-quantum cryptography algorithms, such as lattice-based cryptography, with the physical security guaranteesprovided by Quantum
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Dissertations / Theses on the topic "Cryptographic security"

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Almeida, Braga Daniel de. "Cryptography in the wild : the security of cryptographic implementations." Thesis, Rennes 1, 2022. http://www.theses.fr/2022REN1S067.

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Les attaques par canaux auxiliaire sont redoutables face aux implémentations cryptographiques. Malgré les attaques passées, et la prolifération d'outils de vérification, ces attaques affectent encore de nombreuses implémentations. Dans ce manuscrit, nous abordons deux aspects de cette problématique, centrés autour de l'attaque et de la défense. Nous avons dévoilé plusieurs attaques par canaux auxiliaires microarchitecturaux sur des implémentations de protocoles PAKE. En particulier, nous avons exposé des attaques sur Dragonfly, utilisé dans la nouvelle norme Wi-Fi WPA3, et SRP, déployé dans de
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Scerri, Guillaume. "Proof of security protocols revisited." Thesis, Cachan, Ecole normale supérieure, 2015. http://www.theses.fr/2015DENS0002/document.

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Avec la généralisation d'Internet, l'usage des protocoles cryptographiques est devenu omniprésent. Étant donné leur complexité et leur l'aspect critique, une vérification formelle des protocoles cryptographiques est nécessaire.Deux principaux modèles existent pour prouver les protocoles. Le modèle symbolique définit les capacités de l'attaquant comme un ensemble fixe de règles, tandis que le modèle calculatoire interdit seulement a l'attaquant derésoudre certain problèmes difficiles. Le modèle symbolique est très abstrait et permet généralement d'automatiser les preuves, tandis que le modèle c
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Tselekounis, Ioannis. "Cryptographic techniques for hardware security." Thesis, University of Edinburgh, 2018. http://hdl.handle.net/1842/33148.

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Traditionally, cryptographic algorithms are designed under the so-called black-box model, which considers adversaries that receive black-box access to the hardware implementation. Although a "black-box" treatment covers a wide range of attacks, it fails to capture reality adequately, as real-world adversaries can exploit physical properties of the implementation, mounting attacks that enable unexpected, non-black-box access, to the components of the cryptographic system. This type of attacks is widely known as physical attacks, and has proven to be a significant threat to the real-world securi
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Vennos, Amy Demetra Geae. "Security of Lightweight Cryptographic Primitives." Thesis, Virginia Tech, 2021. http://hdl.handle.net/10919/103781.

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Internet-of-Things (IoT) devices are increasing in popularity due to their ability to help automate many aspects of daily life while performing these necessary duties on billions of low-power appliances. However, the perks of these small devices also come with additional constraints to security. Security always has been an issue with the rise of cryptographic backdoors and hackers reverse engineering the security protocols within devices to reveal the original state that was encrypted. Security researchers have done much work to prevent attacks with high power algorithms, such as the internati
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Di, Crescenzo Giovanni. "Security amplification of cryptographic primitives /." Diss., Connect to a 24 p. preview or request complete full text in PDF format. Access restricted to UC campuses, 1999. http://wwwlib.umi.com/cr/ucsd/fullcit?p9952653.

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Cooke, John C. "Cryptographic techniques for personal communication systems security." Thesis, Aston University, 1995. http://publications.aston.ac.uk/8234/.

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The advent of personal communication systems within the last decade has depended upon the utilization of advanced digital schemes for source and channel coding and for modulation. The inherent digital nature of the communications processing has allowed the convenient incorporation of cryptographic techniques to implement security in these communications systems. There are various security requirements, of both the service provider and the mobile subscriber, which may be provided for in a personal communications system. Such security provisions include the privacy of user data, the authenticati
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Radke, Kenneth J. "Security ceremonies : including humans in cryptographic protocols." Thesis, Queensland University of Technology, 2013. https://eprints.qut.edu.au/63704/1/Kenneth_Radke_Thesis.pdf.

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Whether by using electronic banking, by using credit cards, or by synchronising a mobile telephone via Bluetooth to an in-car system, humans are a critical part in many cryptographic protocols daily. We reduced the gap that exists between the theory and the reality of the security of these cryptographic protocols involving humans, by creating tools and techniques for proofs and implementations of human-followable security. After three human research studies, we present a model for capturing human recognition; we provide a tool for generating values called Computer-HUman Recognisable Nonces (
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Raheem, Muhammad. "Evaluation of Cryptographic Packages." Thesis, Linköping University, Linköping University, Information Theory, 2009. http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-17441.

