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Published on: June 8, 2018
FPGA based implementation of a perturbed Chen oscillator for secure embedded cryptosystems
Fritz Nguemo Kemdoum1,2, Justin Roger Mboupda Pone3, Mohit Bajaj4,5,6
1Technology and Applied Sciences Laboratory (TASL), University Institute of Technology of Douala (IUT of Douala), University of Douala, Post Box 8698, Douala, Cameroon.
This study enhances pseudo-random number generators (PRNGs) using a perturbed Chen oscillator (PCO). The PCO offers improved randomness and security, validated by NIST and TestU01 tests for cryptographic applications.
Area of Science:
- Chaos theory
- Cryptography
- Hardware security
Background:
- Pseudo-random number generators (PRNGs) are crucial for secure communication.
- Existing chaotic systems may require enhancements for robust cryptographic applications.
- Field-Programmable Gate Arrays (FPGAs) offer efficient hardware implementation for security systems.
Purpose of the Study:
- To introduce a perturbed Chen oscillator (PCO) for enhanced PRNG performance.
- To develop and implement a PCO-based PRNG on an FPGA for embedded cryptosystems.
- To validate the randomness and security of the PCO-generated numbers.
Main Methods:
- A constant perturbation term was added to the Chen chaotic system.
- The perturbed Chen oscillator was realized on a XILINX Artix-7 FPGA using Xilinx System Generator (XSG).
- The generated pseudo-random numbers were tested using NIST and TestU01 test suites, alongside key sensitivity analysis.
Main Results:
- The perturbation significantly improved the chaotic properties of the Chen system.
- The FPGA implementation demonstrated efficient resource utilization.
- The PCO-derived PRNG successfully passed rigorous statistical tests (NIST, TestU01).
- Key sensitivity tests confirmed the suitability for cryptographic applications.
Conclusions:
- The perturbed Chen oscillator (PCO) provides a straightforward and efficient method for generating high-quality pseudo-random numbers.
- The PCO-based PRNG is well-suited for multimedia security and embedded cryptosystems.
- This approach enhances the security and randomness of PRNGs for critical applications.
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