Aug 2026· International Journal of Innovative Science and Research Technology· 0 citations· 15 references
TL;DR
The proposed approach, a standard BB84 protocol, will first be formulated and then further enhanced with decoy-state pulse generation to handle the vulnerabilities due to multi-photon pulses, and models like depolarizing noise, amplitude damping, and measurement errors will be used as real-world quantum channels.
Abstract
Quantum Key Distribution is theoretically possible secure communication through the use of quantum-mechanical
principles, such as superposition, measurement disturbance, and others. The BB84 and E91 protocols provide security by
leveraging quantum principles against classical eavesdropping; nevertheless, the current implementation of QKD is
vulnerable to photon-number-splitting attacks, imperfections in the devices used, and environmental quantum noise.
Improving practical resistance to all of those is crucial for providing secure real-life use of QKD. Extending the current
state-of-the-art through further development of research on eavesdropper detection and improvement of qubit-based
security mechanisms, this research aims to develop the state-of-the art further by introducing a decoy-state BB84 framework
and analyzing the behavior of such a system under realistic quantum noise. To find solutions to these problems, the current
research will try to adopt the decoy-state BB84 model and analyze the system behavior under realistic quantum noise
scenarios. So, the proposed approach, a standard BB84 protocol, will first be formulated and then further enhanced with
decoy-state pulse generation to handle the vulnerabilities due to multi-photon pulses. Models like depolarizing noise,
amplitude damping, and measurement errors will be used as real-world quantum channels. The model performance will be
measured in terms of various performance metrics such as Key agreement ratio, Quantum Bit Error rate, and secure key
rate for different qubit lengths. Scalability analysis and validation based on IBM quantum hardware will also be performed
in order to measure the impact of real-world device noise on the reliability of generated keys.
ModPhase-8 is introduced, a proposed QKD modulation and adaptive-receiver architecture evaluated through analytical modeling and simulation that provides an analytical security assessment under the stated collective-attack, source, channel, receiver, and trusted-device assumptions, supplemented by attack-specific analy...
Vidhya Prakash Rajendran, D. Perumalsamy, Basker Palaniswamy et al.· Information· 1 citation
Quantum secret sharing (QSS) stands as one of the most promising components of quantum cryptography. Device-independent quantum secret sharing (DI-QSS) provides enhanced security by eliminating the need for device trust, yet its practical performance remains constrained by channel loss and noise. To overcome this lim...
Yong-Hui Yang, Jian-Hong Shi, Hongwei Li et al.· Chinese Physics B· 0 citations
Quantum key distribution (QKD) is secure in principle, but practical security can be undermined by discrepancies between real devices and the idealized models assumed in security proofs. Source side channels, including those exploited by Trojan-horse attacks, are particularly detrimental: neglecting them compromises im...
Kiyoshi Tamaki, M. Curty, Akihiro Mizutani et al.· 0 citations
Quantum secret sharing is a fundamental protocol for securely transmitting quantum as well as classical information. However, in practical quantum communication scenarios, the transmission of quantum information is inevitably influenced by environmental noise. Therefore, in this work, we analyze the robustness of mul...
Practical quantum key distribution (QKD) systems inevitably exhibit imperfections in both the source and detector. At the same time, the behavior of these imperfect devices is never exactly known due to characterization uncertainty, parameter fluctuations, and potential influence by an adversary. In this work, we prese...
Jerome Wiesemann, John Burniston, Devashish Tupkary et al.· 0 citations
Leveraging the a priori information on the instantaneous QBER, the efficiency of information reconciliation in the Decoy-State BB84 protocol is improved, resulting in a secure key that is almost 3% longer for realistic scenarios, with no computational or hardware complexity overhead.
Thomas Scarinzi, D. Orsucci, Marco Ferrari et al.· IEEE Transactions on Quantum...· 0 citations
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