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<p>The widespread use of computer technology for information handling resulted in the need for higher data protection.The usage of high profile cryptographic protocols and algorithms do not always necessarily guarantee high security. They are needed to be used according to the needs of the organization depending upon certain characteristics and available resources.The communication system in a cryptographic environment may become vulnerable to attacks if the cryptographic packages don’t meet their intended goals.</p><p>This master’s thesis is targeted towards the goal of evaluating contemporar
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Li, Huiyun. "Security evaluation at design time for cryptographic hardware." Thesis, University of Cambridge, 2006. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.613888.

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Miller, Rachel A. S. M. (Rachel Ann) Massachusetts Institute of Technology. "New cryptographic protocols With side-channel attack security." Thesis, Massachusetts Institute of Technology, 2012. http://hdl.handle.net/1721.1/75684.

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Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2012.<br>"June 2012." Cataloged from PDF version of thesis.<br>Includes bibliographical references (p. 76-80).<br>Cryptographic protocols implemented in real world devices are subject to tampering attacks, where adversaries can modify hardware or memory. This thesis studies the security of many different primitives in the Related-Key Attack (RKA) model, where the adversary can modify a secret key. We show how to leverage the RKA security of blockciphers to provide RKA security for a suit
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Books on the topic "Cryptographic security"

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Pierce, Clayton C. Neoclassical cryptographic systems. 2nd ed. C. Pierce, 2005.

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Pierce, Clayton C. Neoclassical cryptographic systems. Neoclassical Systems, 2004.

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), National Institute of Standards and Technology (U S. Security requirements for cryptographic modules. Computer Systems Laboratory, National Institute of Standards and Technology, 1994.

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Computer Systems Laboratory (U.S.), ed. Security requirements for cryptographic modules. Computer Systems Laboratory, National Institute of Standards and Technology, 1994.

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Serpell, S. C. Cryptographic equipment security: A code of practice. IERE, 1985.

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Cooke, John Christopher. Cryptographic techniques for personal communication systems security. Aston University. Department of Electronic Engineering and Applied Physics, 1995.

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Gutmann, Peter. Design and verification of a cryptographic security architecture. Springer, 2002.

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Baksi, Anubhab. Classical and Physical Security of Symmetric Key Cryptographic Algorithms. Springer Singapore, 2022. http://dx.doi.org/10.1007/978-981-16-6522-6.

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Shi, Kevin. Cryptographic approaches to security and optimization in machine learning. [publisher not identified], 2020.

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Sokolov, Artem, and Oleg Zhdanov. Cryptographic constructions on the basis of functions of multivalued logic. INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1045434.

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Symmetric encryption algorithms have been successfully used to protect information during transmission on an open channel. The classical approach to the synthesis of modern cryptographic algorithms and cryptographic primitives on which they are based, is the use of mathematical apparatus of Boolean functions. The authors demonstrate that the use to solve this problem of functions of multivalued logic (FML) allows to largely improve the durability of the cryptographic algorithms and to extend the used algebraic structures. On the other hand, the study of functions of multivalued logic in crypto
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Book chapters on the topic "Cryptographic security"

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Joshi, Het, and Neeraj Phadke. "Cryptographic Bastions." In Cloud Security. Chapman and Hall/CRC, 2024. http://dx.doi.org/10.1201/9781003455448-5.

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Rijmen, Vincent. "Conventional Cryptographic Primitives." In Network Security. Springer US, 2010. http://dx.doi.org/10.1007/978-0-387-73821-5_9.

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Delfs, Hans, and Helmut Knebl. "Cryptographic Protocols." In Information Security and Cryptography. Springer Berlin Heidelberg, 2002. http://dx.doi.org/10.1007/978-3-642-87126-9_4.

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Raikwar, Mayank, and Shuang Wu. "Cryptographic Primitives." In Advances in Information Security. Springer International Publishing, 2023. http://dx.doi.org/10.1007/978-3-031-32146-7_2.

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Delfs, Hans, and Helmut Knebl. "Cryptographic Protocols." In Information Security and Cryptography. Springer Berlin Heidelberg, 2007. http://dx.doi.org/10.1007/3-540-49244-5_4.

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Delfs, Hans, and Helmut Knebl. "Cryptographic Protocols." In Information Security and Cryptography. Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-662-47974-2_4.

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Perrig, Adrian, Pawel Szalachowski, Raphael M. Reischuk, and Laurent Chuat. "Cryptographic Algorithms." In Information Security and Cryptography. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-67080-5_17.

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Kiltz, Eike. "Cryptographic Protocols from Lattices." In Provable Security. Springer Berlin Heidelberg, 2010. http://dx.doi.org/10.1007/978-3-642-16280-0_13.

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Bleumer, Gerrit. "Cryptographic Credentials." In Encyclopedia of Cryptography, Security and Privacy. Springer Berlin Heidelberg, 2023. http://dx.doi.org/10.1007/978-3-642-27739-9_191-2.

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Bleumer, Gerrit. "Cryptographic Credentials." In Encyclopedia of Cryptography, Security and Privacy. Springer Nature Switzerland, 2025. https://doi.org/10.1007/978-3-030-71522-9_191.

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Conference papers on the topic "Cryptographic security"

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Banala, Uday Krishna, Rushendra Sai Chidipothu, Murali Krishna Enduri, and Gangi R. eddy Salla. "Cryptographic Pixel Manipulation for Visual Security." In 2024 IEEE 16th International Conference on Computational Intelligence and Communication Networks (CICN). IEEE, 2024. https://doi.org/10.1109/cicn63059.2024.10847492.

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Ishaq, Muhammad, and Bushra Al-Anesi. "Quantum Cryptography and Post-Quantum Security: Safeguarding Cryptographic Protocols Against Quantum Threats." In 2025 2nd International Conference on Advanced Innovations in Smart Cities (ICAISC). IEEE, 2025. https://doi.org/10.1109/icaisc64594.2025.10959635.

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Harsha Vardhan, S., Mahesh Kumar Jha, Raveesh Hegde, Monika Singh, P. Rubini, and Amar Choudhary. "Security and Threats in Aviation: Cryptographic Based Network Security System." In 2024 International Conference on Signal Processing and Advance Research in Computing (SPARC). IEEE, 2024. https://doi.org/10.1109/sparc61891.2024.10828771.

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Maram, Balajee, Ashwini Mandale-Jadhav, Ratnababu Pilli, Neeraj Sharma, Joel Krupakar Gutla, and G. Charles Babu. "Enhancing Cryptographic Security through Recurrent Neural Networks." In 2024 5th International Conference on Smart Electronics and Communication (ICOSEC). IEEE, 2024. http://dx.doi.org/10.1109/icosec61587.2024.10722049.

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B, Santhosh, Kushmitha V, Samhita Bhat, Satyaki Mondal, and V. Joshitha. "Cryptographic Image Security Using AES-XOR Approach." In 2025 4th International Conference on Sentiment Analysis and Deep Learning (ICSADL). IEEE, 2025. https://doi.org/10.1109/icsadl65848.2025.10933284.

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Acay, Coşku, Joshua Gancher, Rolph Recto, and Andrew C. Myers. "Secure Synthesis of Distributed Cryptographic Applications." In 2024 IEEE 37th Computer Security Foundations Symposium (CSF). IEEE, 2024. http://dx.doi.org/10.1109/csf61375.2024.00021.

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Benčina, Benjamin, Benjamin Dowling, Varun Maram, and Keita Xagawa. "Post-Quantum Cryptographic Analysis of SSH." In 2025 IEEE Symposium on Security and Privacy (SP). IEEE, 2025. https://doi.org/10.1109/sp61157.2025.00126.

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Jovanović, Boriša, Ivan Tot, and Silvana Ilić. "Contemporary cryptography: Recent achievement and research perspectives." In 11th International Scientific Conference on Defensive Technologies - OTEX 2024. Military Technical Institute, Belgrade, 2024. http://dx.doi.org/10.5937/oteh24067j.

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In modern times, cryptography has been considered as a branch of both mathematics and computer science, and is tightly related to information security. With the accelerated progress of the Internet and the increase of digital communication, the need for stronger and more effective methods of cryptographic protection has become more pronounced. With the rapid increase in computing power, the potential for breaking cryptographic algorithms also increases. This fact in modern cryptography creates a need for stronger and more advanced cryptographic algorithms. One development direction of modern c
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Pacheco, Rodrigo, Douglas Braga, Iago Passos, Thiago Araújo, Vinícius Lagrota, and Murilo Coutinho. "libharpia: a New Cryptographic Library for Brazilian Elections." In Simpósio Brasileiro de Segurança da Informação e de Sistemas Computacionais. Sociedade Brasileira de Computação - SBC, 2022. http://dx.doi.org/10.5753/sbseg.2022.224098.

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The Research and Development Center for Communication Security (CEPESC) has a long partnership history with the Brazilian Superior Electoral Court to improve the security of the Brazilian election system. Among all the contributions from CEPESC, probably the most important is a cryptographic library used in some critical moments during the election. In an effort to improve transparency and auditability of the solution, we present the new cryptographic library developed at CEPESC, named libharpia. Its main design goal is to allow transparency and readability while substantially increasing secur
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Adebisi Ojo, Segun, Aderonke Favour-Bethy Thompson, Mary O Iyare, and Boniface Kayode Alese. "On Information Integrity Measurement with Secure Hash Algorithm (SHA)." In InSITE 2015: Informing Science + IT Education Conferences: USA. Informing Science Institute, 2015. http://dx.doi.org/10.28945/2154.

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The “information age” as often referred to the modern society, has become heavily dependent on information systems. As this dependency increases, the threat to information security has also gained ground. Societies need to cater for the security of information, and this has led to the development of different information security techniques most notable of which is cryptography. Cryptographic Hash functions are used to achieve a number of security goals like authenticity, digital signatures, pseudo-random number generation, digital steganography, digital time stamping. The strength of a crypto
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Reports on the topic "Cryptographic security"

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Moore, Bradley W., Beverly Trapnell, James Fox, and Carolyn French. NVLAP cryptographic and security testing. National Institute of Standards and Technology, 2020. http://dx.doi.org/10.6028/nist.hb.150-17-2020.

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Moore, Bradley, Beverly Trapnell, James Fox, and Carolyn French. NVLAP Cryptographic and Security Testing. National Institute of Standards and Technology, 2021. http://dx.doi.org/10.6028/nist.hb.150-17-2021.

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Pasupuleti, Murali Krishna. Securing AI-driven Infrastructure: Advanced Cybersecurity Frameworks for Cloud and Edge Computing Environments. National Education Services, 2025. https://doi.org/10.62311/nesx/rrv225.

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Abstract: The rapid adoption of artificial intelligence (AI) in cloud and edge computing environments has transformed industries by enabling large-scale automation, real-time analytics, and intelligent decision-making. However, the increasing reliance on AI-powered infrastructures introduces significant cybersecurity challenges, including adversarial attacks, data privacy risks, and vulnerabilities in AI model supply chains. This research explores advanced cybersecurity frameworks tailored to protect AI-driven cloud and edge computing environments. It investigates AI-specific security threats,
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Pasupuleti, Murali Krishna. Quantum Intelligence: Machine Learning Algorithms for Secure Quantum Networks. National Education Services, 2025. https://doi.org/10.62311/nesx/rr925.

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Abstract: As quantum computing and quantum communication technologies advance, securing quantum networks against emerging cyber threats has become a critical challenge. Traditional cryptographic methods are vulnerable to quantum attacks, necessitating the development of AI-driven security solutions. This research explores the integration of machine learning (ML) algorithms with quantum cryptographic frameworks to enhance Quantum Key Distribution (QKD), post-quantum cryptography (PQC), and real-time threat detection. AI-powered quantum security mechanisms, including neural network-based quantum
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Hawes, David. Cryptographic Module Validation Program (CMVP) Security Policy Requirements. National Institute of Standards and Technology, 2023. http://dx.doi.org/10.6028/nist.sp.800-140br1.

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Mouha, Nicky. Review of the Advanced Encryption Standard. National Institute of Standards and Technology, 2021. http://dx.doi.org/10.6028/nist.ir.8319.

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The field of cryptography continues to advance at a very rapid pace, leading to new insights that may impact the security properties of cryptographic algorithms. The Crypto Publication Review Board ("the Board") has been established to identify publications to be reviewed. This report subjects the first standard to the review process: Federal Information Processing Standard (FIPS) 197, which defines the Advanced Encryption Standard (AES).
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Sonmez Turan, Meltem. Ascon-Based Lightweight Cryptography Standards for Constrained Devices. National Institute of Standards and Technology, 2025. https://doi.org/10.6028/nist.sp.800-232.

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In 2023, the National Institute of Standards and Technology (NIST) announced the selection of the Ascon family of algorithms designed by Dobraunig, Eichlseder, Mendel, and Schläffer to provide efficient cryptographic solutions for resource-constrained devices. This decision emerged from a rigorous, multi-round lightweight cryptography standardization process. The Ascon family includes a suite of cryptographic primitives that provide Authenticated Encryption with Associated Data (AEAD), hash function, and eXtendable Output Function (XOF) capabilities. The Ascon family is characterized by lightw
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Leaman, Dana S. National Voluntary Laboratory Accreditation Program (NVLAP) cryptographic and security testing. National Institute of Standards and Technology (U.S.), 2013. http://dx.doi.org/10.6028/nist.hb.150-17e2013.

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Abstract:
NIST Handbook 150-17, NVLAP Cryptographic and Security Testing, presents the technical requirements and guidance for the accreditation of laboratories under the NVLAP Cryptographic and Security Testing (CST) program. It is intended for information and use by accredited laboratories, laboratories seeking accreditation, laboratory accreditation systems, users of laboratory services, and others needing information on the requirements for accreditation under this program. The 2013 edition incorporates the Security Content Automation Protocol (SCAP) version 1.2 requirements for testing. Amendments
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Pass, Rafael. Concurrent Security of Cryptographic Protocols: From Foundations to Practice. Defense Technical Information Center, 2012. http://dx.doi.org/10.21236/ada564117.

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Crocker, S., and S. Rose. Signaling Cryptographic Algorithm Understanding in DNS Security Extensions (DNSSEC). RFC Editor, 2013. http://dx.doi.org/10.17487/rfc6975.

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